fbpx
Wikipedia

Cerebellum

The cerebellum (pl.: cerebella or cerebellums; Latin for "little brain") is a major feature of the hindbrain of all vertebrates. Although usually smaller than the cerebrum, in some animals such as the mormyrid fishes it may be as large as it or even larger.[1] In humans, the cerebellum plays an important role in motor control. It may also be involved in some cognitive functions such as attention and language as well as emotional control such as regulating fear and pleasure responses,[2][3] but its movement-related functions are the most solidly established. The human cerebellum does not initiate movement, but contributes to coordination, precision, and accurate timing: it receives input from sensory systems of the spinal cord and from other parts of the brain, and integrates these inputs to fine-tune motor activity.[4] Cerebellar damage produces disorders in fine movement, equilibrium, posture, and motor learning in humans.[4]

Cerebellum
Drawing of the human brain, showing cerebellum and pons
Location of the human cerebellum (in red)
Details
Pronunciation/ˌsɛrəˈbɛləm/
Part ofHindbrain
ArterySCA, AICA, PICA
Veinsuperior, inferior
Identifiers
Latincerebellum
MeSHD002531
NeuroNames643
NeuroLex IDbirnlex_1489
TA98A14.1.07.001
TA25788
FMA67944
Anatomical terms of neuroanatomy
[edit on Wikidata]

Anatomically, the human cerebellum has the appearance of a separate structure attached to the bottom of the brain, tucked underneath the cerebral hemispheres. Its cortical surface is covered with finely spaced parallel grooves, in striking contrast to the broad irregular convolutions of the cerebral cortex. These parallel grooves conceal the fact that the cerebellar cortex is actually a continuous thin layer of tissue tightly folded in the style of an accordion. Within this thin layer are several types of neurons with a highly regular arrangement, the most important being Purkinje cells and granule cells. This complex neural organization gives rise to a massive signal-processing capability, but almost all of the output from the cerebellar cortex passes through a set of small deep nuclei lying in the white matter interior of the cerebellum.[5]

In addition to its direct role in motor control, the cerebellum is necessary for several types of motor learning, most notably learning to adjust to changes in sensorimotor relationships. Several theoretical models have been developed to explain sensorimotor calibration in terms of synaptic plasticity within the cerebellum. These models derive from those formulated by David Marr and James Albus, based on the observation that each cerebellar Purkinje cell receives two dramatically different types of input: one comprises thousands of weak inputs from the parallel fibers of the granule cells; the other is an extremely strong input from a single climbing fiber.[6] The basic concept of the Marr–Albus theory is that the climbing fiber serves as a "teaching signal", which induces a long-lasting change in the strength of parallel fiber inputs. Observations of long-term depression in parallel fiber inputs have provided some support for theories of this type, but their validity remains controversial.[7]

Structure edit

At the level of gross anatomy, the cerebellum consists of a tightly folded layer of cortex, with white matter underneath and a fluid-filled ventricle at the base. Four deep cerebellar nuclei are embedded in the white matter. Each part of the cortex consists of the same small set of neuronal elements, laid out in a highly stereotyped geometry. At an intermediate level, the cerebellum and its auxiliary structures can be separated into several hundred or thousand independently functioning modules called "microzones" or "microcompartments".

Gross anatomy edit

 
View of the cerebellum from above and behind

The cerebellum is located in the posterior cranial fossa. The fourth ventricle, pons and medulla are in front of the cerebellum.[8] It is separated from the overlying cerebrum by a layer of leathery dura mater, the tentorium cerebelli; all of its connections with other parts of the brain travel through the pons. Anatomists classify the cerebellum as part of the metencephalon, which also includes the pons; the metencephalon is the upper part of the rhombencephalon or "hindbrain". Like the cerebral cortex, the cerebellum is divided into two cerebellar hemispheres; it also contains a narrow midline zone (the vermis). A set of large folds is, by convention, used to divide the overall structure into 10 smaller "lobules". Because of its large number of tiny granule cells, the cerebellum contains more neurons than the total from the rest of the brain, but takes up only 10% of the total brain volume.[9] The number of neurons in the cerebellum is related to the number of neurons in the neocortex. There are about 3.6 times as many neurons in the cerebellum as in the neocortex, a ratio that is conserved across many different mammalian species.[10]

The unusual surface appearance of the cerebellum conceals the fact that most of its volume is made up of a very tightly folded layer of gray matter: the cerebellar cortex. Each ridge or gyrus in this layer is called a folium. It is estimated that, if the human cerebellar cortex were completely unfolded, it would give rise to a layer of neural tissue about 1 meter long and averaging 5 centimeters wide—a total surface area of about 500 square cm, packed within a volume of dimensions 6 cm × 5 cm × 10 cm.[9] Underneath the gray matter of the cortex lies white matter, made up largely of myelinated nerve fibers running to and from the cortex. Embedded within the white matter—which is sometimes called the arbor vitae (tree of life) because of its branched, tree-like appearance in cross-section—are four deep cerebellar nuclei, composed of gray matter.[11]

Connecting the cerebellum to different parts of the nervous system are three paired cerebellar peduncles. These are the superior cerebellar peduncle, the middle cerebellar peduncle and the inferior cerebellar peduncle, named by their position relative to the vermis. The superior cerebellar peduncle is mainly an output to the cerebral cortex, carrying efferent fibers via thalamic nuclei to upper motor neurons in the cerebral cortex. The fibers arise from the deep cerebellar nuclei. The middle cerebellar peduncle is connected to the pons and receives all of its input from the pons mainly from the pontine nuclei. The input to the pons is from the cerebral cortex and is relayed from the pontine nuclei via transverse pontine fibers to the cerebellum. The middle peduncle is the largest of the three and its afferent fibers are grouped into three separate fascicles taking their inputs to different parts of the cerebellum. The inferior cerebellar peduncle receives input from afferent fibers from the vestibular nuclei, spinal cord and the tegmentum. Output from the inferior peduncle is via efferent fibers to the vestibular nuclei and the reticular formation. The whole of the cerebellum receives modulatory input from the inferior olivary nucleus via the inferior cerebellar peduncle.[5]

Subdivisions edit

 
Schematic representation of the major anatomical subdivisions of the cerebellum. Superior view of an "unrolled" cerebellum, placing the vermis in one plane.

Based on the surface appearance, three lobes can be distinguished within the cerebellum: the anterior lobe (above the primary fissure), the posterior lobe (below the primary fissure), and the flocculonodular lobe (below the posterior fissure). These lobes divide the cerebellum from rostral to caudal (in humans, top to bottom). In terms of function, however, there is a more important distinction along the medial-to-lateral dimension. Leaving out the flocculonodular lobe, which has distinct connections and functions, the cerebellum can be parsed functionally into a medial sector called the spinocerebellum and a larger lateral sector called the cerebrocerebellum.[11] A narrow strip of protruding tissue along the midline is called the cerebellar vermis. (Vermis is Latin for "worm".)[11]

The smallest region, the flocculonodular lobe, is often called the vestibulocerebellum. It is the oldest part in evolutionary terms (archicerebellum) and participates mainly in balance and spatial orientation; its primary connections are with the vestibular nuclei, although it also receives visual and other sensory input. Damage to this region causes disturbances of balance and gait.[11]

The medial zone of the anterior and posterior lobes constitutes the spinocerebellum, also known as paleocerebellum. This sector of the cerebellum functions mainly to fine-tune body and limb movements. It receives proprioceptive input from the dorsal columns of the spinal cord (including the spinocerebellar tract) and from the cranial trigeminal nerve, as well as from visual and auditory systems.[12] It sends fibers to deep cerebellar nuclei that, in turn, project to both the cerebral cortex and the brain stem, thus providing modulation of descending motor systems.[11]

The lateral zone, which in humans is by far the largest part, constitutes the cerebrocerebellum, also known as neocerebellum. It receives input exclusively from the cerebral cortex (especially the parietal lobe) via the pontine nuclei (forming cortico-ponto-cerebellar pathways), and sends output mainly to the ventrolateral thalamus (in turn connected to motor areas of the premotor cortex and primary motor area of the cerebral cortex) and to the red nucleus.[11] There is disagreement about the best way to describe the functions of the lateral cerebellum: It is thought to be involved in planning movement that is about to occur,[13] in evaluating sensory information for action,[11] and in a number of purely cognitive functions, such as determining the verb which best fits with a certain noun (as in "sit" for "chair").[14][15][16][17]

Microanatomy edit

Two types of neuron play dominant roles in the cerebellar circuit: Purkinje cells and granule cells. Three types of axons also play dominant roles: mossy fibers and climbing fibers (which enter the cerebellum from outside), and parallel fibers (which are the axons of granule cells). There are two main pathways through the cerebellar circuit, originating from mossy fibers and climbing fibers, both eventually terminating in the deep cerebellar nuclei.[9]

Mossy fibers project directly to the deep nuclei, but also give rise to the following pathway: mossy fibers → granule cells → parallel fibers → Purkinje cells → deep nuclei. Climbing fibers project to Purkinje cells and also send collaterals directly to the deep nuclei.[9] The mossy fiber and climbing fiber inputs each carry fiber-specific information; the cerebellum also receives dopaminergic, serotonergic, noradrenergic, and cholinergic inputs that presumably perform global modulation.[18]

The cerebellar cortex is divided into three layers. At the bottom lies the thick granular layer, densely packed with granule cells, along with interneurons, mainly Golgi cells but also including Lugaro cells and unipolar brush cells. In the middle lies the Purkinje layer, a narrow zone that contains the cell bodies of Purkinje cells and Bergmann glial cells. At the top lies the molecular layer, which contains the flattened dendritic trees of Purkinje cells, along with the huge array of parallel fibers penetrating the Purkinje cell dendritic trees at right angles. This outermost layer of the cerebellar cortex also contains two types of inhibitory interneuron: stellate cells and basket cells. Both stellate and basket cells form GABAergic synapses onto Purkinje cell dendrites.[9]

 
Microcircuitry of the cerebellum
Abbreviations and representations
 • (+): Excitatory connection
 • (-): Inhibitory connection
 • MF: Mossy fiber
 • DCN: Deep cerebellar nuclei
 • IO: Inferior olive
 • CF: Climbing fiber
 • CFC: Climbing fiber collateral
 • GC: Granule cell
 • PF: Parallel fiber
 • PC: Purkinje cell
 • GgC: Golgi cell
 • SC: Stellate cell
 • BC: Basket cell
 
Transverse section of a cerebellar folium, showing principal cell types and connections

Layers of the cerebellar cortex edit

Molecular layer edit

The top, outermost layer of the cerebellar cortex is the molecular layer. This layer contains the flattened dendritic trees of Purkinje cells, and the huge array of parallel fibers, from the granular layer, that penetrate the Purkinje cell dendritic trees at right angles. The molecular layer also contains two types of inhibitory interneuron: stellate cells and basket cells. Both stellate and basket cells form GABAergic synapses onto Purkinje cell dendrites.[9]

Purkinje layer edit
 
Purkinje cells in the human cerebellum (in orange, from top to bottom 40X, 100X and 200X magnification) stained according to published methods[19]

Purkinje cells are among the most distinctive neurons in the brain, and one of the earliest types to be recognized—they were first described by the Czech anatomist Jan Evangelista Purkyně in 1837. They are distinguished by the shape of their dendritic tree: the dendrites branch very profusely, but are severely flattened in a plane perpendicular to the cerebellar folds. Thus, the dendrites of a Purkinje cell form a dense planar net, through which parallel fibers pass at right angles.[9] The dendrites are covered with dendritic spines, each of which receives synaptic input from a parallel fiber. Purkinje cells receive more synaptic inputs than any other type of cell in the brain—estimates of the number of spines on a single human Purkinje cell run as high as 200,000.[9] The large, spherical cell bodies of Purkinje cells are packed into a narrow layer (one cell thick) of the cerebellar cortex, called the Purkinje layer. After emitting collaterals that affect nearby parts of the cortex, their axons travel into the deep cerebellar nuclei, where they make on the order of 1,000 contacts each with several types of nuclear cells, all within a small domain. Purkinje cells use GABA as their neurotransmitter, and therefore exert inhibitory effects on their targets.[9]

Purkinje cells form the heart of the cerebellar circuit, and their large size and distinctive activity patterns have made it relatively easy to study their response patterns in behaving animals using extracellular recording techniques. Purkinje cells normally emit action potentials at a high rate even in the absence of the synaptic input. In awake, behaving animals, mean rates averaging around 40 Hz are typical. The spike trains show a mixture of what are called simple and complex spikes. A simple spike is a single action potential followed by a refractory period of about 10 ms; a complex spike is a stereotyped sequence of action potentials with very short inter-spike intervals and declining amplitudes.[20] Physiological studies have shown that complex spikes (which occur at baseline rates around 1 Hz and never at rates much higher than 10 Hz) are reliably associated with climbing fiber activation, while simple spikes are produced by a combination of baseline activity and parallel fiber input. Complex spikes are often followed by a pause of several hundred milliseconds during which simple spike activity is suppressed.[21]

A specific, recognizable feature of Purkinje neurons is the expression of calbindin.[22] Calbindin staining of rat brain after unilateral chronic sciatic nerve injury suggests that Purkinje neurons may be newly generated in the adult brain, initiating the organization of new cerebellar lobules.[23]

 
A mouse Purkinje cell injected with fluorescent dye
Granular layer edit
 
Granule cells (GR, bottom), parallel fibers (horizontal lines, top), and Purkinje cells (P, middle) with flattened dendritic trees

Cerebellar granule cells, in contrast to Purkinje cells, are among the smallest neurons in the brain. They are also the most numerous neurons in the brain: In humans, estimates of their total number average around 50 billion, which means that about 3/4 of the brain's neurons are cerebellar granule cells.[9] Their cell bodies are packed into a thick layer at the bottom of the cerebellar cortex. A granule cell emits only four to five dendrites, each of which ends in an enlargement called a dendritic claw.[9] These enlargements are sites of excitatory input from mossy fibers and inhibitory input from Golgi cells.[9]

The thin, unmyelinated axons of granule cells rise vertically to the upper (molecular) layer of the cortex, where they split in two, with each branch traveling horizontally to form a parallel fiber; the splitting of the vertical branch into two horizontal branches gives rise to a distinctive "T" shape. A human parallel fiber runs for an average of 3 mm in each direction from the split, for a total length of about 6 mm (about 1/10 of the total width of the cortical layer).[9] As they run along, the parallel fibers pass through the dendritic trees of Purkinje cells, contacting one of every 3–5 that they pass, making a total of 80–100 synaptic connections with Purkinje cell dendritic spines.[9] Granule cells use glutamate as their neurotransmitter, and therefore exert excitatory effects on their targets.[9]

 
Diagram of the layers of the cerebellar cortex showing a glomerulus in the granular layer.

Granule cells receive all of their input from mossy fibers, but outnumber them by 200 to 1 (in humans). Thus, the information in the granule cell population activity state is the same as the information in the mossy fibers, but recoded in a much more expansive way. Because granule cells are so small and so densely packed, it is difficult to record their spike activity in behaving animals, so there is little data to use as a basis for theorizing. The most popular concept of their function was proposed in 1969 by David Marr, who suggested that they could encode combinations of mossy fiber inputs. The idea is that with each granule cell receiving input from only 4–5 mossy fibers, a granule cell would not respond if only a single one of its inputs were active, but would respond if more than one were active. This combinatorial coding scheme would potentially allow the cerebellum to make much finer distinctions between input patterns than the mossy fibers alone would permit.[24]

Mossy fibers edit

Mossy fibers enter the granular layer from their points of origin, many arising from the pontine nuclei, others from the spinal cord, vestibular nuclei etc. In the human cerebellum, the total number of mossy fibers has been estimated at 200 million.[9] These fibers form excitatory synapses with the granule cells and the cells of the deep cerebellar nuclei. Within the granular layer, a mossy fiber generates a series of enlargements called rosettes. The contacts between mossy fibers and granule cell dendrites take place within structures called glomeruli. Each glomerulus has a mossy fiber rosette at its center, and up to 20 granule cell dendritic claws contacting it. Terminals from Golgi cells infiltrate the structure and make inhibitory synapses onto the granule cell dendrites. The entire assemblage is surrounded by a sheath of glial cells.[9] Each mossy fiber sends collateral branches to several cerebellar folia, generating a total of 20–30 rosettes; thus a single mossy fiber makes contact with an estimated 400–600 granule cells.[9]

Climbing fibers edit

Purkinje cells also receive input from the inferior olivary nucleus on the contralateral side of the brainstem via climbing fibers. Although the inferior olive lies in the medulla oblongata and receives input from the spinal cord, brainstem and cerebral cortex, its output goes entirely to the cerebellum. A climbing fiber gives off collaterals to the deep cerebellar nuclei before entering the cerebellar cortex, where it splits into about 10 terminal branches, each of which gives input to a single Purkinje cell.[9] In striking contrast to the 100,000-plus inputs from parallel fibers, each Purkinje cell receives input from exactly one climbing fiber; but this single fiber "climbs" the dendrites of the Purkinje cell, winding around them and making a total of up to 300 synapses as it goes.[9] The net input is so strong that a single action potential from a climbing fiber is capable of producing an extended complex spike in the Purkinje cell: a burst of several spikes in a row, with diminishing amplitude, followed by a pause during which activity is suppressed. The climbing fiber synapses cover the cell body and proximal dendrites; this zone is devoid of parallel fiber inputs.[9]

Climbing fibers fire at low rates, but a single climbing fiber action potential induces a burst of several action potentials in a target Purkinje cell (a complex spike). The contrast between parallel fiber and climbing fiber inputs to Purkinje cells (over 100,000 of one type versus exactly one of the other type) is perhaps the most provocative feature of cerebellar anatomy, and has motivated much of the theorizing. In fact, the function of climbing fibers is the most controversial topic concerning the cerebellum. There are two schools of thought, one following Marr and Albus in holding that climbing fiber input serves primarily as a teaching signal, the other holding that its function is to shape cerebellar output directly. Both views have been defended in great length in numerous publications. In the words of one review, "In trying to synthesize the various hypotheses on the function of the climbing fibers, one has the sense of looking at a drawing by Escher. Each point of view seems to account for a certain collection of findings, but when one attempts to put the different views together, a coherent picture of what the climbing fibers are doing does not appear. For the majority of researchers, the climbing fibers signal errors in motor performance, either in the usual manner of discharge frequency modulation or as a single announcement of an 'unexpected event'. For other investigators, the message lies in the degree of ensemble synchrony and rhythmicity among a population of climbing fibers."[21]

Deep nuclei edit

 
Sagittal cross-section of human cerebellum, showing the dentate nucleus, as well as the pons and inferior olivary nucleus

The deep nuclei of the cerebellum are clusters of gray matter lying within the white matter at the core of the cerebellum. They are, with the minor exception of the nearby vestibular nuclei, the sole sources of output from the cerebellum. These nuclei receive collateral projections from mossy fibers and climbing fibers as well as inhibitory input from the Purkinje cells of the cerebellar cortex. The four nuclei (dentate, globose, emboliform, and fastigial) each communicate with different parts of the brain and cerebellar cortex. (The globose and the emboliform nuclei are also referred to as combined in the interposed nucleus). The fastigial and interposed nuclei belong to the spinocerebellum. The dentate nucleus, which in mammals is much larger than the others, is formed as a thin, convoluted layer of gray matter, and communicates exclusively with the lateral parts of the cerebellar cortex. The flocculus of the flocculonodular lobe is the only part of the cerebellar cortex that does not project to the deep nuclei—its output goes to the vestibular nuclei instead.[9]

The majority of neurons in the deep nuclei have large cell bodies and spherical dendritic trees with a radius of about 400 μm, and use glutamate as their neurotransmitter. These cells project to a variety of targets outside the cerebellum. Intermixed with them are a lesser number of small cells, which use GABA as a neurotransmitter and project exclusively to the inferior olivary nucleus, the source of climbing fibers. Thus, the nucleo-olivary projection provides an inhibitory feedback to match the excitatory projection of climbing fibers to the nuclei. There is evidence that each small cluster of nuclear cells projects to the same cluster of olivary cells that send climbing fibers to it; there is strong and matching topography in both directions.[9]

When a Purkinje cell axon enters one of the deep nuclei, it branches to make contact with both large and small nuclear cells, but the total number of cells contacted is only about 35 (in cats). Conversely, a single deep nuclear cell receives input from approximately 860 Purkinje cells (again in cats).[9]

Compartments edit

 
Schematic illustration of the structure of zones and microzones in the cerebellar cortex

From the viewpoint of gross anatomy, the cerebellar cortex appears to be a homogeneous sheet of tissue, and, from the viewpoint of microanatomy, all parts of this sheet appear to have the same internal structure. There are, however, a number of respects in which the structure of the cerebellum is compartmentalized. There are large compartments that are generally known as zones; these can be divided into smaller compartments known as microzones.[25]

The first indications of compartmental structure came from studies of the receptive fields of cells in various parts of the cerebellar cortex.[25] Each body part maps to specific points in the cerebellum, but there are numerous repetitions of the basic map, forming an arrangement that has been called "fractured somatotopy".[26] A clearer indication of compartmentalization is obtained by immunostaining the cerebellum for certain types of protein. The best-known of these markers are called "zebrins", because staining for them gives rise to a complex pattern reminiscent of the stripes on a zebra. The stripes generated by zebrins and other compartmentalization markers are oriented perpendicular to the cerebellar folds—that is, they are narrow in the mediolateral direction, but much more extended in the longitudinal direction. Different markers generate different sets of stripes, the widths and lengths vary as a function of location, but they all have the same general shape.[25]

Oscarsson in the late 1970s proposed that these cortical zones can be partitioned into smaller units called microzones.[27] A microzone is defined as a group of Purkinje cells all having the same somatotopic receptive field. Microzones were found to contain on the order of 1000 Purkinje cells each, arranged in a long, narrow strip, oriented perpendicular to the cortical folds.[25] Thus, as the adjoining diagram illustrates, Purkinje cell dendrites are flattened in the same direction as the microzones extend, while parallel fibers cross them at right angles.[9]

It is not only receptive fields that define the microzone structure: The climbing fiber input from the inferior olivary nucleus is equally important. The branches of a climbing fiber (usually numbering about 10) usually activate Purkinje cells belonging to the same microzone. Moreover, olivary neurons that send climbing fibers to the same microzone tend to be coupled by gap junctions, which synchronize their activity, causing Purkinje cells within a microzone to show correlated complex spike activity on a millisecond time scale.[25] Also, the Purkinje cells belonging to a microzone all send their axons to the same small cluster of output cells within the deep cerebellar nuclei.[25] Finally, the axons of basket cells are much longer in the longitudinal direction than in the mediolateral direction, causing them to be confined largely to a single microzone.[25] The consequence of all this structure is that cellular interactions within a microzone are much stronger than interactions between different microzones.[25]

In 2005, Richard Apps and Martin Garwicz summarized evidence that microzones themselves form part of a larger entity they call a multizonal microcomplex. Such a microcomplex includes several spatially separated cortical microzones, all of which project to the same group of deep cerebellar neurons, plus a group of coupled olivary neurons that project to all of the included microzones as well as to the deep nuclear area.[25]

Blood supply edit

The cerebellum is provided with blood from three paired major arteries: the superior cerebellar artery (SCA), the anterior inferior cerebellar artery (AICA), and the posterior inferior cerebellar artery (PICA). The SCA supplies the upper region of the cerebellum. It divides at the upper surface and branches into the pia mater where the branches anastomose with those of the anterior and posterior inferior cerebellar arteries. The AICA supplies the front part of the undersurface of the cerebellum. The PICA arrives at the undersurface, where it divides into a medial branch and a lateral branch. The medial branch continues backward to the cerebellar notch between the two hemispheres of the cerebellum; while the lateral branch supplies the under surface of the cerebellum, as far as its lateral border, where it anastomoses with the AICA and the SCA.

Function edit

The strongest clues to the function of the cerebellum have come from examining the consequences of damage to it. Animals and humans with cerebellar dysfunction show, above all, problems with motor control, on the same side of the body as the damaged part of the cerebellum. They continue to be able to generate motor activity but lose precision, producing erratic, uncoordinated, or incorrectly timed movements. A standard test of cerebellar function is to reach with the tip of the finger for a target at arm's length: A healthy person will move the fingertip in a rapid straight trajectory, whereas a person with cerebellar damage will reach slowly and erratically, with many mid-course corrections. Deficits in non-motor functions are more difficult to detect. Thus, the general conclusion reached decades ago is that the basic function of the cerebellum is to calibrate the detailed form of a movement, not to initiate movements or to decide which movements to execute.[11]

Prior to the 1990s the function of the cerebellum was almost universally believed to be purely motor-related, but newer findings have brought that view into question. Functional imaging studies have shown cerebellar activation in relation to language, attention, and mental imagery; correlation studies have shown interactions between the cerebellum and non-motor areas of the cerebral cortex; and a variety of non-motor symptoms have been recognized in people with damage that appears to be confined to the cerebellum.[28][29] In particular, the cerebellar cognitive affective syndrome or Schmahmann's syndrome[30] has been described in adults[31] and children.[32] Estimates based on functional mapping of the cerebellum using functional MRI suggest that more than half of the cerebellar cortex is interconnected with association zones of the cerebral cortex.[33]

Kenji Doya has argued that the cerebellum's function is best understood not in terms of the behaviors it affects, but the neural computations it performs; the cerebellum consists of a large number of more or less independent modules, all with the same geometrically regular internal structure, and therefore all, it is presumed, performing the same computation. If the input and output connections of a module are with motor areas (as many are), then the module will be involved in motor behavior; but, if the connections are with areas involved in non-motor cognition, the module will show other types of behavioral correlates. Thus the cerebellum has been implicated in the regulation of many differing functional traits such as affection, emotion including emotional body language perception[34] and behavior.[35][36] The cerebellum, Doya proposes, is best understood as predictive action selection based on "internal models" of the environment or a device for supervised learning, in contrast to the basal ganglia, which perform reinforcement learning, and the cerebral cortex, which performs unsupervised learning.[29][37] Three decades of brain research have led to the proposal that the cerebellum generates optimized mental models and interacts closely with the cerebral cortex, where updated internal models are experienced as creative intuition ("a ha") in working memory. [38]

Principles edit

The comparative simplicity and regularity of the cerebellar anatomy led to an early hope that it might imply a similar simplicity of computational function, as expressed in one of the first books on cerebellar electrophysiology, The Cerebellum as a Neuronal Machine by John C. Eccles, Masao Ito, and János Szentágothai.[39] Although a full understanding of cerebellar function has remained elusive, at least four principles have been identified as important: (1) feedforward processing, (2) divergence and convergence, (3) modularity, and (4) plasticity.

  1. Feedforward processing: The cerebellum differs from most other parts of the brain (especially the cerebral cortex) in that the signal processing is almost entirely feedforward—that is, signals move unidirectionally through the system from input to output, with very little recurrent internal transmission. The small amount of recurrence that does exist consists of mutual inhibition; there are no mutually excitatory circuits. This feedforward mode of operation means that the cerebellum, in contrast to the cerebral cortex, cannot generate self-sustaining patterns of neural activity. Signals enter the circuit, are processed by each stage in sequential order, and then leave. As Eccles, Ito, and Szentágothai wrote, "This elimination in the design of all possibility of reverberatory chains of neuronal excitation is undoubtedly a great advantage in the performance of the cerebellum as a computer, because what the rest of the nervous system requires from the cerebellum is presumably not some output expressing the operation of complex reverberatory circuits in the cerebellum but rather a quick and clear response to the input of any particular set of information."[40]
  2. Divergence and convergence: In the human cerebellum, information from 200 million mossy fiber inputs is expanded to 40 billion granule cells, whose parallel fiber outputs then converge onto 15 million Purkinje cells.[9] Because of the way that they are lined up longitudinally, the 1000 or so Purkinje cells belonging to a microzone may receive input from as many as 100 million parallel fibers, and focus their own output down to a group of less than 50 deep nuclear cells.[25] Thus, the cerebellar network receives a modest number of inputs, processes them very extensively through its rigorously structured internal network, and sends out the results via a very limited number of output cells.
  3. Modularity: The cerebellar system is functionally divided into more or less independent modules, which probably number in the hundreds to thousands. All modules have a similar internal structure, but different inputs and outputs. A module (a multizonal microcompartment in the terminology of Apps and Garwicz) consists of a small cluster of neurons in the inferior olivary nucleus, a set of long narrow strips of Purkinje cells in the cerebellar cortex (microzones), and a small cluster of neurons in one of the deep cerebellar nuclei. Different modules share input from mossy fibers and parallel fibers, but in other respects they appear to function independently—the output of one module does not appear to significantly influence the activity of other modules.[25]
  4. Plasticity: The synapses between parallel fibers and Purkinje cells, and the synapses between mossy fibers and deep nuclear cells, are both susceptible to modification of their strength. In a single cerebellar module, input from as many as a billion parallel fibers converges onto a group of less than 50 deep nuclear cells, and the influence of each parallel fiber on those nuclear cells is adjustable. This arrangement gives tremendous flexibility for fine-tuning the relationship between the cerebellar inputs and outputs.[41]

Learning edit

There is considerable evidence that the cerebellum plays an essential role in some types of motor learning. The tasks where the cerebellum most clearly comes into play are those in which it is necessary to make fine adjustments to the way an action is performed. There has, however, been much dispute about whether learning takes place within the cerebellum itself, or whether it merely serves to provide signals that promote learning in other brain structures.[41] Most theories that assign learning to the circuitry of the cerebellum are derived from the ideas of David Marr[24] and James Albus,[6] who postulated that climbing fibers provide a teaching signal that induces synaptic modification in parallel fiberPurkinje cell synapses.[42] Marr assumed that climbing fiber input would cause synchronously activated parallel fiber inputs to be strengthened. Most subsequent cerebellar-learning models, however, have followed Albus in assuming that climbing fiber activity would be an error signal, and would cause synchronously activated parallel fiber inputs to be weakened. Some of these later models, such as the Adaptive Filter model of Fujita[43] made attempts to understand cerebellar function in terms of optimal control theory.

The idea that climbing fiber activity functions as an error signal has been examined in many experimental studies, with some supporting it but others casting doubt.[21] In a pioneering study by Gilbert and Thach from 1977, Purkinje cells from monkeys learning a reaching task showed increased complex spike activity—which is known to reliably indicate activity of the cell's climbing fiber input—during periods when performance was poor.[44] Several studies of motor learning in cats observed complex spike activity when there was a mismatch between an intended movement and the movement that was actually executed. Studies of the vestibulo–ocular reflex (which stabilizes the visual image on the retina when the head turns) found that climbing fiber activity indicated "retinal slip", although not in a very straightforward way.[21]

One of the most extensively studied cerebellar learning tasks is the eyeblink conditioning paradigm, in which a neutral conditioned stimulus (CS) such as a tone or a light is repeatedly paired with an unconditioned stimulus (US), such as an air puff, that elicits a blink response. After such repeated presentations of the CS and US, the CS will eventually elicit a blink before the US, a conditioned response or CR. Experiments showed that lesions localized either to a specific part of the interposed nucleus (one of the deep cerebellar nuclei) or to a few specific points in the cerebellar cortex would abolish learning of a conditionally timed blink response. If cerebellar outputs are pharmacologically inactivated while leaving the inputs and intracellular circuits intact, learning takes place even while the animal fails to show any response, whereas, if intracerebellar circuits are disrupted, no learning takes place—these facts taken together make a strong case that the learning, indeed, occurs inside the cerebellum.[45]

Theories and computational models edit

 
Model of a cerebellar perceptron, as formulated by James Albus

The large base of knowledge about the anatomical structure and behavioral functions of the cerebellum have made it a fertile ground for theorizing—there are perhaps more theories of the function of the cerebellum than of any other part of the brain. The most basic distinction among them is between "learning theories" and "performance theories"—that is, theories that make use of synaptic plasticity within the cerebellum to account for its role in learning, versus theories that account for aspects of ongoing behavior on the basis of cerebellar signal processing. Several theories of both types have been formulated as mathematical models and simulated using computers.[42]

Perhaps the earliest "performance" theory was the "delay line" hypothesis of Valentino Braitenberg. The original theory put forth by Braitenberg and Roger Atwood in 1958 proposed that slow propagation of signals along parallel fibers imposes predictable delays that allow the cerebellum to detect time relationships within a certain window.[46] Experimental data did not support the original form of the theory, but Braitenberg continued to argue for modified versions.[47] The hypothesis that the cerebellum functions essentially as a timing system has also been advocated by Richard Ivry.[48] Another influential "performance" theory is the Tensor network theory of Pellionisz and Llinás, which provided an advanced mathematical formulation of the idea that the fundamental computation performed by the cerebellum is to transform sensory into motor coordinates.[49]

Theories in the "learning" category almost all derive from publications by Marr and Albus. Marr's 1969 paper proposed that the cerebellum is a device for learning to associate elemental movements encoded by climbing fibers with mossy fiber inputs that encode the sensory context.[24] Albus proposed in 1971 that a cerebellar Purkinje cell functions as a perceptron, a neurally inspired abstract learning device.[6] The most basic difference between the Marr and Albus theories is that Marr assumed that climbing fiber activity would cause parallel fiber synapses to be strengthened, whereas Albus proposed that they would be weakened. Albus also formulated his version as a software algorithm he called a CMAC (Cerebellar Model Articulation Controller), which has been tested in a number of applications.[50]

Clinical significance edit

 
Illustration from 1912 of the altered walking gait of a woman with cerebellar disease
 
The lower trace shows an attempt by a patient with cerebellar disease to reproduce the upper trace.

Damage to the cerebellum often causes motor-related symptoms, the details of which depend on the part of the cerebellum involved and how it is damaged. Damage to the flocculonodular lobe may show up as a loss of equilibrium and in particular an altered, irregular walking gait, with a wide stance caused by difficulty in balancing.[11] Damage to the lateral zone typically causes problems in skilled voluntary and planned movements which can cause errors in the force, direction, speed and amplitude of movements. Other manifestations include hypotonia (decreased muscle tone), dysarthria (problems with speech articulation), dysmetria (problems judging distances or ranges of movement), dysdiadochokinesia (inability to perform rapid alternating movements such as walking), impaired check reflex or rebound phenomenon, and intention tremor (involuntary movement caused by alternating contractions of opposing muscle groups).[51][52] Damage to the midline portion may disrupt whole-body movements, whereas damage localized more laterally is more likely to disrupt fine movements of the hands or limbs. Damage to the upper part of the cerebellum tends to cause gait impairments and other problems with leg coordination; damage to the lower part is more likely to cause uncoordinated or poorly aimed movements of the arms and hands, as well as difficulties in speed.[11] This complex of motor symptoms is called ataxia.

To identify cerebellar problems, neurological examination includes assessment of gait (a broad-based gait being indicative of ataxia), finger-pointing tests and assessment of posture.[4] If cerebellar dysfunction is indicated, a magnetic resonance imaging scan can be used to obtain a detailed picture of any structural alterations that may exist.[53]

The list of medical problems that can produce cerebellar damage is long, including stroke, hemorrhage, swelling of the brain (cerebral edema), tumors, alcoholism, physical trauma such as gunshot wounds or explosives, and chronic degenerative conditions such as olivopontocerebellar atrophy.[54][55] Some forms of migraine headache may also produce temporary dysfunction of the cerebellum, of variable severity.[56] Infection can result in cerebellar damage in such conditions as the prion diseases[57] and Miller Fisher syndrome, a variant of Guillain–Barré syndrome.

Aging edit

The human cerebellum changes with age. These changes may differ from those of other parts of the brain. The cerebellum is the youngest brain region (and body part) in centenarians according to an epigenetic biomarker of tissue age known as epigenetic clock: it is about 15 years younger than expected in a centenarian.[58] Further, gene expression patterns in the human cerebellum show less age-related alteration than that in the cerebral cortex.[59] Some studies have reported reductions in numbers of cells or volume of tissue, but the amount of data relating to this question is not very large.[60][61]

Developmental and degenerative disorders edit

 
Ultrasound image of the fetal head at 19 weeks of pregnancy in a modified axial section, showing the normal fetal cerebellum and cisterna magna

Congenital malformation, hereditary disorders, and acquired conditions can affect cerebellar structure and, consequently, cerebellar function. Unless the causative condition is reversible, the only possible treatment is to help people live with their problems.[62] Visualization of the fetal cerebellum by ultrasound scan at 18 to 20 weeks of pregnancy can be used to screen for fetal neural tube defects with a sensitivity rate of up to 99%.[63]

In normal development, endogenous sonic hedgehog signaling stimulates rapid proliferation of cerebellar granule neuron progenitors (CGNPs) in the external granule layer (EGL). Cerebellar development occurs during late embryogenesis and the early postnatal period, with CGNP proliferation in the EGL peaking during early development (postnatal day 7 in the mouse).[64] As CGNPs terminally differentiate into cerebellar granule cells (also called cerebellar granule neurons, CGNs), they migrate to the internal granule layer (IGL), forming the mature cerebellum (by post-natal day 20 in the mouse).[64] Mutations that abnormally activate Sonic hedgehog signaling predispose to cancer of the cerebellum (medulloblastoma) in humans with Gorlin Syndrome and in genetically engineered mouse models.[65][66]

Congenital malformation or underdevelopment (hypoplasia) of the cerebellar vermis is a characteristic of both Dandy–Walker syndrome and Joubert syndrome.[67][68] In very rare cases, the entire cerebellum may be absent.[69] The inherited neurological disorders Machado–Joseph disease, ataxia telangiectasia, and Friedreich's ataxia cause progressive neurodegeneration linked to cerebellar loss.[54][62] Congenital brain malformations outside the cerebellum can, in turn, cause herniation of cerebellar tissue, as seen in some forms of Arnold–Chiari malformation.[70]

Other conditions that are closely linked to cerebellar degeneration include the idiopathic progressive neurological disorders multiple system atrophy and Ramsay Hunt syndrome type I,[71][72] and the autoimmune disorder paraneoplastic cerebellar degeneration, in which tumors elsewhere in the body elicit an autoimmune response that causes neuronal loss in the cerebellum.[73] Cerebellar atrophy can result from an acute deficiency of vitamin B1 (thiamine) as seen in beriberi and in Wernicke–Korsakoff syndrome,[74] or vitamin E deficiency.[62]

Cerebellar atrophy has been observed in many other neurological disorders including Huntington's disease, multiple sclerosis,[57] essential tremor, progressive myoclonus epilepsy, and Niemann–Pick disease. Cerebellar atrophy can also occur as a result of exposure to toxins including heavy metals or pharmaceutical or recreational drugs.[62]

Pain edit

There is a general consensus that the cerebellum is involved in pain processing.[75][76] The cerebellum receives pain input from both descending cortico-cerebellar pathways and ascending spino-cerebellar pathways, through the pontine nuclei and inferior olives. Some of this information is transferred to the motor system inducing a conscious motor avoidance of pain, graded according to pain intensity.

These direct pain inputs, as well as indirect inputs, are thought to induce long-term pain avoidance behavior that results in chronic posture changes and consequently, in functional and anatomical remodeling of vestibular and proprioceptive nuclei. As a result, chronic neuropathic pain can induce macroscopic anatomical remodeling of the hindbrain, including the cerebellum.[23] The magnitude of this remodeling and the induction of neuron progenitor markers suggest the contribution of adult neurogenesis to these changes.

Comparative anatomy and evolution edit

 
Cross-section of the brain of a porbeagle shark, with the cerebellum highlighted in blue

The circuits in the cerebellum are similar across all classes of vertebrates, including fish, reptiles, birds, and mammals.[77] There is also an analogous brain structure in cephalopods with well-developed brains, such as octopuses.[78] This has been taken as evidence that the cerebellum performs functions important to all animal species with a brain.

There is considerable variation in the size and shape of the cerebellum in different vertebrate species. In amphibians, it is little developed, and in lampreys, and hagfish, the cerebellum is barely distinguishable from the brain-stem. Although the spinocerebellum is present in these groups, the primary structures are small, paired-nuclei corresponding to the vestibulocerebellum.[79] The cerebellum is a bit larger in reptiles, considerably larger in birds, and larger yet in mammals. The large paired and convoluted lobes found in humans are typical of mammals, but the cerebellum is, in general, a single median lobe in other groups, and is either smooth or only slightly grooved. In mammals, the neocerebellum is the major part of the cerebellum by mass, but, in other vertebrates, it is typically the spinocerebellum.[79]

The cerebellum of cartilaginous and bony fishes is extraordinarily large and complex. In at least one important respect, it differs in internal structure from the mammalian cerebellum: The fish cerebellum does not contain discrete deep cerebellar nuclei. Instead, the primary targets of Purkinje cells are a distinct type of cell distributed across the cerebellar cortex, a type not seen in mammals. In mormyrid fish (a family of weakly electrosensitive freshwater fish), the cerebellum is considerably larger than the rest of the brain. The largest part of it is a special structure called the valvula, which has an unusually regular architecture and receives much of its input from the electrosensory system.[80]

The hallmark of the mammalian cerebellum is an expansion of the lateral lobes, whose main interactions are with the neocortex. As monkeys evolved into great apes, the expansion of the lateral lobes continued, in tandem with the expansion of the frontal lobes of the neocortex. In ancestral hominids, and in Homo sapiens until the middle Pleistocene period, the cerebellum continued to expand, but the frontal lobes expanded more rapidly. The most recent period of human evolution, however, may actually have been associated with an increase in the relative size of the cerebellum, as the neocortex reduced its size somewhat while the cerebellum expanded.[81] The size of the human cerebellum, compared to the rest of the brain, has been increasing in size while the cerebrum decreased in size [82] With both the development and implementation of motor tasks, visual-spatial skills and learning taking place in the cerebellum, the growth of the cerebellum is thought to have some form of correlation to greater human cognitive abilities.[83] The lateral hemispheres of the cerebellum are now 2.7 times greater in both humans and apes than they are in monkeys.[82] These changes in the cerebellum size cannot be explained by greater muscle mass. They show that either the development of the cerebellum is tightly linked to that of the rest of the brain or that neural activities taking place in the cerebellum were important during Hominidae evolution. Due to the cerebellum's role in cognitive functions, the increase in its size may have played a role in cognitive expansion.[82]

Cerebellum-like structures edit

Most vertebrate species have a cerebellum and one or more cerebellum-like structures, brain areas that resemble the cerebellum in terms of cytoarchitecture and neurochemistry.[77] The only cerebellum-like structure found in mammals is the dorsal cochlear nucleus (DCN), one of the two primary sensory nuclei that receive input directly from the auditory nerve. The DCN is a layered structure, with the bottom layer containing granule cells similar to those of the cerebellum, giving rise to parallel fibers that rise to the superficial layer and travel across it horizontally. The superficial layer contains a set of GABAergic neurons called cartwheel cells that resemble Purkinje cells anatomically and chemically—they receive parallel fiber input, but do not have any inputs that resemble climbing fibers. The output neurons of the DCN are pyramidal cells. They are glutamatergic, but also resemble Purkinje cells in some respects—they have spiny, flattened superficial dendritic trees that receive parallel fiber input, but they also have basal dendrites that receive input from auditory nerve fibers, which travel across the DCN in a direction at right angles to the parallel fibers. The DCN is most highly developed in rodents and other small animals, and is considerably reduced in primates. Its function is not well understood; the most popular speculations relate it to spatial hearing in one way or another.[84]

Most species of fish and amphibians possess a lateral line system that senses pressure waves in water. One of the brain areas that receives primary input from the lateral line organ, the medial octavolateral nucleus, has a cerebellum-like structure, with granule cells and parallel fibers. In electrosensitive fish, the input from the electrosensory system goes to the dorsal octavolateral nucleus, which also has a cerebellum-like structure. In ray-finned fishes (by far the largest group), the optic tectum has a layer—the marginal layer—that is cerebellum-like.[77]

All of these cerebellum-like structures appear to be primarily sensory-related rather than motor-related. All of them have granule cells that give rise to parallel fibers that connect to Purkinje-like neurons with modifiable synapses, but none have climbing fibers comparable to those of the cerebellum—instead they receive direct input from peripheral sensory organs. None has a demonstrated function, but the most influential speculation is that they serve to transform sensory inputs in some sophisticated way, perhaps to compensate for changes in body posture.[77] In fact, James M. Bower and others have argued, partly on the basis of these structures and partly on the basis of cerebellar studies, that the cerebellum itself is fundamentally a sensory structure, and that it contributes to motor control by moving the body in a way that controls the resulting sensory signals.[85] Despite Bower's viewpoint, there is also strong evidence that the cerebellum directly influences motor output in mammals.[86][87]

History edit

 
Base of the human brain, as drawn by Andreas Vesalius in 1543

Descriptions edit

Even the earliest anatomists were able to recognize the cerebellum by its distinctive appearance. Aristotle and Herophilus (quoted in Galen) called it the παρεγκεφαλίς (parenkephalis), as opposed to the ἐγκέφαλος (enkephalos) or brain proper. Galen's extensive description is the earliest that survives. He speculated that the cerebellum was the source of motor nerves.[88]

Further significant developments did not come until the Renaissance. Vesalius discussed the cerebellum briefly, and the anatomy was described more thoroughly by Thomas Willis in 1664. More anatomical work was done during the 18th century, but it was not until early in the 19th century that the first insights into the function of the cerebellum were obtained. Luigi Rolando in 1809 established the key finding that damage to the cerebellum results in motor disturbances. Jean Pierre Flourens in the first half of the 19th century carried out detailed experimental work, which revealed that animals with cerebellar damage can still move, but with a loss of coordination (strange movements, awkward gait, and muscular weakness), and that recovery after the lesion can be nearly complete unless the lesion is very extensive.[89] By the beginning of the 20th century, it was widely accepted that the primary function of the cerebellum relates to motor control; the first half of the 20th century produced several detailed descriptions of the clinical symptoms associated with cerebellar disease in humans.[4]

Etymology edit

The name cerebellum is a diminutive of cerebrum (brain);[90] it can be translated literally as little brain. The Latin name is a direct translation of the Ancient Greek παρεγκεφαλίς (parenkephalis), which was used in the works of Aristotle, the first known writer to describe the structure.[91] No other name is used in the English-language literature, but historically a variety of Greek or Latin-derived names have been used, including cerebrum parvum,[92] encephalion,[93] encranion,[92] cerebrum posterius,[94] and parencephalis.[92]

See also edit

References edit

  This article was submitted to WikiJournal of Medicine for external academic peer review in 2016 (reviewer reports). The updated content was reintegrated into the Wikipedia page under a CC-BY-SA-3.0 license (2016). The version of record as reviewed is: Marion Wright; William Skaggs; Finn Årup Nielsen; et al. (30 June 2016). "The Cerebellum" (PDF). WikiJournal of Medicine. 3 (1). doi:10.15347/WJM/2016.001. ISSN 2002-4436. Wikidata Q44001486.

  1. ^ Hodos W (2009). "Evolution of Cerebellum". Encyclopedia of Neuroscience. Berlin, Heidelberg: Springer. pp. 1240–1243. doi:10.1007/978-3-540-29678-2_3124. ISBN 978-3-540-23735-8.
  2. ^ Wolf U, Rapoport MJ, Schweizer TA (2009). "Evaluating the affective component of the cerebellar cognitive affective syndrome". Journal of Neuropsychiatry and Clinical Neurosciences. 21 (3): 245–53. doi:10.1176/jnp.2009.21.3.245. PMID 19776302.
  3. ^ Schmahmann JD, Caplan D (February 2006). "Cognition, emotion and the cerebellum". Brain. 129 (Pt 2): 290–2. doi:10.1093/brain/awh729. PMID 16434422.
  4. ^ a b c d Fine EJ, Ionita CC, Lohr L (December 2002). "The history of the development of the cerebellar examination". Seminars in Neurology. 22 (4): 375–84. doi:10.1055/s-2002-36759. PMID 12539058. S2CID 260317107.
  5. ^ a b Purves D, Augustine GJ, Fitzpatrick D, Hall WC, LaMantia AS, White LE (2011). Neuroscience (5th ed.). Sunderland, Mass.: Sinauer. pp. 417–423. ISBN 978-0-87893-695-3.
  6. ^ a b c Albus JS (1971). "A theory of cerebellar function". Math. Biosciences. 10 (1–2): 25–61. CiteSeerX 10.1.1.14.7524. doi:10.1016/0025-5564(71)90051-4.
  7. ^ Purves D, Augustine GJ, Fitzpatrick D, Hall WC, LaMantia AS, White LE (2007). Neuroscience (4th ed.). New York: W. H. Freeman. pp. 197–200. ISBN 978-0-87893-697-7.
  8. ^ Standring S, Borley NR, et al., eds. (2008). "Chapter 20". Gray's anatomy : the anatomical basis of clinical practice (40th ed.). London: Churchill Livingstone. p. 297. ISBN 978-0-8089-2371-8.
  9. ^ a b c d e f g h i j k l m n o p q r s t u v w x y z Llinas RR, Walton KD, Lang EJ (2004). "Ch. 7 Cerebellum". In Shepherd GM (ed.). The Synaptic Organization of the Brain. New York: Oxford University Press. ISBN 978-0-19-515955-4.
  10. ^ Herculano-Houzel S (2010). "Coordinated scaling of cortical and cerebellar numbers of neurons". Frontiers in Neuroanatomy. 4: 12. doi:10.3389/fnana.2010.00012. PMC 2839851. PMID 20300467.
  11. ^ a b c d e f g h i j Ghez C, Fahn S (1985). "The cerebellum". In Kandel ER, Schwartz JH (eds.). Principles of Neural Science, 2nd edition. New York: Elsevier. pp. 502–522.
  12. ^ Snider RS, Stowell A (1 November 1944). "Receiving Areas of the Tactile, Auditory, and Visual Systems in the Cerebellum". Journal of Neurophysiology. 7 (6): 331–357. doi:10.1152/jn.1944.7.6.331. S2CID 146700933.
  13. ^ Kingsley RE (2000). Concise Text of Neuroscience (2nd ed.). Lippincott Williams & Wilkins. ISBN 978-0-683-30460-2.
  14. ^ Petersen SE, Fox PT, Posner MI, Mintun M, Raichle ME (1989). "Positron emission tomographic studies of the processing of single words". Journal of Cognitive Neuroscience. 1 (2): 153–70. doi:10.1162/jocn.1989.1.2.153. PMID 23968463. S2CID 35159122.
  15. ^ Timmann D, Daum I (2007). "Cerebellar contributions to cognitive functions: a progress report after two decades of research". Cerebellum. 6 (3): 159–62. doi:10.1080/14734220701496448. PMID 17786810. S2CID 25671398.
  16. ^ Strick PL, Dum RP, Fiez JA (2009). "Cerebellum and nonmotor function". Annual Review of Neuroscience. 32: 413–34. doi:10.1146/annurev.neuro.31.060407.125606. PMID 19555291. S2CID 1066141.
  17. ^ Buckner RL (October 2013). "The cerebellum and cognitive function: 25 years of insight from anatomy and neuroimaging". Neuron. 80 (3): 807–15. doi:10.1016/j.neuron.2013.10.044. PMID 24183029.
  18. ^ Schweighofer N, Doya K, Kuroda S (March 2004). "Cerebellar aminergic neuromodulation: towards a functional understanding". Brain Research. Brain Research Reviews. 44 (2–3): 103–16. doi:10.1016/j.brainresrev.2003.10.004. PMID 15003388. S2CID 7352039.
  19. ^ Felizola SJ, Nakamura Y, Ono Y, Kitamura K, Kikuchi K, Onodera Y, Ise K, Takase K, Sugawara A, Hattangady N, Rainey WE, Satoh F, Sasano H (April 2014). "PCP4: a regulator of aldosterone synthesis in human adrenocortical tissues". Journal of Molecular Endocrinology. 52 (2): 159–67. doi:10.1530/JME-13-0248. PMC 4103644. PMID 24403568.
  20. ^ Eccles JC, Llinás R, Sasaki K (January 1966). "The excitatory synaptic action of climbing fibres on the Purkinje cells of the cerebellum". Journal of Physiology. 182 (2): 268–96. doi:10.1113/jphysiol.1966.sp007824. PMC 1357472. PMID 5944665.
  21. ^ a b c d Simpson JI, Wylie DR, De Zeeuw CI (1996). "On climbing fiber signals and their consequence(s)". Behav. Brain Sci. 19 (3): 384–398. doi:10.1017/S0140525X00081486.
  22. ^ Whitney ER, Kemper TL, Rosene DL, Bauman ML, Blatt GJ (February 2008). "Calbindin-D28k is a more reliable marker of human Purkinje cells than standard Nissl stains: a stereological experiment". Journal of Neuroscience Methods. 168 (1): 42–7. doi:10.1016/j.jneumeth.2007.09.009. PMID 17961663. S2CID 10505177.
  23. ^ a b Rusanescu G, Mao J (February 2017). "Peripheral nerve injury induces adult brain neurogenesis and remodelling". Journal of Cellular and Molecular Medicine. 21 (2): 299–314. doi:10.1111/jcmm.12965. PMC 5264155. PMID 27665307.
  24. ^ a b c Marr D (June 1969). "A theory of cerebellar cortex". Journal of Physiology. 202 (2): 437–70. doi:10.1113/jphysiol.1969.sp008820. PMC 1351491. PMID 5784296.
  25. ^ a b c d e f g h i j k Apps R, Garwicz M (April 2005). "Anatomical and physiological foundations of cerebellar information processing". Nature Reviews. Neuroscience. 6 (4): 297–311. doi:10.1038/nrn1646. PMID 15803161. S2CID 10769826.
  26. ^ Manni E, Petrosini L (March 2004). "A century of cerebellar somatotopy: a debated representation". Nature Reviews. Neuroscience. 5 (3): 241–9. doi:10.1038/nrn1347. PMID 14976523. S2CID 30232749.
  27. ^ Oscarsson O (1979). "Functional units of the cerebellum-sagittal zones and microzones". Trends Neurosci. 2: 143–145. doi:10.1016/0166-2236(79)90057-2. S2CID 53272245.
  28. ^ Rapp B (2001). The Handbook of Cognitive Neuropsychology: What Deficits Reveal about the Human Mind. Psychology Press. p. 481. ISBN 978-1-84169-044-5.
  29. ^ a b Doya K (December 2000). "Complementary roles of basal ganglia and cerebellum in learning and motor control". Current Opinion in Neurobiology. 10 (6): 732–9. doi:10.1016/S0959-4388(00)00153-7. PMID 11240282. S2CID 10962570.
  30. ^ Manto M, Mariën P (2015). "Schmahmann's syndrome - identification of the third cornerstone of clinical ataxiology". Cerebellum & Ataxias. 2: 2. doi:10.1186/s40673-015-0023-1. PMC 4552302. PMID 26331045.
  31. ^ Schmahmann JD, Sherman JC (April 1998). "The cerebellar cognitive affective syndrome". Brain. 121 (4): 561–79. doi:10.1093/brain/121.4.561. PMID 9577385.
  32. ^ Levisohn L, Cronin-Golomb A, Schmahmann JD (May 2000). "Neuropsychological consequences of cerebellar tumour resection in children: cerebellar cognitive affective syndrome in a paediatric population". Brain. 123 (5): 1041–50. doi:10.1093/brain/123.5.1041. PMID 10775548.
  33. ^ Buckner RL, Krienen FM, Castellanos A, Diaz JC, Yeo BT (November 2011). "The organization of the human cerebellum estimated by intrinsic functional connectivity". Journal of Neurophysiology. 106 (5): 2322–45. doi:10.1152/jn.00339.2011. PMC 3214121. PMID 21795627.
  34. ^ The emotional cerebellum. Michael Adamaszek, Mario Manto, Dennis J. L. G. Schutter. Cham, Switzerland: Springer. 2022. ISBN 978-3-030-99550-8. OCLC 1338132789.{{cite book}}: CS1 maint: others (link)
  35. ^ Hernáez-Goñi P, Tirapu-Ustárroz J, Iglesias-Fernández L, Luna-Lario P (November 2010). "Participación del cerebelo en la regulación del afecto, la emoción y la conducta" [The role of the cerebellum in the regulation of affection, emotion and behavior]. Revista de Neurología (in Spanish). 51 (10): 597–609. doi:10.33588/rn.5110.2010394. PMID 21069639.
  36. ^ Turner BM, Paradiso S, Marvel CL, Pierson R, Boles Ponto LL, Hichwa RD, Robinson RG (March 2007). "The cerebellum and emotional experience". Neuropsychologia. 45 (6): 1331–41. doi:10.1016/j.neuropsychologia.2006.09.023. PMC 1868674. PMID 17123557.
  37. ^ Doya K (October 1999). "What are the computations of the cerebellum, the basal ganglia and the cerebral cortex?". Neural Networks. 12 (7–8): 961–974. doi:10.1016/S0893-6080(99)00046-5. PMID 12662639.
  38. ^ Manto M, Marvel C, Vandervert L (2022). The new revolution in psychology and the neurosciences. Switzerland: Springer Nature. ISBN 9783031060922.
  39. ^ Eccles JC, Ito M, Szentágothai J (1967). The Cerebellum as a Neuronal Machine. Springer-Verlag.
  40. ^ The Cerebellum as a Neuronal Machine, p. 311
  41. ^ a b Boyden ES, Katoh A, Raymond JL (2004). "Cerebellum-dependent learning: the role of multiple plasticity mechanisms". Annual Review of Neuroscience. 27: 581–609. doi:10.1146/annurev.neuro.27.070203.144238. PMID 15217344. S2CID 1310007.
  42. ^ a b Houk JC, Buckingham JT, Barto AG (1996). (PDF). Behav. Brain Sci. 19 (3): 368–383. CiteSeerX 10.1.1.118.2997. doi:10.1017/S0140525X00081474. Archived from the original (PDF) on 2017-08-09.
  43. ^ Fujita M (1982). "Adaptive filter model of the cerebellum". Biological Cybernetics. 45 (3): 195–206. doi:10.1007/BF00336192. PMID 7171642. S2CID 3695770.
  44. ^ Gilbert PF, Thach WT (June 1977). "Purkinje cell activity during motor learning". Brain Research. 128 (2): 309–28. doi:10.1016/0006-8993(77)90997-0. PMID 194656. S2CID 40799652.
  45. ^ Christian KM, Thompson RF (2003). "Neural substrates of eyeblink conditioning: acquisition and retention". Learning & Memory. 10 (6): 427–55. doi:10.1101/lm.59603. PMID 14657256.
  46. ^ Braitenberg V, Atwood RP (February 1958). "Morphological observations on the cerebellar cortex". Journal of Comparative Neurology. 109 (1): 1–33. doi:10.1002/cne.901090102. PMID 13563670. S2CID 8989536.
  47. ^ Braitenberg V, Heck D, Sultan F (June 1997). "The detection and generation of sequences as a key to cerebellar function: experiments and theory". Behavioral and Brain Sciences. 20 (2): 229–45, discussion 245–77. doi:10.1017/s0140525x9700143x. PMID 10096998. S2CID 36802745.
  48. ^ Ivry RB, Spencer RM, Zelaznik HN, Diedrichsen J (December 2002). "The cerebellum and event timing". Annals of the New York Academy of Sciences. 978 (1): 302–17. Bibcode:2002NYASA.978..302I. doi:10.1111/j.1749-6632.2002.tb07576.x. PMID 12582062. S2CID 27237058.
  49. ^ Pellionisz A, Llinás R (1982). "Space-time representation in the brain. The cerebellum as a predictive space-time metric tensor". Neuroscience. 7 (12): 2949–70. doi:10.1016/0306-4522(82)90224-X. PMID 7162624. S2CID 20520737.
  50. ^ Horváth G (2003). "CMAC: Reconsidering an old neural network" (PDF). Intelligent Control Systems and Signal Processing. Retrieved 2009-12-24.
  51. ^ Schmitz TJ (2007). "Examination of Coordination". In O'Sullivan SB, Schmitz TJ (eds.). Physical Rehabilitation. Philadelphia: F. A. Davis. pp. 193–225. ISBN 9780803612471.
  52. ^ Mariën P, Manto M (2016). The linguistic cerebellum. London, UK: Academic Press. pp. 337–351. ISBN 978-0-12-801608-4.
  53. ^ Gilman S (March 1998). "Imaging the brain. Second of two parts". New England Journal of Medicine. 338 (13): 889–96. doi:10.1056/NEJM199803263381307. PMID 9516225.
  54. ^ a b "NINDS Ataxias and Cerebellar or Spinocerebellar Degeneration Information Page". National Institutes of Health. 16 April 2014. from the original on 9 February 2015. Retrieved 2 February 2015.
  55. ^ Yuhas D (January 15, 2016). "Veterans of Iraq, Afghanistan Show Brain Changes Related to Explosion Exposure". Scientific American. from the original on January 20, 2016. Retrieved January 21, 2016.
  56. ^ Vincent M, Hadjikhani N (June 2007). "The cerebellum and migraine". Headache. 47 (6): 820–33. doi:10.1111/j.1526-4610.2006.00715.x. PMC 3761082. PMID 17578530.
  57. ^ a b . National Institutes of Health. 28 February 2014. Archived from the original on 18 February 2015. Retrieved 2 February 2015.
  58. ^ Horvath S, Mah V, Lu AT, Woo JS, Choi OW, Jasinska AJ, Riancho JA, Tung S, Coles NS, Braun J, Vinters HV, Coles LS (May 2015). "The cerebellum ages slowly according to the epigenetic clock". Aging. 7 (5): 294–306. doi:10.18632/aging.100742. PMC 4468311. PMID 26000617.
  59. ^ Fraser HB, Khaitovich P, Plotkin JB, Pääbo S, Eisen MB (September 2005). "Aging and gene expression in the primate brain". PLOS Biology. 3 (9): e274. doi:10.1371/journal.pbio.0030274. PMC 1181540. PMID 16048372.
  60. ^ Andersen BB, Gundersen HJ, Pakkenberg B (November 2003). "Aging of the human cerebellum: a stereological study". Journal of Comparative Neurology. 466 (3): 356–65. doi:10.1002/cne.10884. PMID 14556293. S2CID 7091227.
  61. ^ Raz N, Gunning-Dixon F, Head D, Williamson A, Acker JD (2001). "Age and sex differences in the cerebellum and the ventral pons: a prospective MR study of healthy adults" (PDF). American Journal of Neuroradiology. 22 (6): 1161–7. PMC 7974784. PMID 11415913. (PDF) from the original on 2008-12-17.
  62. ^ a b c d Albert RK, Porter RS, eds. (2006). The Merck Manual of Diagnosis and Therapy (18th ed.). Whitehouse Station, New Jersey: Merck Research Libraries. pp. 1886–1887.
  63. ^ Campbell J, Gilbert WM, Nicolaides KH, Campbell S (August 1987). "Ultrasound screening for spina bifida: cranial and cerebellar signs in a high-risk population". Obstetrics and Gynecology. 70 (2): 247–50. PMID 3299184.
  64. ^ a b Hatten ME, Heintz N (1995). "Mechanisms of neural patterning and specification in the developing cerebellum". Annual Review of Neuroscience. 18: 385–408. doi:10.1146/annurev.ne.18.030195.002125. PMID 7605067.
  65. ^ Polkinghorn WR, Tarbell NJ (May 2007). "Medulloblastoma: tumorigenesis, current clinical paradigm, and efforts to improve risk stratification". Nature Clinical Practice. Oncology. 4 (5): 295–304. doi:10.1038/ncponc0794. PMID 17464337. S2CID 24461280.
  66. ^ Roussel MF, Hatten ME (2011). Cerebellum development and medulloblastoma. Vol. 94. pp. 235–82. doi:10.1016/B978-0-12-380916-2.00008-5. ISBN 9780123809162. PMC 3213765. PMID 21295689. {{cite book}}: |journal= ignored (help)
  67. ^ . National Institutes of Health. 23 December 2013. Archived from the original on 4 January 2015. Retrieved 9 January 2015.
  68. ^ . National Institutes of Health. 14 February 2014. Archived from the original on 4 January 2015. Retrieved 9 January 2015.
  69. ^ . National Institutes of Health. 29 September 2011. Archived from the original on 4 January 2015. Retrieved 9 January 2015.
  70. ^ "Chiari Malformation Fact Sheet". National Institutes of Health. 10 December 2014. from the original on 27 October 2011. Retrieved 9 January 2015.
  71. ^ . National Institutes of Health. 14 February 2011. Archived from the original on 16 February 2015. Retrieved 1 February 2015.
  72. ^ . National Institutes of Health. 16 April 2014. Archived from the original on 27 January 2012. Retrieved 9 January 2015.
  73. ^ . National Institutes of Health. 12 March 2009. Archived from the original on 4 January 2015. Retrieved 9 January 2015.
  74. ^ . National Institutes of Health. 14 February 2007. Archived from the original on 4 January 2015. Retrieved 9 January 2015.
  75. ^ Moulton EA, Schmahmann JD, Becerra L, Borsook D (October 2010). "The cerebellum and pain: passive integrator or active participator?". Brain Research Reviews. 65 (1): 14–27. doi:10.1016/j.brainresrev.2010.05.005. PMC 2943015. PMID 20553761.
  76. ^ Baumann O, Borra RJ, Bower JM, Cullen KE, Habas C, Ivry RB, Leggio M, Mattingley JB, Molinari M, Moulton EA, Paulin MG, Pavlova MA, Schmahmann JD, Sokolov AA (April 2015). "Consensus paper: the role of the cerebellum in perceptual processes". Cerebellum. 14 (2): 197–220. doi:10.1007/s12311-014-0627-7. PMC 4346664. PMID 25479821.
  77. ^ a b c d Bell CC, Han V, Sawtell NB (2008). "Cerebellum-like structures and their implications for cerebellar function". Annual Review of Neuroscience. 31: 1–24. doi:10.1146/annurev.neuro.30.051606.094225. PMID 18275284. S2CID 14536411.
  78. ^ Woodhams PL (July 1977). "The ultrastructure of a cerebellar analogue in octopus". Journal of Comparative Neurology. 174 (2): 329–45. doi:10.1002/cne.901740209. PMID 864041. S2CID 43112389.
  79. ^ a b Romer AS, Parsons TS (1977). The Vertebrate Body. Philadelphia: Holt-Saunders International. p. 531. ISBN 978-0-03-910284-5.
  80. ^ Shi Z, Zhang Y, Meek J, Qiao J, Han VZ (August 2008). "The neuronal organization of a unique cerebellar specialization: the valvula cerebelli of a mormyrid fish". Journal of Comparative Neurology. 509 (5): 449–73. doi:10.1002/cne.21735. PMC 5884697. PMID 18537139.
  81. ^ Weaver AH (March 2005). "Reciprocal evolution of the cerebellum and neocortex in fossil humans". Proceedings of the National Academy of Sciences of the United States of America. 102 (10): 3576–80. Bibcode:2005PNAS..102.3576W. doi:10.1073/pnas.0500692102. PMC 553338. PMID 15731345.
  82. ^ a b c Schoenemann PT (December 1, 2009). "Evolution of Brain and Language". Language Learning. 59: 162–186. doi:10.1111/j.1467-9922.2009.00539.x. PMID 22230641.
  83. ^ MacLeod CE, Zilles K, Schleicher A, Rilling JK, Gibson KR (April 2003). "Expansion of the neocerebellum in Hominoidea". Journal of Human Evolution. 44 (4): 401–29. doi:10.1016/S0047-2484(03)00028-9. PMID 12727461.
  84. ^ Roberts PD, Portfors CV (June 2008). "Design principles of sensory processing in cerebellum-like structures. Early stage processing of electrosensory and auditory objects". Biological Cybernetics. 98 (6): 491–507. doi:10.1007/s00422-008-0217-1. PMID 18491162. S2CID 14393814.
  85. ^ Bower JM (1997). "Chapter 27 is the cerebellum sensory for motor's sake, or motor for sensory's sake: The view from the whiskers of a rat?". The Cerebellum: From Structure to Control. Progress in Brain Research. Vol. 114. pp. 463–96. doi:10.1016/S0079-6123(08)63381-6. ISBN 978-0-444-82313-7. PMID 9193161.
  86. ^ Heiney SA, Kim J, Augustine GJ, Medina JF (February 2014). "Precise control of movement kinematics by optogenetic inhibition of Purkinje cell activity". Journal of Neuroscience. 34 (6): 2321–30. doi:10.1523/JNEUROSCI.4547-13.2014. PMC 3913874. PMID 24501371.
  87. ^ Witter L, Canto CB, Hoogland TM, de Gruijl JR, De Zeeuw CI (2013). "Strength and timing of motor responses mediated by rebound firing in the cerebellar nuclei after Purkinje cell activation". Frontiers in Neural Circuits. 7: 133. doi:10.3389/fncir.2013.00133. PMC 3748751. PMID 23970855.
  88. ^ Clarke E, O'Malley CD (1996). "Ch. 11: Cerebellum". The Human Brain and Spinal Cord (2nd ed.). Norman Publishing. p. 629. ISBN 978-0-930405-25-0.
  89. ^ Ito M (December 2002). "Historical review of the significance of the cerebellum and the role of Purkinje cells in motor learning". Annals of the New York Academy of Sciences. 978 (1): 273–88. Bibcode:2002NYASA.978..273I. doi:10.1111/j.1749-6632.2002.tb07574.x. PMID 12582060. S2CID 22860609.
  90. ^ Lewis CT, Short C (1879). A Latin dictionary founded on Andrews' edition of Freund's Latin dictionary. Oxford: Clarendon Press.
  91. ^ Marshall LH, Magoun HW (1998). Discoveries in the human brain. Neuroscience prehistory, brain structure, and function. Totowa: Humana Press.
  92. ^ a b c Foster FD (1891). An illustrated medical dictionary. New York: D. Appleton and Company.
  93. ^ Kraus LA (1844). Kritisch-etymologisches medicinisches Lexikon (Dritte Auflage). Göttingen: Verlag der Deuerlich- und Dieterichschen Buchhandlung.
  94. ^ Schreger CH (1805). Synonymia anatomica. Synonymik der anatomischen Nomenclatur. Fürth.

External links edit

  • Llinas R, Negrello MN (2015). "Cerebellum". Scholarpedia. 10 (1): 4606. Bibcode:2015SchpJ..10.4606L. doi:10.4249/scholarpedia.4606.
  • Cerebellum–Cell Centered Database
  • Handbook of the Cerebellum and Cerebellar Disorders – Manto, M., Gruol, D.L., Schmahmann, J., Koibuchi, N., Rossi, F. (Eds.) – Springer – New York
  • Stained brain slice images which include the "cerebellum" at the BrainMaps project
  • A Man's Incomplete Brain Reveals Cerebellum's Role In Thought And Emotion
  • Woman living without cerebellum
  • Essentials of Cerebellum and Cerebellar Disorders. Gruol, D.L., Koibuchi, N., Manto, M., Molinari, M., Schmahmann, J.D., Shen, Y. (Eds.). Springer, New York, 2016
  • Cerebellum histology images
  • The Cerebellum – Journal (Springer Nature)
  • Cerebellum and Ataxias – Journal (BioMed Central)

cerebellum, this, article, about, smaller, region, lower, part, brain, large, region, brain, cerebrum, cerebellum, cerebella, cerebellums, latin, little, brain, major, feature, hindbrain, vertebrates, although, usually, smaller, than, cerebrum, some, animals, . This article is about the smaller region in the lower part of the brain For the large region of the brain see Cerebrum The cerebellum pl cerebella or cerebellums Latin for little brain is a major feature of the hindbrain of all vertebrates Although usually smaller than the cerebrum in some animals such as the mormyrid fishes it may be as large as it or even larger 1 In humans the cerebellum plays an important role in motor control It may also be involved in some cognitive functions such as attention and language as well as emotional control such as regulating fear and pleasure responses 2 3 but its movement related functions are the most solidly established The human cerebellum does not initiate movement but contributes to coordination precision and accurate timing it receives input from sensory systems of the spinal cord and from other parts of the brain and integrates these inputs to fine tune motor activity 4 Cerebellar damage produces disorders in fine movement equilibrium posture and motor learning in humans 4 CerebellumDrawing of the human brain showing cerebellum and ponsLocation of the human cerebellum in red DetailsPronunciation ˌ s ɛ r e ˈ b ɛ l e m Part ofHindbrainArterySCA AICA PICAVeinsuperior inferiorIdentifiersLatincerebellumMeSHD002531NeuroNames643NeuroLex IDbirnlex 1489TA98A14 1 07 001TA25788FMA67944Anatomical terms of neuroanatomy edit on Wikidata Anatomically the human cerebellum has the appearance of a separate structure attached to the bottom of the brain tucked underneath the cerebral hemispheres Its cortical surface is covered with finely spaced parallel grooves in striking contrast to the broad irregular convolutions of the cerebral cortex These parallel grooves conceal the fact that the cerebellar cortex is actually a continuous thin layer of tissue tightly folded in the style of an accordion Within this thin layer are several types of neurons with a highly regular arrangement the most important being Purkinje cells and granule cells This complex neural organization gives rise to a massive signal processing capability but almost all of the output from the cerebellar cortex passes through a set of small deep nuclei lying in the white matter interior of the cerebellum 5 In addition to its direct role in motor control the cerebellum is necessary for several types of motor learning most notably learning to adjust to changes in sensorimotor relationships Several theoretical models have been developed to explain sensorimotor calibration in terms of synaptic plasticity within the cerebellum These models derive from those formulated by David Marr and James Albus based on the observation that each cerebellar Purkinje cell receives two dramatically different types of input one comprises thousands of weak inputs from the parallel fibers of the granule cells the other is an extremely strong input from a single climbing fiber 6 The basic concept of the Marr Albus theory is that the climbing fiber serves as a teaching signal which induces a long lasting change in the strength of parallel fiber inputs Observations of long term depression in parallel fiber inputs have provided some support for theories of this type but their validity remains controversial 7 Contents 1 Structure 1 1 Gross anatomy 1 1 1 Subdivisions 1 2 Microanatomy 1 2 1 Layers of the cerebellar cortex 1 2 1 1 Molecular layer 1 2 1 2 Purkinje layer 1 2 1 3 Granular layer 1 2 2 Mossy fibers 1 2 3 Climbing fibers 1 2 4 Deep nuclei 1 2 5 Compartments 1 3 Blood supply 2 Function 2 1 Principles 2 2 Learning 2 3 Theories and computational models 3 Clinical significance 3 1 Aging 3 2 Developmental and degenerative disorders 3 3 Pain 4 Comparative anatomy and evolution 4 1 Cerebellum like structures 5 History 5 1 Descriptions 5 2 Etymology 6 See also 7 References 8 External linksStructure editMain article Anatomy of the cerebellum At the level of gross anatomy the cerebellum consists of a tightly folded layer of cortex with white matter underneath and a fluid filled ventricle at the base Four deep cerebellar nuclei are embedded in the white matter Each part of the cortex consists of the same small set of neuronal elements laid out in a highly stereotyped geometry At an intermediate level the cerebellum and its auxiliary structures can be separated into several hundred or thousand independently functioning modules called microzones or microcompartments Gross anatomy edit nbsp View of the cerebellum from above and behindThe cerebellum is located in the posterior cranial fossa The fourth ventricle pons and medulla are in front of the cerebellum 8 It is separated from the overlying cerebrum by a layer of leathery dura mater the tentorium cerebelli all of its connections with other parts of the brain travel through the pons Anatomists classify the cerebellum as part of the metencephalon which also includes the pons the metencephalon is the upper part of the rhombencephalon or hindbrain Like the cerebral cortex the cerebellum is divided into two cerebellar hemispheres it also contains a narrow midline zone the vermis A set of large folds is by convention used to divide the overall structure into 10 smaller lobules Because of its large number of tiny granule cells the cerebellum contains more neurons than the total from the rest of the brain but takes up only 10 of the total brain volume 9 The number of neurons in the cerebellum is related to the number of neurons in the neocortex There are about 3 6 times as many neurons in the cerebellum as in the neocortex a ratio that is conserved across many different mammalian species 10 The unusual surface appearance of the cerebellum conceals the fact that most of its volume is made up of a very tightly folded layer of gray matter the cerebellar cortex Each ridge or gyrus in this layer is called a folium It is estimated that if the human cerebellar cortex were completely unfolded it would give rise to a layer of neural tissue about 1 meter long and averaging 5 centimeters wide a total surface area of about 500 square cm packed within a volume of dimensions 6 cm 5 cm 10 cm 9 Underneath the gray matter of the cortex lies white matter made up largely of myelinated nerve fibers running to and from the cortex Embedded within the white matter which is sometimes called the arbor vitae tree of life because of its branched tree like appearance in cross section are four deep cerebellar nuclei composed of gray matter 11 Connecting the cerebellum to different parts of the nervous system are three paired cerebellar peduncles These are the superior cerebellar peduncle the middle cerebellar peduncle and the inferior cerebellar peduncle named by their position relative to the vermis The superior cerebellar peduncle is mainly an output to the cerebral cortex carrying efferent fibers via thalamic nuclei to upper motor neurons in the cerebral cortex The fibers arise from the deep cerebellar nuclei The middle cerebellar peduncle is connected to the pons and receives all of its input from the pons mainly from the pontine nuclei The input to the pons is from the cerebral cortex and is relayed from the pontine nuclei via transverse pontine fibers to the cerebellum The middle peduncle is the largest of the three and its afferent fibers are grouped into three separate fascicles taking their inputs to different parts of the cerebellum The inferior cerebellar peduncle receives input from afferent fibers from the vestibular nuclei spinal cord and the tegmentum Output from the inferior peduncle is via efferent fibers to the vestibular nuclei and the reticular formation The whole of the cerebellum receives modulatory input from the inferior olivary nucleus via the inferior cerebellar peduncle 5 Subdivisions edit nbsp Schematic representation of the major anatomical subdivisions of the cerebellum Superior view of an unrolled cerebellum placing the vermis in one plane Based on the surface appearance three lobes can be distinguished within the cerebellum the anterior lobe above the primary fissure the posterior lobe below the primary fissure and the flocculonodular lobe below the posterior fissure These lobes divide the cerebellum from rostral to caudal in humans top to bottom In terms of function however there is a more important distinction along the medial to lateral dimension Leaving out the flocculonodular lobe which has distinct connections and functions the cerebellum can be parsed functionally into a medial sector called the spinocerebellum and a larger lateral sector called the cerebrocerebellum 11 A narrow strip of protruding tissue along the midline is called the cerebellar vermis Vermis is Latin for worm 11 The smallest region the flocculonodular lobe is often called the vestibulocerebellum It is the oldest part in evolutionary terms archicerebellum and participates mainly in balance and spatial orientation its primary connections are with the vestibular nuclei although it also receives visual and other sensory input Damage to this region causes disturbances of balance and gait 11 The medial zone of the anterior and posterior lobes constitutes the spinocerebellum also known as paleocerebellum This sector of the cerebellum functions mainly to fine tune body and limb movements It receives proprioceptive input from the dorsal columns of the spinal cord including the spinocerebellar tract and from the cranial trigeminal nerve as well as from visual and auditory systems 12 It sends fibers to deep cerebellar nuclei that in turn project to both the cerebral cortex and the brain stem thus providing modulation of descending motor systems 11 The lateral zone which in humans is by far the largest part constitutes the cerebrocerebellum also known as neocerebellum It receives input exclusively from the cerebral cortex especially the parietal lobe via the pontine nuclei forming cortico ponto cerebellar pathways and sends output mainly to the ventrolateral thalamus in turn connected to motor areas of the premotor cortex and primary motor area of the cerebral cortex and to the red nucleus 11 There is disagreement about the best way to describe the functions of the lateral cerebellum It is thought to be involved in planning movement that is about to occur 13 in evaluating sensory information for action 11 and in a number of purely cognitive functions such as determining the verb which best fits with a certain noun as in sit for chair 14 15 16 17 Microanatomy edit Two types of neuron play dominant roles in the cerebellar circuit Purkinje cells and granule cells Three types of axons also play dominant roles mossy fibers and climbing fibers which enter the cerebellum from outside and parallel fibers which are the axons of granule cells There are two main pathways through the cerebellar circuit originating from mossy fibers and climbing fibers both eventually terminating in the deep cerebellar nuclei 9 Mossy fibers project directly to the deep nuclei but also give rise to the following pathway mossy fibers granule cells parallel fibers Purkinje cells deep nuclei Climbing fibers project to Purkinje cells and also send collaterals directly to the deep nuclei 9 The mossy fiber and climbing fiber inputs each carry fiber specific information the cerebellum also receives dopaminergic serotonergic noradrenergic and cholinergic inputs that presumably perform global modulation 18 The cerebellar cortex is divided into three layers At the bottom lies the thick granular layer densely packed with granule cells along with interneurons mainly Golgi cells but also including Lugaro cells and unipolar brush cells In the middle lies the Purkinje layer a narrow zone that contains the cell bodies of Purkinje cells and Bergmann glial cells At the top lies the molecular layer which contains the flattened dendritic trees of Purkinje cells along with the huge array of parallel fibers penetrating the Purkinje cell dendritic trees at right angles This outermost layer of the cerebellar cortex also contains two types of inhibitory interneuron stellate cells and basket cells Both stellate and basket cells form GABAergic synapses onto Purkinje cell dendrites 9 nbsp Microcircuitry of the cerebellumAbbreviations and representations Excitatory connection Inhibitory connection MF Mossy fiber DCN Deep cerebellar nuclei IO Inferior olive CF Climbing fiber CFC Climbing fiber collateral GC Granule cell PF Parallel fiber PC Purkinje cell GgC Golgi cell SC Stellate cell BC Basket cell nbsp Transverse section of a cerebellar folium showing principal cell types and connections Layers of the cerebellar cortex edit Molecular layer edit The top outermost layer of the cerebellar cortex is the molecular layer This layer contains the flattened dendritic trees of Purkinje cells and the huge array of parallel fibers from the granular layer that penetrate the Purkinje cell dendritic trees at right angles The molecular layer also contains two types of inhibitory interneuron stellate cells and basket cells Both stellate and basket cells form GABAergic synapses onto Purkinje cell dendrites 9 Purkinje layer edit nbsp Purkinje cells in the human cerebellum in orange from top to bottom 40X 100X and 200X magnification stained according to published methods 19 Purkinje cells are among the most distinctive neurons in the brain and one of the earliest types to be recognized they were first described by the Czech anatomist Jan Evangelista Purkyne in 1837 They are distinguished by the shape of their dendritic tree the dendrites branch very profusely but are severely flattened in a plane perpendicular to the cerebellar folds Thus the dendrites of a Purkinje cell form a dense planar net through which parallel fibers pass at right angles 9 The dendrites are covered with dendritic spines each of which receives synaptic input from a parallel fiber Purkinje cells receive more synaptic inputs than any other type of cell in the brain estimates of the number of spines on a single human Purkinje cell run as high as 200 000 9 The large spherical cell bodies of Purkinje cells are packed into a narrow layer one cell thick of the cerebellar cortex called the Purkinje layer After emitting collaterals that affect nearby parts of the cortex their axons travel into the deep cerebellar nuclei where they make on the order of 1 000 contacts each with several types of nuclear cells all within a small domain Purkinje cells use GABA as their neurotransmitter and therefore exert inhibitory effects on their targets 9 Purkinje cells form the heart of the cerebellar circuit and their large size and distinctive activity patterns have made it relatively easy to study their response patterns in behaving animals using extracellular recording techniques Purkinje cells normally emit action potentials at a high rate even in the absence of the synaptic input In awake behaving animals mean rates averaging around 40 Hz are typical The spike trains show a mixture of what are called simple and complex spikes A simple spike is a single action potential followed by a refractory period of about 10 ms a complex spike is a stereotyped sequence of action potentials with very short inter spike intervals and declining amplitudes 20 Physiological studies have shown that complex spikes which occur at baseline rates around 1 Hz and never at rates much higher than 10 Hz are reliably associated with climbing fiber activation while simple spikes are produced by a combination of baseline activity and parallel fiber input Complex spikes are often followed by a pause of several hundred milliseconds during which simple spike activity is suppressed 21 A specific recognizable feature of Purkinje neurons is the expression of calbindin 22 Calbindin staining of rat brain after unilateral chronic sciatic nerve injury suggests that Purkinje neurons may be newly generated in the adult brain initiating the organization of new cerebellar lobules 23 nbsp A mouse Purkinje cell injected with fluorescent dye Granular layer edit nbsp Granule cells GR bottom parallel fibers horizontal lines top and Purkinje cells P middle with flattened dendritic treesCerebellar granule cells in contrast to Purkinje cells are among the smallest neurons in the brain They are also the most numerous neurons in the brain In humans estimates of their total number average around 50 billion which means that about 3 4 of the brain s neurons are cerebellar granule cells 9 Their cell bodies are packed into a thick layer at the bottom of the cerebellar cortex A granule cell emits only four to five dendrites each of which ends in an enlargement called a dendritic claw 9 These enlargements are sites of excitatory input from mossy fibers and inhibitory input from Golgi cells 9 The thin unmyelinated axons of granule cells rise vertically to the upper molecular layer of the cortex where they split in two with each branch traveling horizontally to form a parallel fiber the splitting of the vertical branch into two horizontal branches gives rise to a distinctive T shape A human parallel fiber runs for an average of 3 mm in each direction from the split for a total length of about 6 mm about 1 10 of the total width of the cortical layer 9 As they run along the parallel fibers pass through the dendritic trees of Purkinje cells contacting one of every 3 5 that they pass making a total of 80 100 synaptic connections with Purkinje cell dendritic spines 9 Granule cells use glutamate as their neurotransmitter and therefore exert excitatory effects on their targets 9 nbsp Diagram of the layers of the cerebellar cortex showing a glomerulus in the granular layer Granule cells receive all of their input from mossy fibers but outnumber them by 200 to 1 in humans Thus the information in the granule cell population activity state is the same as the information in the mossy fibers but recoded in a much more expansive way Because granule cells are so small and so densely packed it is difficult to record their spike activity in behaving animals so there is little data to use as a basis for theorizing The most popular concept of their function was proposed in 1969 by David Marr who suggested that they could encode combinations of mossy fiber inputs The idea is that with each granule cell receiving input from only 4 5 mossy fibers a granule cell would not respond if only a single one of its inputs were active but would respond if more than one were active This combinatorial coding scheme would potentially allow the cerebellum to make much finer distinctions between input patterns than the mossy fibers alone would permit 24 Mossy fibers edit Mossy fibers enter the granular layer from their points of origin many arising from the pontine nuclei others from the spinal cord vestibular nuclei etc In the human cerebellum the total number of mossy fibers has been estimated at 200 million 9 These fibers form excitatory synapses with the granule cells and the cells of the deep cerebellar nuclei Within the granular layer a mossy fiber generates a series of enlargements called rosettes The contacts between mossy fibers and granule cell dendrites take place within structures called glomeruli Each glomerulus has a mossy fiber rosette at its center and up to 20 granule cell dendritic claws contacting it Terminals from Golgi cells infiltrate the structure and make inhibitory synapses onto the granule cell dendrites The entire assemblage is surrounded by a sheath of glial cells 9 Each mossy fiber sends collateral branches to several cerebellar folia generating a total of 20 30 rosettes thus a single mossy fiber makes contact with an estimated 400 600 granule cells 9 Climbing fibers edit Purkinje cells also receive input from the inferior olivary nucleus on the contralateral side of the brainstem via climbing fibers Although the inferior olive lies in the medulla oblongata and receives input from the spinal cord brainstem and cerebral cortex its output goes entirely to the cerebellum A climbing fiber gives off collaterals to the deep cerebellar nuclei before entering the cerebellar cortex where it splits into about 10 terminal branches each of which gives input to a single Purkinje cell 9 In striking contrast to the 100 000 plus inputs from parallel fibers each Purkinje cell receives input from exactly one climbing fiber but this single fiber climbs the dendrites of the Purkinje cell winding around them and making a total of up to 300 synapses as it goes 9 The net input is so strong that a single action potential from a climbing fiber is capable of producing an extended complex spike in the Purkinje cell a burst of several spikes in a row with diminishing amplitude followed by a pause during which activity is suppressed The climbing fiber synapses cover the cell body and proximal dendrites this zone is devoid of parallel fiber inputs 9 Climbing fibers fire at low rates but a single climbing fiber action potential induces a burst of several action potentials in a target Purkinje cell a complex spike The contrast between parallel fiber and climbing fiber inputs to Purkinje cells over 100 000 of one type versus exactly one of the other type is perhaps the most provocative feature of cerebellar anatomy and has motivated much of the theorizing In fact the function of climbing fibers is the most controversial topic concerning the cerebellum There are two schools of thought one following Marr and Albus in holding that climbing fiber input serves primarily as a teaching signal the other holding that its function is to shape cerebellar output directly Both views have been defended in great length in numerous publications In the words of one review In trying to synthesize the various hypotheses on the function of the climbing fibers one has the sense of looking at a drawing by Escher Each point of view seems to account for a certain collection of findings but when one attempts to put the different views together a coherent picture of what the climbing fibers are doing does not appear For the majority of researchers the climbing fibers signal errors in motor performance either in the usual manner of discharge frequency modulation or as a single announcement of an unexpected event For other investigators the message lies in the degree of ensemble synchrony and rhythmicity among a population of climbing fibers 21 Deep nuclei edit Main article Deep cerebellar nuclei nbsp Sagittal cross section of human cerebellum showing the dentate nucleus as well as the pons and inferior olivary nucleusThe deep nuclei of the cerebellum are clusters of gray matter lying within the white matter at the core of the cerebellum They are with the minor exception of the nearby vestibular nuclei the sole sources of output from the cerebellum These nuclei receive collateral projections from mossy fibers and climbing fibers as well as inhibitory input from the Purkinje cells of the cerebellar cortex The four nuclei dentate globose emboliform and fastigial each communicate with different parts of the brain and cerebellar cortex The globose and the emboliform nuclei are also referred to as combined in the interposed nucleus The fastigial and interposed nuclei belong to the spinocerebellum The dentate nucleus which in mammals is much larger than the others is formed as a thin convoluted layer of gray matter and communicates exclusively with the lateral parts of the cerebellar cortex The flocculus of the flocculonodular lobe is the only part of the cerebellar cortex that does not project to the deep nuclei its output goes to the vestibular nuclei instead 9 The majority of neurons in the deep nuclei have large cell bodies and spherical dendritic trees with a radius of about 400 mm and use glutamate as their neurotransmitter These cells project to a variety of targets outside the cerebellum Intermixed with them are a lesser number of small cells which use GABA as a neurotransmitter and project exclusively to the inferior olivary nucleus the source of climbing fibers Thus the nucleo olivary projection provides an inhibitory feedback to match the excitatory projection of climbing fibers to the nuclei There is evidence that each small cluster of nuclear cells projects to the same cluster of olivary cells that send climbing fibers to it there is strong and matching topography in both directions 9 When a Purkinje cell axon enters one of the deep nuclei it branches to make contact with both large and small nuclear cells but the total number of cells contacted is only about 35 in cats Conversely a single deep nuclear cell receives input from approximately 860 Purkinje cells again in cats 9 Compartments edit nbsp Schematic illustration of the structure of zones and microzones in the cerebellar cortexFrom the viewpoint of gross anatomy the cerebellar cortex appears to be a homogeneous sheet of tissue and from the viewpoint of microanatomy all parts of this sheet appear to have the same internal structure There are however a number of respects in which the structure of the cerebellum is compartmentalized There are large compartments that are generally known as zones these can be divided into smaller compartments known as microzones 25 The first indications of compartmental structure came from studies of the receptive fields of cells in various parts of the cerebellar cortex 25 Each body part maps to specific points in the cerebellum but there are numerous repetitions of the basic map forming an arrangement that has been called fractured somatotopy 26 A clearer indication of compartmentalization is obtained by immunostaining the cerebellum for certain types of protein The best known of these markers are called zebrins because staining for them gives rise to a complex pattern reminiscent of the stripes on a zebra The stripes generated by zebrins and other compartmentalization markers are oriented perpendicular to the cerebellar folds that is they are narrow in the mediolateral direction but much more extended in the longitudinal direction Different markers generate different sets of stripes the widths and lengths vary as a function of location but they all have the same general shape 25 Oscarsson in the late 1970s proposed that these cortical zones can be partitioned into smaller units called microzones 27 A microzone is defined as a group of Purkinje cells all having the same somatotopic receptive field Microzones were found to contain on the order of 1000 Purkinje cells each arranged in a long narrow strip oriented perpendicular to the cortical folds 25 Thus as the adjoining diagram illustrates Purkinje cell dendrites are flattened in the same direction as the microzones extend while parallel fibers cross them at right angles 9 It is not only receptive fields that define the microzone structure The climbing fiber input from the inferior olivary nucleus is equally important The branches of a climbing fiber usually numbering about 10 usually activate Purkinje cells belonging to the same microzone Moreover olivary neurons that send climbing fibers to the same microzone tend to be coupled by gap junctions which synchronize their activity causing Purkinje cells within a microzone to show correlated complex spike activity on a millisecond time scale 25 Also the Purkinje cells belonging to a microzone all send their axons to the same small cluster of output cells within the deep cerebellar nuclei 25 Finally the axons of basket cells are much longer in the longitudinal direction than in the mediolateral direction causing them to be confined largely to a single microzone 25 The consequence of all this structure is that cellular interactions within a microzone are much stronger than interactions between different microzones 25 In 2005 Richard Apps and Martin Garwicz summarized evidence that microzones themselves form part of a larger entity they call a multizonal microcomplex Such a microcomplex includes several spatially separated cortical microzones all of which project to the same group of deep cerebellar neurons plus a group of coupled olivary neurons that project to all of the included microzones as well as to the deep nuclear area 25 Blood supply edit The cerebellum is provided with blood from three paired major arteries the superior cerebellar artery SCA the anterior inferior cerebellar artery AICA and the posterior inferior cerebellar artery PICA The SCA supplies the upper region of the cerebellum It divides at the upper surface and branches into the pia mater where the branches anastomose with those of the anterior and posterior inferior cerebellar arteries The AICA supplies the front part of the undersurface of the cerebellum The PICA arrives at the undersurface where it divides into a medial branch and a lateral branch The medial branch continues backward to the cerebellar notch between the two hemispheres of the cerebellum while the lateral branch supplies the under surface of the cerebellum as far as its lateral border where it anastomoses with the AICA and the SCA Function editThe strongest clues to the function of the cerebellum have come from examining the consequences of damage to it Animals and humans with cerebellar dysfunction show above all problems with motor control on the same side of the body as the damaged part of the cerebellum They continue to be able to generate motor activity but lose precision producing erratic uncoordinated or incorrectly timed movements A standard test of cerebellar function is to reach with the tip of the finger for a target at arm s length A healthy person will move the fingertip in a rapid straight trajectory whereas a person with cerebellar damage will reach slowly and erratically with many mid course corrections Deficits in non motor functions are more difficult to detect Thus the general conclusion reached decades ago is that the basic function of the cerebellum is to calibrate the detailed form of a movement not to initiate movements or to decide which movements to execute 11 Prior to the 1990s the function of the cerebellum was almost universally believed to be purely motor related but newer findings have brought that view into question Functional imaging studies have shown cerebellar activation in relation to language attention and mental imagery correlation studies have shown interactions between the cerebellum and non motor areas of the cerebral cortex and a variety of non motor symptoms have been recognized in people with damage that appears to be confined to the cerebellum 28 29 In particular the cerebellar cognitive affective syndrome or Schmahmann s syndrome 30 has been described in adults 31 and children 32 Estimates based on functional mapping of the cerebellum using functional MRI suggest that more than half of the cerebellar cortex is interconnected with association zones of the cerebral cortex 33 Kenji Doya has argued that the cerebellum s function is best understood not in terms of the behaviors it affects but the neural computations it performs the cerebellum consists of a large number of more or less independent modules all with the same geometrically regular internal structure and therefore all it is presumed performing the same computation If the input and output connections of a module are with motor areas as many are then the module will be involved in motor behavior but if the connections are with areas involved in non motor cognition the module will show other types of behavioral correlates Thus the cerebellum has been implicated in the regulation of many differing functional traits such as affection emotion including emotional body language perception 34 and behavior 35 36 The cerebellum Doya proposes is best understood as predictive action selection based on internal models of the environment or a device for supervised learning in contrast to the basal ganglia which perform reinforcement learning and the cerebral cortex which performs unsupervised learning 29 37 Three decades of brain research have led to the proposal that the cerebellum generates optimized mental models and interacts closely with the cerebral cortex where updated internal models are experienced as creative intuition a ha in working memory 38 Principles edit The comparative simplicity and regularity of the cerebellar anatomy led to an early hope that it might imply a similar simplicity of computational function as expressed in one of the first books on cerebellar electrophysiology The Cerebellum as a Neuronal Machine by John C Eccles Masao Ito and Janos Szentagothai 39 Although a full understanding of cerebellar function has remained elusive at least four principles have been identified as important 1 feedforward processing 2 divergence and convergence 3 modularity and 4 plasticity Feedforward processing The cerebellum differs from most other parts of the brain especially the cerebral cortex in that the signal processing is almost entirely feedforward that is signals move unidirectionally through the system from input to output with very little recurrent internal transmission The small amount of recurrence that does exist consists of mutual inhibition there are no mutually excitatory circuits This feedforward mode of operation means that the cerebellum in contrast to the cerebral cortex cannot generate self sustaining patterns of neural activity Signals enter the circuit are processed by each stage in sequential order and then leave As Eccles Ito and Szentagothai wrote This elimination in the design of all possibility of reverberatory chains of neuronal excitation is undoubtedly a great advantage in the performance of the cerebellum as a computer because what the rest of the nervous system requires from the cerebellum is presumably not some output expressing the operation of complex reverberatory circuits in the cerebellum but rather a quick and clear response to the input of any particular set of information 40 Divergence and convergence In the human cerebellum information from 200 million mossy fiber inputs is expanded to 40 billion granule cells whose parallel fiber outputs then converge onto 15 million Purkinje cells 9 Because of the way that they are lined up longitudinally the 1000 or so Purkinje cells belonging to a microzone may receive input from as many as 100 million parallel fibers and focus their own output down to a group of less than 50 deep nuclear cells 25 Thus the cerebellar network receives a modest number of inputs processes them very extensively through its rigorously structured internal network and sends out the results via a very limited number of output cells Modularity The cerebellar system is functionally divided into more or less independent modules which probably number in the hundreds to thousands All modules have a similar internal structure but different inputs and outputs A module a multizonal microcompartment in the terminology of Apps and Garwicz consists of a small cluster of neurons in the inferior olivary nucleus a set of long narrow strips of Purkinje cells in the cerebellar cortex microzones and a small cluster of neurons in one of the deep cerebellar nuclei Different modules share input from mossy fibers and parallel fibers but in other respects they appear to function independently the output of one module does not appear to significantly influence the activity of other modules 25 Plasticity The synapses between parallel fibers and Purkinje cells and the synapses between mossy fibers and deep nuclear cells are both susceptible to modification of their strength In a single cerebellar module input from as many as a billion parallel fibers converges onto a group of less than 50 deep nuclear cells and the influence of each parallel fiber on those nuclear cells is adjustable This arrangement gives tremendous flexibility for fine tuning the relationship between the cerebellar inputs and outputs 41 Learning edit There is considerable evidence that the cerebellum plays an essential role in some types of motor learning The tasks where the cerebellum most clearly comes into play are those in which it is necessary to make fine adjustments to the way an action is performed There has however been much dispute about whether learning takes place within the cerebellum itself or whether it merely serves to provide signals that promote learning in other brain structures 41 Most theories that assign learning to the circuitry of the cerebellum are derived from the ideas of David Marr 24 and James Albus 6 who postulated that climbing fibers provide a teaching signal that induces synaptic modification in parallel fiber Purkinje cell synapses 42 Marr assumed that climbing fiber input would cause synchronously activated parallel fiber inputs to be strengthened Most subsequent cerebellar learning models however have followed Albus in assuming that climbing fiber activity would be an error signal and would cause synchronously activated parallel fiber inputs to be weakened Some of these later models such as the Adaptive Filter model of Fujita 43 made attempts to understand cerebellar function in terms of optimal control theory The idea that climbing fiber activity functions as an error signal has been examined in many experimental studies with some supporting it but others casting doubt 21 In a pioneering study by Gilbert and Thach from 1977 Purkinje cells from monkeys learning a reaching task showed increased complex spike activity which is known to reliably indicate activity of the cell s climbing fiber input during periods when performance was poor 44 Several studies of motor learning in cats observed complex spike activity when there was a mismatch between an intended movement and the movement that was actually executed Studies of the vestibulo ocular reflex which stabilizes the visual image on the retina when the head turns found that climbing fiber activity indicated retinal slip although not in a very straightforward way 21 One of the most extensively studied cerebellar learning tasks is the eyeblink conditioning paradigm in which a neutral conditioned stimulus CS such as a tone or a light is repeatedly paired with an unconditioned stimulus US such as an air puff that elicits a blink response After such repeated presentations of the CS and US the CS will eventually elicit a blink before the US a conditioned response or CR Experiments showed that lesions localized either to a specific part of the interposed nucleus one of the deep cerebellar nuclei or to a few specific points in the cerebellar cortex would abolish learning of a conditionally timed blink response If cerebellar outputs are pharmacologically inactivated while leaving the inputs and intracellular circuits intact learning takes place even while the animal fails to show any response whereas if intracerebellar circuits are disrupted no learning takes place these facts taken together make a strong case that the learning indeed occurs inside the cerebellum 45 Theories and computational models edit nbsp Model of a cerebellar perceptron as formulated by James AlbusThe large base of knowledge about the anatomical structure and behavioral functions of the cerebellum have made it a fertile ground for theorizing there are perhaps more theories of the function of the cerebellum than of any other part of the brain The most basic distinction among them is between learning theories and performance theories that is theories that make use of synaptic plasticity within the cerebellum to account for its role in learning versus theories that account for aspects of ongoing behavior on the basis of cerebellar signal processing Several theories of both types have been formulated as mathematical models and simulated using computers 42 Perhaps the earliest performance theory was the delay line hypothesis of Valentino Braitenberg The original theory put forth by Braitenberg and Roger Atwood in 1958 proposed that slow propagation of signals along parallel fibers imposes predictable delays that allow the cerebellum to detect time relationships within a certain window 46 Experimental data did not support the original form of the theory but Braitenberg continued to argue for modified versions 47 The hypothesis that the cerebellum functions essentially as a timing system has also been advocated by Richard Ivry 48 Another influential performance theory is the Tensor network theory of Pellionisz and Llinas which provided an advanced mathematical formulation of the idea that the fundamental computation performed by the cerebellum is to transform sensory into motor coordinates 49 Theories in the learning category almost all derive from publications by Marr and Albus Marr s 1969 paper proposed that the cerebellum is a device for learning to associate elemental movements encoded by climbing fibers with mossy fiber inputs that encode the sensory context 24 Albus proposed in 1971 that a cerebellar Purkinje cell functions as a perceptron a neurally inspired abstract learning device 6 The most basic difference between the Marr and Albus theories is that Marr assumed that climbing fiber activity would cause parallel fiber synapses to be strengthened whereas Albus proposed that they would be weakened Albus also formulated his version as a software algorithm he called a CMAC Cerebellar Model Articulation Controller which has been tested in a number of applications 50 Clinical significance edit nbsp Illustration from 1912 of the altered walking gait of a woman with cerebellar disease nbsp The lower trace shows an attempt by a patient with cerebellar disease to reproduce the upper trace Main article Cerebellar ataxia Damage to the cerebellum often causes motor related symptoms the details of which depend on the part of the cerebellum involved and how it is damaged Damage to the flocculonodular lobe may show up as a loss of equilibrium and in particular an altered irregular walking gait with a wide stance caused by difficulty in balancing 11 Damage to the lateral zone typically causes problems in skilled voluntary and planned movements which can cause errors in the force direction speed and amplitude of movements Other manifestations include hypotonia decreased muscle tone dysarthria problems with speech articulation dysmetria problems judging distances or ranges of movement dysdiadochokinesia inability to perform rapid alternating movements such as walking impaired check reflex or rebound phenomenon and intention tremor involuntary movement caused by alternating contractions of opposing muscle groups 51 52 Damage to the midline portion may disrupt whole body movements whereas damage localized more laterally is more likely to disrupt fine movements of the hands or limbs Damage to the upper part of the cerebellum tends to cause gait impairments and other problems with leg coordination damage to the lower part is more likely to cause uncoordinated or poorly aimed movements of the arms and hands as well as difficulties in speed 11 This complex of motor symptoms is called ataxia To identify cerebellar problems neurological examination includes assessment of gait a broad based gait being indicative of ataxia finger pointing tests and assessment of posture 4 If cerebellar dysfunction is indicated a magnetic resonance imaging scan can be used to obtain a detailed picture of any structural alterations that may exist 53 The list of medical problems that can produce cerebellar damage is long including stroke hemorrhage swelling of the brain cerebral edema tumors alcoholism physical trauma such as gunshot wounds or explosives and chronic degenerative conditions such as olivopontocerebellar atrophy 54 55 Some forms of migraine headache may also produce temporary dysfunction of the cerebellum of variable severity 56 Infection can result in cerebellar damage in such conditions as the prion diseases 57 and Miller Fisher syndrome a variant of Guillain Barre syndrome Aging edit The human cerebellum changes with age These changes may differ from those of other parts of the brain The cerebellum is the youngest brain region and body part in centenarians according to an epigenetic biomarker of tissue age known as epigenetic clock it is about 15 years younger than expected in a centenarian 58 Further gene expression patterns in the human cerebellum show less age related alteration than that in the cerebral cortex 59 Some studies have reported reductions in numbers of cells or volume of tissue but the amount of data relating to this question is not very large 60 61 Developmental and degenerative disorders edit nbsp Ultrasound image of the fetal head at 19 weeks of pregnancy in a modified axial section showing the normal fetal cerebellum and cisterna magnaCongenital malformation hereditary disorders and acquired conditions can affect cerebellar structure and consequently cerebellar function Unless the causative condition is reversible the only possible treatment is to help people live with their problems 62 Visualization of the fetal cerebellum by ultrasound scan at 18 to 20 weeks of pregnancy can be used to screen for fetal neural tube defects with a sensitivity rate of up to 99 63 In normal development endogenous sonic hedgehog signaling stimulates rapid proliferation of cerebellar granule neuron progenitors CGNPs in the external granule layer EGL Cerebellar development occurs during late embryogenesis and the early postnatal period with CGNP proliferation in the EGL peaking during early development postnatal day 7 in the mouse 64 As CGNPs terminally differentiate into cerebellar granule cells also called cerebellar granule neurons CGNs they migrate to the internal granule layer IGL forming the mature cerebellum by post natal day 20 in the mouse 64 Mutations that abnormally activate Sonic hedgehog signaling predispose to cancer of the cerebellum medulloblastoma in humans with Gorlin Syndrome and in genetically engineered mouse models 65 66 Congenital malformation or underdevelopment hypoplasia of the cerebellar vermis is a characteristic of both Dandy Walker syndrome and Joubert syndrome 67 68 In very rare cases the entire cerebellum may be absent 69 The inherited neurological disorders Machado Joseph disease ataxia telangiectasia and Friedreich s ataxia cause progressive neurodegeneration linked to cerebellar loss 54 62 Congenital brain malformations outside the cerebellum can in turn cause herniation of cerebellar tissue as seen in some forms of Arnold Chiari malformation 70 Other conditions that are closely linked to cerebellar degeneration include the idiopathic progressive neurological disorders multiple system atrophy and Ramsay Hunt syndrome type I 71 72 and the autoimmune disorder paraneoplastic cerebellar degeneration in which tumors elsewhere in the body elicit an autoimmune response that causes neuronal loss in the cerebellum 73 Cerebellar atrophy can result from an acute deficiency of vitamin B1 thiamine as seen in beriberi and in Wernicke Korsakoff syndrome 74 or vitamin E deficiency 62 Cerebellar atrophy has been observed in many other neurological disorders including Huntington s disease multiple sclerosis 57 essential tremor progressive myoclonus epilepsy and Niemann Pick disease Cerebellar atrophy can also occur as a result of exposure to toxins including heavy metals or pharmaceutical or recreational drugs 62 Pain edit There is a general consensus that the cerebellum is involved in pain processing 75 76 The cerebellum receives pain input from both descending cortico cerebellar pathways and ascending spino cerebellar pathways through the pontine nuclei and inferior olives Some of this information is transferred to the motor system inducing a conscious motor avoidance of pain graded according to pain intensity These direct pain inputs as well as indirect inputs are thought to induce long term pain avoidance behavior that results in chronic posture changes and consequently in functional and anatomical remodeling of vestibular and proprioceptive nuclei As a result chronic neuropathic pain can induce macroscopic anatomical remodeling of the hindbrain including the cerebellum 23 The magnitude of this remodeling and the induction of neuron progenitor markers suggest the contribution of adult neurogenesis to these changes Comparative anatomy and evolution edit nbsp Cross section of the brain of a porbeagle shark with the cerebellum highlighted in blueThe circuits in the cerebellum are similar across all classes of vertebrates including fish reptiles birds and mammals 77 There is also an analogous brain structure in cephalopods with well developed brains such as octopuses 78 This has been taken as evidence that the cerebellum performs functions important to all animal species with a brain There is considerable variation in the size and shape of the cerebellum in different vertebrate species In amphibians it is little developed and in lampreys and hagfish the cerebellum is barely distinguishable from the brain stem Although the spinocerebellum is present in these groups the primary structures are small paired nuclei corresponding to the vestibulocerebellum 79 The cerebellum is a bit larger in reptiles considerably larger in birds and larger yet in mammals The large paired and convoluted lobes found in humans are typical of mammals but the cerebellum is in general a single median lobe in other groups and is either smooth or only slightly grooved In mammals the neocerebellum is the major part of the cerebellum by mass but in other vertebrates it is typically the spinocerebellum 79 The cerebellum of cartilaginous and bony fishes is extraordinarily large and complex In at least one important respect it differs in internal structure from the mammalian cerebellum The fish cerebellum does not contain discrete deep cerebellar nuclei Instead the primary targets of Purkinje cells are a distinct type of cell distributed across the cerebellar cortex a type not seen in mammals In mormyrid fish a family of weakly electrosensitive freshwater fish the cerebellum is considerably larger than the rest of the brain The largest part of it is a special structure called the valvula which has an unusually regular architecture and receives much of its input from the electrosensory system 80 The hallmark of the mammalian cerebellum is an expansion of the lateral lobes whose main interactions are with the neocortex As monkeys evolved into great apes the expansion of the lateral lobes continued in tandem with the expansion of the frontal lobes of the neocortex In ancestral hominids and in Homo sapiens until the middle Pleistocene period the cerebellum continued to expand but the frontal lobes expanded more rapidly The most recent period of human evolution however may actually have been associated with an increase in the relative size of the cerebellum as the neocortex reduced its size somewhat while the cerebellum expanded 81 The size of the human cerebellum compared to the rest of the brain has been increasing in size while the cerebrum decreased in size 82 With both the development and implementation of motor tasks visual spatial skills and learning taking place in the cerebellum the growth of the cerebellum is thought to have some form of correlation to greater human cognitive abilities 83 The lateral hemispheres of the cerebellum are now 2 7 times greater in both humans and apes than they are in monkeys 82 These changes in the cerebellum size cannot be explained by greater muscle mass They show that either the development of the cerebellum is tightly linked to that of the rest of the brain or that neural activities taking place in the cerebellum were important during Hominidae evolution Due to the cerebellum s role in cognitive functions the increase in its size may have played a role in cognitive expansion 82 Cerebellum like structures edit Most vertebrate species have a cerebellum and one or more cerebellum like structures brain areas that resemble the cerebellum in terms of cytoarchitecture and neurochemistry 77 The only cerebellum like structure found in mammals is the dorsal cochlear nucleus DCN one of the two primary sensory nuclei that receive input directly from the auditory nerve The DCN is a layered structure with the bottom layer containing granule cells similar to those of the cerebellum giving rise to parallel fibers that rise to the superficial layer and travel across it horizontally The superficial layer contains a set of GABAergic neurons called cartwheel cells that resemble Purkinje cells anatomically and chemically they receive parallel fiber input but do not have any inputs that resemble climbing fibers The output neurons of the DCN are pyramidal cells They are glutamatergic but also resemble Purkinje cells in some respects they have spiny flattened superficial dendritic trees that receive parallel fiber input but they also have basal dendrites that receive input from auditory nerve fibers which travel across the DCN in a direction at right angles to the parallel fibers The DCN is most highly developed in rodents and other small animals and is considerably reduced in primates Its function is not well understood the most popular speculations relate it to spatial hearing in one way or another 84 Most species of fish and amphibians possess a lateral line system that senses pressure waves in water One of the brain areas that receives primary input from the lateral line organ the medial octavolateral nucleus has a cerebellum like structure with granule cells and parallel fibers In electrosensitive fish the input from the electrosensory system goes to the dorsal octavolateral nucleus which also has a cerebellum like structure In ray finned fishes by far the largest group the optic tectum has a layer the marginal layer that is cerebellum like 77 All of these cerebellum like structures appear to be primarily sensory related rather than motor related All of them have granule cells that give rise to parallel fibers that connect to Purkinje like neurons with modifiable synapses but none have climbing fibers comparable to those of the cerebellum instead they receive direct input from peripheral sensory organs None has a demonstrated function but the most influential speculation is that they serve to transform sensory inputs in some sophisticated way perhaps to compensate for changes in body posture 77 In fact James M Bower and others have argued partly on the basis of these structures and partly on the basis of cerebellar studies that the cerebellum itself is fundamentally a sensory structure and that it contributes to motor control by moving the body in a way that controls the resulting sensory signals 85 Despite Bower s viewpoint there is also strong evidence that the cerebellum directly influences motor output in mammals 86 87 History edit nbsp Base of the human brain as drawn by Andreas Vesalius in 1543Descriptions edit Even the earliest anatomists were able to recognize the cerebellum by its distinctive appearance Aristotle and Herophilus quoted in Galen called it the paregkefalis parenkephalis as opposed to the ἐgkefalos enkephalos or brain proper Galen s extensive description is the earliest that survives He speculated that the cerebellum was the source of motor nerves 88 Further significant developments did not come until the Renaissance Vesalius discussed the cerebellum briefly and the anatomy was described more thoroughly by Thomas Willis in 1664 More anatomical work was done during the 18th century but it was not until early in the 19th century that the first insights into the function of the cerebellum were obtained Luigi Rolando in 1809 established the key finding that damage to the cerebellum results in motor disturbances Jean Pierre Flourens in the first half of the 19th century carried out detailed experimental work which revealed that animals with cerebellar damage can still move but with a loss of coordination strange movements awkward gait and muscular weakness and that recovery after the lesion can be nearly complete unless the lesion is very extensive 89 By the beginning of the 20th century it was widely accepted that the primary function of the cerebellum relates to motor control the first half of the 20th century produced several detailed descriptions of the clinical symptoms associated with cerebellar disease in humans 4 Etymology edit The name cerebellum is a diminutive of cerebrum brain 90 it can be translated literally as little brain The Latin name is a direct translation of the Ancient Greek paregkefalis parenkephalis which was used in the works of Aristotle the first known writer to describe the structure 91 No other name is used in the English language literature but historically a variety of Greek or Latin derived names have been used including cerebrum parvum 92 encephalion 93 encranion 92 cerebrum posterius 94 and parencephalis 92 See also editVestibulo ocular reflex Eyeblink conditioningReferences edit nbsp This article was submitted to WikiJournal of Medicine for external academic peer review in 2016 reviewer reports The updated content was reintegrated into the Wikipedia page under a CC BY SA 3 0 license 2016 The version of record as reviewed is Marion Wright William Skaggs Finn Arup Nielsen et al 30 June 2016 The Cerebellum PDF WikiJournal of Medicine 3 1 doi 10 15347 WJM 2016 001 ISSN 2002 4436 Wikidata Q44001486 Hodos W 2009 Evolution of Cerebellum Encyclopedia of Neuroscience Berlin Heidelberg Springer pp 1240 1243 doi 10 1007 978 3 540 29678 2 3124 ISBN 978 3 540 23735 8 Wolf U Rapoport MJ Schweizer TA 2009 Evaluating the affective component of the cerebellar cognitive affective syndrome Journal of Neuropsychiatry and Clinical Neurosciences 21 3 245 53 doi 10 1176 jnp 2009 21 3 245 PMID 19776302 Schmahmann JD Caplan D February 2006 Cognition emotion and the cerebellum Brain 129 Pt 2 290 2 doi 10 1093 brain awh729 PMID 16434422 a b c d Fine EJ Ionita CC Lohr L December 2002 The history of the development of the cerebellar examination Seminars in Neurology 22 4 375 84 doi 10 1055 s 2002 36759 PMID 12539058 S2CID 260317107 a b Purves D Augustine GJ Fitzpatrick D Hall WC LaMantia AS White LE 2011 Neuroscience 5th ed Sunderland Mass Sinauer pp 417 423 ISBN 978 0 87893 695 3 a b c Albus JS 1971 A theory of cerebellar function Math Biosciences 10 1 2 25 61 CiteSeerX 10 1 1 14 7524 doi 10 1016 0025 5564 71 90051 4 Purves D Augustine GJ Fitzpatrick D Hall WC LaMantia AS White LE 2007 Neuroscience 4th ed New York W H Freeman pp 197 200 ISBN 978 0 87893 697 7 Standring S Borley NR et al eds 2008 Chapter 20 Gray s anatomy the anatomical basis of clinical practice 40th ed London Churchill Livingstone p 297 ISBN 978 0 8089 2371 8 a b c d e f g h i j k l m n o p q r s t u v w x y z Llinas RR Walton KD Lang EJ 2004 Ch 7 Cerebellum In Shepherd GM ed The Synaptic Organization of the Brain New York Oxford University Press ISBN 978 0 19 515955 4 Herculano Houzel S 2010 Coordinated scaling of cortical and cerebellar numbers of neurons Frontiers in Neuroanatomy 4 12 doi 10 3389 fnana 2010 00012 PMC 2839851 PMID 20300467 a b c d e f g h i j Ghez C Fahn S 1985 The cerebellum In Kandel ER Schwartz JH eds Principles of Neural Science 2nd edition New York Elsevier pp 502 522 Snider RS Stowell A 1 November 1944 Receiving Areas of the Tactile Auditory and Visual Systems in the Cerebellum Journal of Neurophysiology 7 6 331 357 doi 10 1152 jn 1944 7 6 331 S2CID 146700933 Kingsley RE 2000 Concise Text of Neuroscience 2nd ed Lippincott Williams amp Wilkins ISBN 978 0 683 30460 2 Petersen SE Fox PT Posner MI Mintun M Raichle ME 1989 Positron emission tomographic studies of the processing of single words Journal of Cognitive Neuroscience 1 2 153 70 doi 10 1162 jocn 1989 1 2 153 PMID 23968463 S2CID 35159122 Timmann D Daum I 2007 Cerebellar contributions to cognitive functions a progress report after two decades of research Cerebellum 6 3 159 62 doi 10 1080 14734220701496448 PMID 17786810 S2CID 25671398 Strick PL Dum RP Fiez JA 2009 Cerebellum and nonmotor function Annual Review of Neuroscience 32 413 34 doi 10 1146 annurev neuro 31 060407 125606 PMID 19555291 S2CID 1066141 Buckner RL October 2013 The cerebellum and cognitive function 25 years of insight from anatomy and neuroimaging Neuron 80 3 807 15 doi 10 1016 j neuron 2013 10 044 PMID 24183029 Schweighofer N Doya K Kuroda S March 2004 Cerebellar aminergic neuromodulation towards a functional understanding Brain Research Brain Research Reviews 44 2 3 103 16 doi 10 1016 j brainresrev 2003 10 004 PMID 15003388 S2CID 7352039 Felizola SJ Nakamura Y Ono Y Kitamura K Kikuchi K Onodera Y Ise K Takase K Sugawara A Hattangady N Rainey WE Satoh F Sasano H April 2014 PCP4 a regulator of aldosterone synthesis in human adrenocortical tissues Journal of Molecular Endocrinology 52 2 159 67 doi 10 1530 JME 13 0248 PMC 4103644 PMID 24403568 Eccles JC Llinas R Sasaki K January 1966 The excitatory synaptic action of climbing fibres on the Purkinje cells of the cerebellum Journal of Physiology 182 2 268 96 doi 10 1113 jphysiol 1966 sp007824 PMC 1357472 PMID 5944665 a b c d Simpson JI Wylie DR De Zeeuw CI 1996 On climbing fiber signals and their consequence s Behav Brain Sci 19 3 384 398 doi 10 1017 S0140525X00081486 Whitney ER Kemper TL Rosene DL Bauman ML Blatt GJ February 2008 Calbindin D28k is a more reliable marker of human Purkinje cells than standard Nissl stains a stereological experiment Journal of Neuroscience Methods 168 1 42 7 doi 10 1016 j jneumeth 2007 09 009 PMID 17961663 S2CID 10505177 a b Rusanescu G Mao J February 2017 Peripheral nerve injury induces adult brain neurogenesis and remodelling Journal of Cellular and Molecular Medicine 21 2 299 314 doi 10 1111 jcmm 12965 PMC 5264155 PMID 27665307 a b c Marr D June 1969 A theory of cerebellar cortex Journal of Physiology 202 2 437 70 doi 10 1113 jphysiol 1969 sp008820 PMC 1351491 PMID 5784296 a b c d e f g h i j k Apps R Garwicz M April 2005 Anatomical and physiological foundations of cerebellar information processing Nature Reviews Neuroscience 6 4 297 311 doi 10 1038 nrn1646 PMID 15803161 S2CID 10769826 Manni E Petrosini L March 2004 A century of cerebellar somatotopy a debated representation Nature Reviews Neuroscience 5 3 241 9 doi 10 1038 nrn1347 PMID 14976523 S2CID 30232749 Oscarsson O 1979 Functional units of the cerebellum sagittal zones and microzones Trends Neurosci 2 143 145 doi 10 1016 0166 2236 79 90057 2 S2CID 53272245 Rapp B 2001 The Handbook of Cognitive Neuropsychology What Deficits Reveal about the Human Mind Psychology Press p 481 ISBN 978 1 84169 044 5 a b Doya K December 2000 Complementary roles of basal ganglia and cerebellum in learning and motor control Current Opinion in Neurobiology 10 6 732 9 doi 10 1016 S0959 4388 00 00153 7 PMID 11240282 S2CID 10962570 Manto M Marien P 2015 Schmahmann s syndrome identification of the third cornerstone of clinical ataxiology Cerebellum amp Ataxias 2 2 doi 10 1186 s40673 015 0023 1 PMC 4552302 PMID 26331045 Schmahmann JD Sherman JC April 1998 The cerebellar cognitive affective syndrome Brain 121 4 561 79 doi 10 1093 brain 121 4 561 PMID 9577385 Levisohn L Cronin Golomb A Schmahmann JD May 2000 Neuropsychological consequences of cerebellar tumour resection in children cerebellar cognitive affective syndrome in a paediatric population Brain 123 5 1041 50 doi 10 1093 brain 123 5 1041 PMID 10775548 Buckner RL Krienen FM Castellanos A Diaz JC Yeo BT November 2011 The organization of the human cerebellum estimated by intrinsic functional connectivity Journal of Neurophysiology 106 5 2322 45 doi 10 1152 jn 00339 2011 PMC 3214121 PMID 21795627 The emotional cerebellum Michael Adamaszek Mario Manto Dennis J L G Schutter Cham Switzerland Springer 2022 ISBN 978 3 030 99550 8 OCLC 1338132789 a href Template Cite book html title Template Cite book cite book a CS1 maint others link Hernaez Goni P Tirapu Ustarroz J Iglesias Fernandez L Luna Lario P November 2010 Participacion del cerebelo en la regulacion del afecto la emocion y la conducta The role of the cerebellum in the regulation of affection emotion and behavior Revista de Neurologia in Spanish 51 10 597 609 doi 10 33588 rn 5110 2010394 PMID 21069639 Turner BM Paradiso S Marvel CL Pierson R Boles Ponto LL Hichwa RD Robinson RG March 2007 The cerebellum and emotional experience Neuropsychologia 45 6 1331 41 doi 10 1016 j neuropsychologia 2006 09 023 PMC 1868674 PMID 17123557 Doya K October 1999 What are the computations of the cerebellum the basal ganglia and the cerebral cortex Neural Networks 12 7 8 961 974 doi 10 1016 S0893 6080 99 00046 5 PMID 12662639 Manto M Marvel C Vandervert L 2022 The new revolution in psychology and the neurosciences Switzerland Springer Nature ISBN 9783031060922 Eccles JC Ito M Szentagothai J 1967 The Cerebellum as a Neuronal Machine Springer Verlag The Cerebellum as a Neuronal Machine p 311 a b Boyden ES Katoh A Raymond JL 2004 Cerebellum dependent learning the role of multiple plasticity mechanisms Annual Review of Neuroscience 27 581 609 doi 10 1146 annurev neuro 27 070203 144238 PMID 15217344 S2CID 1310007 a b Houk JC Buckingham JT Barto AG 1996 Models of the cerebellum and motor learning PDF Behav Brain Sci 19 3 368 383 CiteSeerX 10 1 1 118 2997 doi 10 1017 S0140525X00081474 Archived from the original PDF on 2017 08 09 Fujita M 1982 Adaptive filter model of the cerebellum Biological Cybernetics 45 3 195 206 doi 10 1007 BF00336192 PMID 7171642 S2CID 3695770 Gilbert PF Thach WT June 1977 Purkinje cell activity during motor learning Brain Research 128 2 309 28 doi 10 1016 0006 8993 77 90997 0 PMID 194656 S2CID 40799652 Christian KM Thompson RF 2003 Neural substrates of eyeblink conditioning acquisition and retention Learning amp Memory 10 6 427 55 doi 10 1101 lm 59603 PMID 14657256 Braitenberg V Atwood RP February 1958 Morphological observations on the cerebellar cortex Journal of Comparative Neurology 109 1 1 33 doi 10 1002 cne 901090102 PMID 13563670 S2CID 8989536 Braitenberg V Heck D Sultan F June 1997 The detection and generation of sequences as a key to cerebellar function experiments and theory Behavioral and Brain Sciences 20 2 229 45 discussion 245 77 doi 10 1017 s0140525x9700143x PMID 10096998 S2CID 36802745 Ivry RB Spencer RM Zelaznik HN Diedrichsen J December 2002 The cerebellum and event timing Annals of the New York Academy of Sciences 978 1 302 17 Bibcode 2002NYASA 978 302I doi 10 1111 j 1749 6632 2002 tb07576 x PMID 12582062 S2CID 27237058 Pellionisz A Llinas R 1982 Space time representation in the brain The cerebellum as a predictive space time metric tensor Neuroscience 7 12 2949 70 doi 10 1016 0306 4522 82 90224 X PMID 7162624 S2CID 20520737 Horvath G 2003 CMAC Reconsidering an old neural network PDF Intelligent Control Systems and Signal Processing Retrieved 2009 12 24 Schmitz TJ 2007 Examination of Coordination In O Sullivan SB Schmitz TJ eds Physical Rehabilitation Philadelphia F A Davis pp 193 225 ISBN 9780803612471 Marien P Manto M 2016 The linguistic cerebellum London UK Academic Press pp 337 351 ISBN 978 0 12 801608 4 Gilman S March 1998 Imaging the brain Second of two parts New England Journal of Medicine 338 13 889 96 doi 10 1056 NEJM199803263381307 PMID 9516225 a b NINDS Ataxias and Cerebellar or Spinocerebellar Degeneration Information Page National Institutes of Health 16 April 2014 Archived from the original on 9 February 2015 Retrieved 2 February 2015 Yuhas D January 15 2016 Veterans of Iraq Afghanistan Show Brain Changes Related to Explosion Exposure Scientific American Archived from the original on January 20 2016 Retrieved January 21 2016 Vincent M Hadjikhani N June 2007 The cerebellum and migraine Headache 47 6 820 33 doi 10 1111 j 1526 4610 2006 00715 x PMC 3761082 PMID 17578530 a b NINDS Cerebellar Degeneration Information Page National Institutes of Health 28 February 2014 Archived from the original on 18 February 2015 Retrieved 2 February 2015 Horvath S Mah V Lu AT Woo JS Choi OW Jasinska AJ Riancho JA Tung S Coles NS Braun J Vinters HV Coles LS May 2015 The cerebellum ages slowly according to the epigenetic clock Aging 7 5 294 306 doi 10 18632 aging 100742 PMC 4468311 PMID 26000617 Fraser HB Khaitovich P Plotkin JB Paabo S Eisen MB September 2005 Aging and gene expression in the primate brain PLOS Biology 3 9 e274 doi 10 1371 journal pbio 0030274 PMC 1181540 PMID 16048372 Andersen BB Gundersen HJ Pakkenberg B November 2003 Aging of the human cerebellum a stereological study Journal of Comparative Neurology 466 3 356 65 doi 10 1002 cne 10884 PMID 14556293 S2CID 7091227 Raz N Gunning Dixon F Head D Williamson A Acker JD 2001 Age and sex differences in the cerebellum and the ventral pons a prospective MR study of healthy adults PDF American Journal of Neuroradiology 22 6 1161 7 PMC 7974784 PMID 11415913 Archived PDF from the original on 2008 12 17 a b c d Albert RK Porter RS eds 2006 The Merck Manual of Diagnosis and Therapy 18th ed Whitehouse Station New Jersey Merck Research Libraries pp 1886 1887 Campbell J Gilbert WM Nicolaides KH Campbell S August 1987 Ultrasound screening for spina bifida cranial and cerebellar signs in a high risk population Obstetrics and Gynecology 70 2 247 50 PMID 3299184 a b Hatten ME Heintz N 1995 Mechanisms of neural patterning and specification in the developing cerebellum Annual Review of Neuroscience 18 385 408 doi 10 1146 annurev ne 18 030195 002125 PMID 7605067 Polkinghorn WR Tarbell NJ May 2007 Medulloblastoma tumorigenesis current clinical paradigm and efforts to improve risk stratification Nature Clinical Practice Oncology 4 5 295 304 doi 10 1038 ncponc0794 PMID 17464337 S2CID 24461280 Roussel MF Hatten ME 2011 Cerebellum development and medulloblastoma Vol 94 pp 235 82 doi 10 1016 B978 0 12 380916 2 00008 5 ISBN 9780123809162 PMC 3213765 PMID 21295689 a href Template Cite book html title Template Cite book cite book a journal ignored help NINDS Joubert Syndrome Information Page National Institutes of Health 23 December 2013 Archived from the original on 4 January 2015 Retrieved 9 January 2015 NINDS Dandy Walker Information Page National Institutes of Health 14 February 2014 Archived from the original on 4 January 2015 Retrieved 9 January 2015 NINDS Cerebellar Hypoplasia Information Page National Institutes of Health 29 September 2011 Archived from the original on 4 January 2015 Retrieved 9 January 2015 Chiari Malformation Fact Sheet National Institutes of Health 10 December 2014 Archived from the original on 27 October 2011 Retrieved 9 January 2015 NINDS Dyssynergia Cerebellaris Myoclonica Information Page National Institutes of Health 14 February 2011 Archived from the original on 16 February 2015 Retrieved 1 February 2015 NINDS Olivopontocerebellar Atrophy Information Page National Institutes of Health 16 April 2014 Archived from the original on 27 January 2012 Retrieved 9 January 2015 NINDS Paraneoplastic Syndromes Information Page National Institutes of Health 12 March 2009 Archived from the original on 4 January 2015 Retrieved 9 January 2015 NINDS Wernicke Korsakoff Syndrome Information Page National Institutes of Health 14 February 2007 Archived from the original on 4 January 2015 Retrieved 9 January 2015 Moulton EA Schmahmann JD Becerra L Borsook D October 2010 The cerebellum and pain passive integrator or active participator Brain Research Reviews 65 1 14 27 doi 10 1016 j brainresrev 2010 05 005 PMC 2943015 PMID 20553761 Baumann O Borra RJ Bower JM Cullen KE Habas C Ivry RB Leggio M Mattingley JB Molinari M Moulton EA Paulin MG Pavlova MA Schmahmann JD Sokolov AA April 2015 Consensus paper the role of the cerebellum in perceptual processes Cerebellum 14 2 197 220 doi 10 1007 s12311 014 0627 7 PMC 4346664 PMID 25479821 a b c d Bell CC Han V Sawtell NB 2008 Cerebellum like structures and their implications for cerebellar function Annual Review of Neuroscience 31 1 24 doi 10 1146 annurev neuro 30 051606 094225 PMID 18275284 S2CID 14536411 Woodhams PL July 1977 The ultrastructure of a cerebellar analogue in octopus Journal of Comparative Neurology 174 2 329 45 doi 10 1002 cne 901740209 PMID 864041 S2CID 43112389 a b Romer AS Parsons TS 1977 The Vertebrate Body Philadelphia Holt Saunders International p 531 ISBN 978 0 03 910284 5 Shi Z Zhang Y Meek J Qiao J Han VZ August 2008 The neuronal organization of a unique cerebellar specialization the valvula cerebelli of a mormyrid fish Journal of Comparative Neurology 509 5 449 73 doi 10 1002 cne 21735 PMC 5884697 PMID 18537139 Weaver AH March 2005 Reciprocal evolution of the cerebellum and neocortex in fossil humans Proceedings of the National Academy of Sciences of the United States of America 102 10 3576 80 Bibcode 2005PNAS 102 3576W doi 10 1073 pnas 0500692102 PMC 553338 PMID 15731345 a b c Schoenemann PT December 1 2009 Evolution of Brain and Language Language Learning 59 162 186 doi 10 1111 j 1467 9922 2009 00539 x PMID 22230641 MacLeod CE Zilles K Schleicher A Rilling JK Gibson KR April 2003 Expansion of the neocerebellum in Hominoidea Journal of Human Evolution 44 4 401 29 doi 10 1016 S0047 2484 03 00028 9 PMID 12727461 Roberts PD Portfors CV June 2008 Design principles of sensory processing in cerebellum like structures Early stage processing of electrosensory and auditory objects Biological Cybernetics 98 6 491 507 doi 10 1007 s00422 008 0217 1 PMID 18491162 S2CID 14393814 Bower JM 1997 Chapter 27 is the cerebellum sensory for motor s sake or motor for sensory s sake The view from the whiskers of a rat The Cerebellum From Structure to Control Progress in Brain Research Vol 114 pp 463 96 doi 10 1016 S0079 6123 08 63381 6 ISBN 978 0 444 82313 7 PMID 9193161 Heiney SA Kim J Augustine GJ Medina JF February 2014 Precise control of movement kinematics by optogenetic inhibition of Purkinje cell activity Journal of Neuroscience 34 6 2321 30 doi 10 1523 JNEUROSCI 4547 13 2014 PMC 3913874 PMID 24501371 Witter L Canto CB Hoogland TM de Gruijl JR De Zeeuw CI 2013 Strength and timing of motor responses mediated by rebound firing in the cerebellar nuclei after Purkinje cell activation Frontiers in Neural Circuits 7 133 doi 10 3389 fncir 2013 00133 PMC 3748751 PMID 23970855 Clarke E O Malley CD 1996 Ch 11 Cerebellum The Human Brain and Spinal Cord 2nd ed Norman Publishing p 629 ISBN 978 0 930405 25 0 Ito M December 2002 Historical review of the significance of the cerebellum and the role of Purkinje cells in motor learning Annals of the New York Academy of Sciences 978 1 273 88 Bibcode 2002NYASA 978 273I doi 10 1111 j 1749 6632 2002 tb07574 x PMID 12582060 S2CID 22860609 Lewis CT Short C 1879 A Latin dictionary founded on Andrews edition of Freund s Latin dictionary Oxford Clarendon Press Marshall LH Magoun HW 1998 Discoveries in the human brain Neuroscience prehistory brain structure and function Totowa Humana Press a b c Foster FD 1891 An illustrated medical dictionary New York D Appleton and Company Kraus LA 1844 Kritisch etymologisches medicinisches Lexikon Dritte Auflage Gottingen Verlag der Deuerlich und Dieterichschen Buchhandlung Schreger CH 1805 Synonymia anatomica Synonymik der anatomischen Nomenclatur Furth External links edit nbsp Wikimedia Commons has media related to Cerebellum Llinas R Negrello MN 2015 Cerebellum Scholarpedia 10 1 4606 Bibcode 2015SchpJ 10 4606L doi 10 4249 scholarpedia 4606 Cerebellum Cell Centered Database Handbook of the Cerebellum and Cerebellar Disorders Manto M Gruol D L Schmahmann J Koibuchi N Rossi F Eds Springer New York Stained brain slice images which include the cerebellum at the BrainMaps project A Man s Incomplete Brain Reveals Cerebellum s Role In Thought And Emotion Woman living without cerebellum Essentials of Cerebellum and Cerebellar Disorders Gruol D L Koibuchi N Manto M Molinari M Schmahmann J D Shen Y Eds Springer New York 2016 Cerebellum histology images The Cerebellum Journal Springer Nature Cerebellum and Ataxias Journal BioMed Central Retrieved from https en wikipedia org w index php title Cerebellum amp oldid 1195006978, wikipedia, wiki, book, books, library,

article

, read, download, free, free download, mp3, video, mp4, 3gp, jpg, jpeg, gif, png, picture, music, song, movie, book, game, games.