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Wikipedia

Snake

Snakes are elongated, limbless, carnivorous reptiles of the suborder Serpentes /sɜːrˈpɛntz/.[2] Like all other squamates, snakes are ectothermic, amniote vertebrates covered in overlapping scales. Many species of snakes have skulls with several more joints than their lizard ancestors, enabling them to swallow prey much larger than their heads (cranial kinesis). To accommodate their narrow bodies, snakes' paired organs (such as kidneys) appear one in front of the other instead of side by side, and most have only one functional lung. Some species retain a pelvic girdle with a pair of vestigial claws on either side of the cloaca. Lizards have evolved elongate bodies without limbs or with greatly reduced limbs about twenty-five times independently via convergent evolution, leading to many lineages of legless lizards.[3] These resemble snakes, but several common groups of legless lizards have eyelids and external ears, which snakes lack, although this rule is not universal (see Amphisbaenia, Dibamidae, and Pygopodidae).

Snakes
Temporal range:
Late CretaceousPresent,[1] 94–0 Ma
Horned rattlesnakeSouthern hognose snakeBlue kraitEmerald tree boaSri Lanka cat snakeRingneck snakeStriped house snakeBlunthead tree snakeCorn snakeIndian cobraGrass snakePacific gopher snakeAhaetulla nasutaCoral snakeGreen tree pythonSpiny bush viperFalse coral snakePuffing snake
Scientific classification
Kingdom: Animalia
Phylum: Chordata
Class: Reptilia
Order: Squamata
Clade: Ophidia
Suborder: Serpentes
Linnaeus, 1758
Infraorders
Approximate world distribution of snakes, all species

Living snakes are found on every continent except Antarctica, and on most smaller land masses; exceptions include some large islands, such as Ireland, Iceland, Greenland, the Hawaiian archipelago, and the islands of New Zealand, as well as many small islands of the Atlantic and central Pacific oceans.[4] Additionally, sea snakes are widespread throughout the Indian and Pacific oceans. Around thirty families are currently recognized, comprising about 520 genera and about 3,900 species.[5] They range in size from the tiny, 10.4 cm-long (4.1 in) Barbados threadsnake[6] to the reticulated python of 6.95 meters (22.8 ft) in length.[7] The fossil species Titanoboa cerrejonensis was 12.8 meters (42 ft) long.[8] Snakes are thought to have evolved from either burrowing or aquatic lizards, perhaps during the Jurassic period, with the earliest known fossils dating to between 143 and 167 Ma ago.[9][10] The diversity of modern snakes appeared during the Paleocene epoch (c. 66 to 56 Ma ago, after the Cretaceous–Paleogene extinction event). The oldest preserved descriptions of snakes can be found in the Brooklyn Papyrus.

Most species of snake are nonvenomous and those that have venom use it primarily to kill and subdue prey rather than for self-defense. Some possess venom that is potent enough to cause painful injury or death to humans. Nonvenomous snakes either swallow prey alive or kill by constriction.

Etymology

The English word snake comes from Old English snaca, itself from Proto-Germanic *snak-an- (cf. Germanic Schnake 'ring snake', Swedish snok 'grass snake'), from Proto-Indo-European root *(s)nēg-o- 'to crawl to creep', which also gave sneak as well as Sanskrit nāgá 'snake'.[11] The word ousted adder, as adder went on to narrow in meaning, though in Old English næddre was the general word for snake.[12] The other term, serpent, is from French, ultimately from Indo-European *serp- 'to creep',[13] which also gave Ancient Greek ἕρπω (hérpō) 'I crawl'.

Evolution

A phylogenetic overview of modern snakes.
Note: the tree only indicates relationships, not evolutionary branching times.[14]

The fossil record of snakes is relatively poor because snake skeletons are typically small and fragile making fossilization uncommon. Fossils readily identifiable as snakes (though often retaining hind limbs) first appear in the fossil record during the Cretaceous period.[15] The earliest known true snake fossils (members of the crown group Serpentes) come from the marine simoliophiids, the oldest of which is the Late Cretaceous (Cenomanian age) Haasiophis terrasanctus,[1] dated to between 112 and 94 million years old.[16]

Based on comparative anatomy, there is consensus that snakes descended from lizards.[17]: 11 [18] Pythons and boas—primitive groups among modern snakes—have vestigial hind limbs: tiny, clawed digits known as anal spurs, which are used to grasp during mating.[17]: 11 [19] The families Leptotyphlopidae and Typhlopidae also possess remnants of the pelvic girdle, appearing as horny projections when visible.

Front limbs are nonexistent in all known snakes. This is caused by the evolution of their Hox genes, controlling limb morphogenesis. The axial skeleton of the snakes' common ancestor, like most other tetrapods, had regional specializations consisting of cervical (neck), thoracic (chest), lumbar (lower back), sacral (pelvic), and caudal (tail) vertebrae. Early in snake evolution, the Hox gene expression in the axial skeleton responsible for the development of the thorax became dominant. As a result, the vertebrae anterior to the hindlimb buds (when present) all have the same thoracic-like identity (except from the atlas, axis, and 1–3 neck vertebrae). In other words, most of a snake's skeleton is an extremely extended thorax. Ribs are found exclusively on the thoracic vertebrae. Neck, lumbar and pelvic vertebrae are very reduced in number (only 2–10 lumbar and pelvic vertebrae are present), while only a short tail remains of the caudal vertebrae. However, the tail is still long enough to be of important use in many species, and is modified in some aquatic and tree-dwelling species.

Many modern snake groups originated during the Paleocene, alongside the adaptive radiation of mammals following the extinction of (non-avian) dinosaurs. The expansion of grasslands in North America also led to an explosive radiation among snakes.[20] Previously, snakes were a minor component of the North American fauna, but during the Miocene, the number of species and their prevalence increased dramatically with the first appearances of vipers and elapids in North America and the significant diversification of Colubridae (including the origin of many modern genera such as Nerodia, Lampropeltis, Pituophis, and Pantherophis).[20]

Fossils

There is fossil evidence to suggest that snakes may have evolved from burrowing lizards,[21] during the Cretaceous Period.[22] An early fossil snake relative, Najash rionegrina, was a two-legged burrowing animal with a sacrum, and was fully terrestrial.[23] One extant analog of these putative ancestors is the earless monitor Lanthanotus of Borneo (though it also is semiaquatic).[24] Subterranean species evolved bodies streamlined for burrowing, and eventually lost their limbs.[24] According to this hypothesis, features such as the transparent, fused eyelids (brille) and loss of external ears evolved to cope with fossorial difficulties, such as scratched corneas and dirt in the ears.[22][24] Some primitive snakes are known to have possessed hindlimbs, but their pelvic bones lacked a direct connection to the vertebrae. These include fossil species like Haasiophis, Pachyrhachis and Eupodophis, which are slightly older than Najash.[19]

This hypothesis was strengthened in 2015 by the discovery of a 113-million-year-old fossil of a four-legged snake in Brazil that has been named Tetrapodophis amplectus. It has many snake-like features, is adapted for burrowing and its stomach indicates that it was preying on other animals.[25] It is currently uncertain if Tetrapodophis is a snake or another species, in the squamate order, as a snake-like body has independently evolved at least 26 times. Tetrapodophis does not have distinctive snake features in its spine and skull.[26][27] A study in 2021 places the animal in a group of extinct marine lizards from the Cretaceous period known as dolichosaurs and not directly related to snakes.[28]

An alternative hypothesis, based on morphology, suggests the ancestors of snakes were related to mosasaurs—extinct aquatic reptiles from the Cretaceous—forming the clade Pythonomorpha.[18] According to this hypothesis, the fused, transparent eyelids of snakes are thought to have evolved to combat marine conditions (corneal water loss through osmosis), and the external ears were lost through disuse in an aquatic environment. This ultimately led to an animal similar to today's sea snakes. In the Late Cretaceous, snakes recolonized land, and continued to diversify into today's snakes. Fossilized snake remains are known from early Late Cretaceous marine sediments, which is consistent with this hypothesis; particularly so, as they are older than the terrestrial Najash rionegrina. Similar skull structure, reduced or absent limbs, and other anatomical features found in both mosasaurs and snakes lead to a positive cladistical correlation, although some of these features are shared with varanids.[citation needed]

Genetic studies in recent years have indicated snakes are not as closely related to monitor lizards as was once believed—and therefore not to mosasaurs, the proposed ancestor in the aquatic scenario of their evolution. However, more evidence links mosasaurs to snakes than to varanids. Fragmented remains found from the Jurassic and Early Cretaceous indicate deeper fossil records for these groups, which may potentially refute either hypothesis.[29][30]

Genetic basis of snake evolution

Both fossils and phylogenetic studies demonstrate that snakes evolved from lizards, hence the question became which genetic changes led to limb loss in the snake ancestor. Limb loss is actually very common in extant reptiles and has happened dozens of times within skinks, anguids, and other lizards.[31]

In 2016, two studies reported that limb loss in snakes is associated with DNA mutations in the Zone of Polarizing Activity Regulatory Sequence (ZRS), a regulatory region of the sonic hedgehog gene which is critically required for limb development. More advanced snakes have no remnants of limbs, but basal snakes such as pythons and boas do have traces of highly reduced, vestigial hind limbs. Python embryos even have fully developed hind limb buds, but their later development is stopped by the DNA mutations in the ZRS.[32][33][34][35]

Distribution

 
Approximate world distribution of snakes

There are about 3,900 species of snakes,[36] ranging as far northward as the Arctic Circle in Scandinavia and southward through Australia.[18] Snakes can be found on every continent except Antarctica, as well as in the sea, and as high as 16,000 feet (4,900 m) in the Himalayan Mountains of Asia.[18][37]: 143  There are numerous islands from which snakes are absent, such as Ireland, Iceland, and New Zealand[4][37] (although New Zealand's waters are infrequently visited by the yellow-bellied sea snake and the banded sea krait).[38]

Taxonomy

All modern snakes are grouped within the suborder Serpentes in Linnean taxonomy, part of the order Squamata, though their precise placement within squamates remains controversial.[39]

The two infraorders of Serpentes are: Alethinophidia and Scolecophidia.[39] This separation is based on morphological characteristics and mitochondrial DNA sequence similarity. Alethinophidia is sometimes split into Henophidia and Caenophidia, with the latter consisting of "colubroid" snakes (colubrids, vipers, elapids, hydrophiids, and atractaspids) and acrochordids, while the other alethinophidian families comprise Henophidia.[40] While not extant today, the Madtsoiidae, a family of giant, primitive, python-like snakes, was around until 50,000 years ago in Australia, represented by genera such as Wonambi.

There are numerous debates in the systematics within the group. For instance, many sources classify Boidae and Pythonidae as one family, while some keep the Elapidae and Hydrophiidae (sea snakes) separate for practical reasons despite their extremely close relation.

Recent molecular studies support the monophyly of the clades of modern snakes, scolecophidians, typhlopids + anomalepidids, alethinophidians, core alethinophidians, uropeltids (Cylindrophis, Anomochilus, uropeltines), macrostomatans, booids, boids, pythonids and caenophidians.[14]

Families

Infraorder Alethinophidia 25 families
Family[5] Taxon author[5] Genera[5] Species[5] Common name Geographic range[41]
Acrochordidae Bonaparte, 1831 1 3 Wart snakes Western India and Sri Lanka through tropical Southeast Asia to the Philippines, south through the Indonesian/Malaysian island group to Timor, east through New Guinea to the northern coast of Australia to Mussau Island, the Bismarck Archipelago and Guadalcanal Island in the Solomon Islands.
Aniliidae Stejneger, 1907 1 1 False coral snake Tropical South America.
Anomochilidae Cundall, Wallach, 1993 1 3 Dwarf pipe snakes West Malaysia and on the Indonesian island of Sumatra.
Atractaspididae Günther, 1858 12 72 Burrowing asps Africa and the Middle East
Boidae Gray, 1825 14 61 Boas Northern, Central and South America, the Caribbean, southeastern Europe and Asia Minor, Northern, Central and East Africa, Madagascar and Reunion Island, the Arabian Peninsula, Central and southwestern Asia, India and Sri Lanka, the Moluccas and New Guinea through to Melanesia and Samoa.
Bolyeriidae Hoffstetter, 1946 2 2 Splitjaw snakes Mauritius.
Colubridae Oppel, 1811 258[5] 2055[5] Typical snakes Widespread on all continents, except Antarctica.[42]
Cyclocoridae Weinell & Brown, 2017 5 8 Cyclocorids The Philippines
Cylindrophiidae Fitzinger, 1843 1 14 Asian pipe snakes Sri Lanka east through Myanmar, Thailand, Cambodia, Vietnam and the Malay Archipelago to as far east as Aru Islands off the southwestern coast of New Guinea. Also found in southern China (Fujian, Hong Kong and on Hainan Island) and in Laos.
Elapidae Boie, 1827 55 389 Elapids On land, worldwide in tropical and subtropical regions, except in Europe. Sea snakes occur in the Indian Ocean and the Pacific.[43]
Homalopsidae Bonaparte, 1845 28 53 Homalopsids Southeastern Asia and northern Australia.
Lamprophiidae Fitzinger, 1843 16 89 Lamprophiids (formerly included Atracaspididae, Psammophiidae, and several other families) Africa (including the Seychelles)
Loxocemidae Cope, 1861 1 1 Mexican burrowing snake Along the Pacific versant from Mexico south to Costa Rica.
Pareidae Romer, 1956 3 20 Snail-eating snakes Southeast Asia and islands on the Sunda Shelf (Sumatra, Borneo, Java, and their surrounding smaller islands).
Prosymnidae Kelly, Barker, Villet & Broadley, 2009 1 16 Shovel-snout snakes Subsaharan Africa
Psammophiidae Bourgeois, 1968 8 55 Psammophiids Africa (including Madagascar), Asia and southern Europe
Pseudaspididae Cope, 1893 3 4 Pseudaspidids Mostly Subsaharan Africa; two species in Southeast Asia
Pseudoxyrhophiidae Dowling, 1975 22 89 Pseudoxyrhophiids Mostly Madagascar and the Comoros; 5 species in subsaharan Africa, 1 in Socotra
Pythonidae Fitzinger, 1826 8 40 Pythons Subsaharan Africa, India, Myanmar, southern China, Southeast Asia and from the Philippines southeast through Indonesia to New Guinea and Australia.
Tropidophiidae Brongersma, 1951 2 34 Dwarf boas West Indies; also Panama and northwestern South America, as well as in northwestern and southeastern Brazil.
Uropeltidae Müller, 1832 8 55 Shield-tailed snakes Southern India and Sri Lanka.
Viperidae Oppel, 1811 35 341 Vipers The Americas, Africa, and Eurasia east to Wallace's Line.
Xenodermidae Cope, 1900 6 18 Dragon & odd-scaled snakes Southern and southeastern Asia, and islands on the Sunda Shelf (Sumatra, Borneo, Java, and their surrounding smaller islands).
Xenopeltidae Bonaparte, 1845 1 2 Sunbeam snakes Southeast Asia from the Andaman and Nicobar Islands, east through Myanmar to southern China, Thailand, Laos, Cambodia, Vietnam, the Malay Peninsula and the East Indies to Sulawesi, as well as the Philippines.
Xenophidiidae Wallach & Günther, 1998 1 2 Spine-jawed snakes Borneo & peninsular Malaysia.


Infraorder Scolecophidia 5 families
Family[5] Taxon author[5] Genera[5] Species[5] Common name Geographic range[41]
Anomalepidae Taylor, 1939 4 18 Primitive blind snakes From southern Central America to northwestern South America. Disjunct populations in northeastern and southeastern South America.
Gerrhopilidae Vidal, Wynn, Donnellan and Hedges 2010 2 18 Indo-Malayan blindsnakes Southern & southeastern Asia, including Sri Lanka, the Philippines, and New Guinea.
Leptotyphlopidae Stejneger, 1892 13 139 Slender blind snakes Africa, western Asia from Turkey to northwestern India, on Socotra Island, from the southwestern United States south through Mexico and Central to South America, though not in the high Andes. In Pacific South America they occur as far south as southern coastal Peru, and on the Atlantic side as far as Uruguay and Argentina. In the Caribbean they are found on the Bahamas, Hispaniola and the Lesser Antilles.
Typhlopidae Merrem, 1820 18 266 Typical blind snakes Most tropical and many subtropical regions around the world, particularly in Africa, Madagascar, Asia, islands in the Pacific, tropical America and in southeastern Europe.
Xenotyphlopidae Vidal, Vences, Branch and Hedges 2010 1 1 Round-nosed blindsnake Northern Madagascar.

Legless lizards

While snakes are limbless reptiles, evolved from (and grouped with) lizards, there are many other species of lizards that have lost their limbs independently but which superficially look similar to snakes. These include the slowworm and glass snake.

Other serpentine tetrapods that are unrelated to snakes include caecilians (amphibians), amphisbaenians (near-lizard squamates), and the extinct aistopods (amphibians).

Biology

 
An adult Barbados threadsnake, Leptotyphlops carlae, on an American quarter dollar

Size

The now extinct Titanoboa cerrejonensis was 12.8 m (42 ft) in length.[8] By comparison, the largest extant snakes are the reticulated python, measuring about 6.95 m (22.8 ft) long,[7] and the green anaconda, which measures about 5.21 m (17.1 ft) long and is considered the heaviest snake on Earth at 97.5 kg (215 lb).[44]

At the other end of the scale, the smallest extant snake is Leptotyphlops carlae, with a length of about 10.4 cm (4.1 in).[6] Most snakes are fairly small animals, approximately 1 m (3.3 ft) in length.[45]

Perception

 
Thermographic image of a snake eating a mouse

Pit vipers, pythons, and some boas have infrared-sensitive receptors in deep grooves on the snout, allowing them to "see" the radiated heat of warm-blooded prey. In pit vipers, the grooves are located between the nostril and the eye in a large "pit" on each side of the head. Other infrared-sensitive snakes have multiple, smaller labial pits lining the upper lip, just below the nostrils.[46]

A snake tracks its prey using smell, collecting airborne particles with its forked tongue, then passing them to the vomeronasal organ or Jacobson's organ in the mouth for examination.[46] The fork in the tongue provides a sort of directional sense of smell and taste simultaneously.[46] The snake's tongue is constantly in motion, sampling particles from the air, ground, and water, analyzing the chemicals found, and determining the presence of prey or predators in the local environment. In water-dwelling snakes, such as the anaconda, the tongue functions efficiently underwater.[46]

 
A line diagram from The Fauna of British India by G. A. Boulenger (1890), illustrating the terminology of shields on the head of a snake

The underside of a snake is very sensitive to vibration, allowing the snake to detect approaching animals by sensing faint vibrations in the ground.[46]

Snake vision varies greatly between species. Some have keen eyesight and others are only able to distinguish light from dark, but the important trend is that a snake's visual perception is adequate enough to track movements.[47] Generally, vision is best in tree-dwelling snakes and weakest in burrowing snakes. Some have binocular vision, where both eyes are capable of focusing on the same point, an example of this being the Asian vine snake. Most snakes focus by moving the lens back and forth in relation to the retina. Diurnal snakes have round pupils and many nocturnal snakes have slit pupils. Most species possess three visual pigments and are probably able to see two primary colors in daylight. It has been concluded that the last common ancestors of all snakes had UV-sensitive vision, but most snakes that depend on their eyesight to hunt in daylight have evolved lenses that act like sunglasses for filtering out the UV-light, which probably also sharpens their vision by improving the contrast.[48][49]

Skin

The skin of a snake is covered in scales. Contrary to the popular notion of snakes being slimy (because of possible confusion of snakes with worms), snakeskin has a smooth, dry texture. Most snakes use specialized belly scales to travel, allowing them to grip surfaces. The body scales may be smooth, keeled, or granular. The eyelids of a snake are transparent "spectacle" scales, also known as brille, which remain permanently closed.

The shedding of scales is called ecdysis (or in normal usage, molting or sloughing). Snakes shed the complete outer layer of skin in one piece.[50] Snake scales are not discrete, but extensions of the epidermis—hence they are not shed separately but as a complete outer layer during each molt, akin to a sock being turned inside out.[51]

Snakes have a wide diversity of skin coloration patterns which are often related to behavior, such as the tendency to have to flee from predators. Snakes that are at a high risk of predation tend to be plain, or have longitudinal stripes, providing few reference points to predators, thus allowing the snake to escape without being noticed. Plain snakes usually adopt active hunting strategies, as their pattern allows them to send little information to prey about motion. Blotched snakes usually use ambush-based strategies, likely because it helps them blend into an environment with irregularly shaped objects, like sticks or rocks. Spotted patterning can similarly help snakes to blend into their environment.[52]

The shape and number of scales on the head, back, and belly are often characteristic and used for taxonomic purposes. Scales are named mainly according to their positions on the body. In "advanced" (Caenophidian) snakes, the broad belly scales and rows of dorsal scales correspond to the vertebrae, allowing these to be counted without the need for dissection.

Molting

 
A common watersnake shedding its skin

Molting (or "ecdysis") serves a number of purposes. It allows old, worn skin to be replaced and it can remove parasites such as mites and ticks that live in the skin. It's also been observed in snakes that molting can be synced to mating cycles. Shedding skin can release pheromones and revitalize color and patterns of the skin to increase attraction of mates.[53] Renewal of the skin by molting supposedly allows growth in some animals such as insects, but this has been disputed in the case of snakes.[51][54]

Molting occurs periodically throughout the life of a snake. Before each molt, the snake stops eating and often hides or moves to a safe place. Just before shedding, the skin becomes dull and dry looking and the snake's eyes turn cloudy or blue-colored. The inner surface of the old skin liquefies, causing it to separate from the new skin beneath it. After a few days, the eyes become clear and the snake "crawls" out of its old skin, which splits close to the snake's mouth. The snake rubs its body against rough surfaces to aid in the shedding of its old skin. In many cases, the cast skin peels backward over the body from head to tail in one piece, like pulling a sock off inside-out, revealing a new, larger, brighter layer of skin which has formed underneath.[51][55]

A young snake that is still growing may shed its skin up to four times a year, but an older snake may shed only once or twice a year.[55] The discarded skin carries a perfect imprint of the scale pattern, so it is usually possible to identify the snake from the cast skin if it is reasonably intact.[51] This periodic renewal has led to the snake being a symbol of healing and medicine, as pictured in the Rod of Asclepius.[56]

Scale counts can sometimes be used to identify the sex of a snake when the species is not distinctly sexually dimorphic. A probe is fully inserted into the cloaca, marked at the point where it stops, then removed and measured against the subcaudal scales.[57] The scalation count determines whether the snake is a male or female, as the hemipenes of a male will probe to a different depth (usually longer) than the cloaca of a female.[57][clarification needed]

Skeleton

 
The skeletons of snakes are radically different from those of most other reptiles (as compared with the turtle here, for example), consisting almost entirely of an extended ribcage.

The skeleton of most snakes consists solely of the skull, hyoid, vertebral column, and ribs, though henophidian snakes retain vestiges of the pelvis and rear limbs.

The skull consists of a solid and complete neurocranium, to which many of the other bones are only loosely attached, particularly the highly mobile jaw bones, which facilitate manipulation and ingestion of large prey items. The left and right sides of the lower jaw are joined only by a flexible ligament at the anterior tips, allowing them to separate widely, and the posterior end of the lower jaw bones articulate with a quadrate bone, allowing further mobility. The mandible and quadrate bones can pick up ground-borne vibrations;[58] because the sides of the lower jaw can move independently of one another, a snake resting its jaw on a surface has sensitive stereo auditory perception, used for detecting the position of prey. The jaw–quadrate–stapes pathway is capable of detecting vibrations on the angstrom scale, despite the absence of an outer ear and the lack of an impedance matching mechanism—provided by the ossicles in other vertebrates—for receiving vibrations from the air.[59][60]

The hyoid is a small bone located posterior and ventral to the skull, in the 'neck' region, which serves as an attachment for the muscles of the snake's tongue, as it does in all other tetrapods.

The vertebral column consists of between 200 and 400 vertebrae, or sometimes more. The body vertebrae each have two ribs articulating with them. The tail vertebrae are comparatively few in number (often less than 20% of the total) and lack ribs. The vertebrae have projections that allow for strong muscle attachment, enabling locomotion without limbs.

Caudal autotomy (self-amputation of the tail), a feature found in some lizards, is absent in most snakes.[61] In the rare cases where it does exist in snakes, caudal autotomy is intervertebral (meaning the separation of adjacent vertebrae), unlike that in lizards, which is intravertebral, i.e. the break happens along a predefined fracture plane present on a vertebra.[62][63]

In some snakes, most notably boas and pythons, there are vestiges of the hindlimbs in the form of a pair of pelvic spurs. These small, claw-like protrusions on each side of the cloaca are the external portion of the vestigial hindlimb skeleton, which includes the remains of an ilium and femur.

Snakes are polyphyodonts with teeth that are continuously replaced.[64]

Internal organs

1: esophagus2: trachea3:tracheal lungs4: rudimentary left lung4: right lung6: heart7: liver8 stomach9: air sac10: gallbladder11: pancreas12: spleen13: intestine14: testicles15: kidneys 
Anatomy of a snake.file info
  1. esophagus
  2. trachea
  3. tracheal lungs
  4. rudimentary left lung
  5. right lung
  6. heart
  7. liver
  8. stomach
  9. air sac
  10. gallbladder
  11. pancreas
  12. spleen
  13. intestine
  14. testicles
  15. kidneys

Snakes and other non-archosaur (crocodilians, dinosaurs + birds and allies) reptiles have a three-chambered heart that controls the circulatory system via the left and right atrium, and one ventricle.[65] Internally, the ventricle is divided into three interconnected cavities: the cavum arteriosum, the cavum pulmonale, and the cavum venosum.[66] The cavum venosum receives deoxygenated blood from the right atrium and the cavum arteriosum receives oxygenated blood from the left atrium. Located beneath the cavum venosum is the cavum pulmonale, which pumps blood to the pulmonary trunk.[67]

The snake's heart is encased in a sac, called the pericardium, located at the bifurcation of the bronchi. The heart is able to move around, owing to the lack of a diaphragm; this adjustment protects the heart from potential damage when large ingested prey is passed through the esophagus. The spleen is attached to the gall bladder and pancreas and filters the blood. The thymus, located in fatty tissue above the heart, is responsible for the generation of immune cells in the blood. The cardiovascular system of snakes is unique for the presence of a renal portal system in which the blood from the snake's tail passes through the kidneys before returning to the heart.[68]

The vestigial left lung is often small or sometimes even absent, as snakes' tubular bodies require all of their organs to be long and thin.[68] In the majority of species, only one lung is functional. This lung contains a vascularized anterior portion and a posterior portion that does not function in gas exchange.[68] This 'saccular lung' is used for hydrostatic purposes to adjust buoyancy in some aquatic snakes and its function remains unknown in terrestrial species.[68] Many organs that are paired, such as kidneys or reproductive organs, are staggered within the body, one located ahead of the other.[68]

Snakes have no lymph nodes.[68]

Venom

 
Innocuous milk snakes are often mistaken for coral snakes whose venom is deadly to humans.

Cobras, vipers, and closely related species use venom to immobilize, injure, or kill their prey. The venom is modified saliva, delivered through fangs.[17]: 243  The fangs of 'advanced' venomous snakes like viperids and elapids are hollow, allowing venom to be injected more effectively, and the fangs of rear-fanged snakes such as the boomslang simply have a groove on the posterior edge to channel venom into the wound. Snake venoms are often prey-specific, and their role in self-defense is secondary.[17]: 243 

Venom, like all salivary secretions, is a predigestant that initiates the breakdown of food into soluble compounds, facilitating proper digestion. Even nonvenomous snakebites (like any animal bite) cause tissue damage.[17]: 209 

Certain birds, mammals, and other snakes (such as kingsnakes) that prey on venomous snakes have developed resistance and even immunity to certain venoms.[17]: 243  Venomous snakes include three families of snakes, and do not constitute a formal taxonomic classification group.

The colloquial term "poisonous snake" is generally an incorrect label for snakes. A poison is inhaled or ingested, whereas venom produced by snakes is injected into its victim via fangs.[69] There are, however, two exceptions: Rhabdophis sequesters toxins from the toads it eats, then secretes them from nuchal glands to ward off predators; and a small unusual population of garter snakes in the US state of Oregon retains enough toxins in their livers from ingested newts to be effectively poisonous to small local predators (such as crows and foxes).[70]

Snake venoms are complex mixtures of proteins, and are stored in venom glands at the back of the head.[70] In all venomous snakes, these glands open through ducts into grooved or hollow teeth in the upper jaw.[17]: 243 [69] The proteins can potentially be a mix of neurotoxins (which attack the nervous system), hemotoxins (which attack the circulatory system), cytotoxins (which attack the cells directly), bungarotoxins (related to neurotoxins, but also directly affect muscle tissue), and many other toxins that affect the body in different ways.[69] Almost all snake venom contains hyaluronidase, an enzyme that ensures rapid diffusion of the venom.[17]: 243 

Venomous snakes that use hemotoxins usually have fangs in the front of their mouths, making it easier for them to inject the venom into their victims.[69] Some snakes that use neurotoxins (such as the mangrove snake) have fangs in the back of their mouths, with the fangs curled backwards.[71] This makes it difficult both for the snake to use its venom and for scientists to milk them.[69] Elapids, however, such as cobras and kraits are proteroglyphous—they possess hollow fangs that cannot be erected toward the front of their mouths, and cannot "stab" like a viper. They must actually bite the victim.[17]: 242 

It has been suggested that all snakes may be venomous to a certain degree, with harmless snakes having weak venom and no fangs.[72] According to this theory, most snakes that are labelled "nonvenomous" would be considered harmless because they either lack a venom delivery method or are incapable of delivering enough to endanger a human. The theory postulates that snakes may have evolved from a common lizard ancestor that was venomous, and also that venomous lizards like the gila monster, beaded lizard, monitor lizards, and the now-extinct mosasaurs, may have derived from this same common ancestor. They share this "venom clade" with various other saurian species.

Venomous snakes are classified in two taxonomic families:

There is a third family containing the opistoglyphous (rear-fanged) snakes (as well as the majority of other snake species):

Reproduction

Although a wide range of reproductive modes are used by snakes, all employ internal fertilization. This is accomplished by means of paired, forked hemipenes, which are stored, inverted, in the male's tail.[73] The hemipenes are often grooved, hooked, or spined—designed to grip the walls of the female's cloaca.[74][73] The clitoris of the female snake consists of two structures located between the cloaca and the scent glands.[75]

Most species of snakes lay eggs which they abandon shortly after laying. However, a few species (such as the king cobra) construct nests and stay in the vicinity of the hatchlings after incubation.[73] Most pythons coil around their egg-clutches and remain with them until they hatch.[76] A female python will not leave the eggs, except to occasionally bask in the sun or drink water. She will even "shiver" to generate heat to incubate the eggs.[76]

Some species of snake are ovoviviparous and retain the eggs within their bodies until they are almost ready to hatch.[77][78] Several species of snake, such as the boa constrictor and green anaconda, are fully viviparous, nourishing their young through a placenta as well as a yolk sac; this is highly unusual among reptiles, and normally found in requiem sharks or placental mammals.[77][78] Retention of eggs and live birth are most often associated with colder environments.[73][78]

 
The garter snake has been studied for sexual selection.

Sexual selection in snakes is demonstrated by the 3,000 species that each use different tactics in acquiring mates.[79] Ritual combat between males for the females they want to mate with includes topping, a behavior exhibited by most viperids in which one male will twist around the vertically elevated fore body of its opponent and force it downward. It is common for neck-biting to occur while the snakes are entwined.[80]

Facultative parthenogenesis

Parthenogenesis is a natural form of reproduction in which growth and development of embryos occur without fertilization. Agkistrodon contortrix (copperhead) and Agkistrodon piscivorus (cottonmouth) can reproduce by facultative parthenogenesis, meaning that they are capable of switching from a sexual mode of reproduction to an asexual mode.[81] The most likely type of parthenogenesis to occur is automixis with terminal fusion, a process in which two terminal products from the same meiosis fuse to form a diploid zygote. This process leads to genome-wide homozygosity, expression of deleterious recessive alleles, and often to developmental abnormalities. Both captive-born and wild-born copperheads and cottonmouths appear to be capable of this form of parthenogenesis.[81]

Reproduction in squamate reptiles is almost exclusively sexual. Males ordinarily have a ZZ pair of sex-determining chromosomes, and females a ZW pair. However, the Colombian Rainbow boa (Epicrates maurus) can also reproduce by facultative parthenogenesis, resulting in production of WW female progeny.[82] The WW females are likely produced by terminal automixis.

Embryonic Development

 
Mouse embryo 12 day post fertilization side by side with Corn Snake embryo 2 days post ovo-positioning.[83]

Snake embryonic development initially follows similar steps as any vertebrate embryo. The snake embryo begins as a zygote, undergoes rapid cell division, forms a germinal disc, also called a blastodisc, then undergoes gastrulation, neurulation, and organogenesis.[84] Cell division and proliferation continues until an early snake embryo develops and the typical body shape of a snake can be observed.[84] Multiple features differentiate the embryologic development of snakes from other vertebrates, two significant factors being the elongation of the body and the lack of limb development.

 
Diagram illustrating differential somite size due to difference in somitogenesis clock oscillation.[83]

The elongation in snake body is accompanied by a significant increase in vertebra count (mice have 60 vertebrae, whereas snakes may have over 300).[83] This increase in vertebrae is due to an increase in somites during embryogenesis, leading to an increased number of vertebrae which develop.[83] Somites are formed at the presomitic mesoderm due to a set of oscillatory genes that direct the somitogenesis clock. The snake somitogenesis clock operates at a frequency 4 times that of a mouse (after correction for developmental time), creating more somites, and therefore creating more vertebrae.[83] This difference in clock speed is believed to be caused by differences in Lunatic fringe gene expression, a gene involved in the somitogenesis clock.[85]

There is ample literature focusing on the limb development/lack of development in snake embryos and the gene expression associated with the different stages. In basal snakes, such as the python, embryos in early development exhibit a hind limb bud that develops with some cartilage and a cartilaginous pelvic element, however this degenerates before hatching.[86] This presence of vestigial development suggests that some snakes are still undergoing hind limb reduction before they are eliminated.[87] There is no evidence in basal snakes of forelimb rudiments and no examples of snake forelimb bud initiation in embryo, so little is known regarding the loss of this trait.[87] Recent studies suggests that hind limb reduction could be due to mutations in enhancers for the SSH gene,[87] however other studies suggested that mutations within the Hox Genes or their enhancers could contribute to snake limblessness.[83] Since multiple studies have found evidence suggesting different genes played a role in the loss of limbs in snakes, it is likely that multiple gene mutations had an additive effect leading to limb loss in snakes[88]

Behavior

Winter dormancy

 
Snake coiled on a stick in Oklahoma. It was brumating in a large pile of wood chips, found by this landscaper after he bulldozed the pile in late autumn 2018.

In regions where winters are too cold for snakes to tolerate while remaining active, local species will enter a period of brumation. Unlike hibernation, in which the dormant mammals are actually asleep, brumating reptiles are awake but inactive. Individual snakes may brumate in burrows, under rock piles, or inside fallen trees, or large numbers of snakes may clump together in hibernacula.

Feeding and diet

 

All snakes are strictly carnivorous, preying on small animals including lizards, frogs, other snakes, small mammals, birds, eggs, fish, snails, worms, and insects.[17]: 81 [18][89] Snakes cannot bite or tear their food to pieces so must swallow their prey whole. The eating habits of a snake are largely influenced by body size; smaller snakes eat smaller prey. Juvenile pythons might start out feeding on lizards or mice and graduate to small deer or antelope as an adult, for example.

The snake's jaw is a complex structure. Contrary to the popular belief that snakes can dislocate their jaws, they have an extremely flexible lower jaw, the two halves of which are not rigidly attached, and numerous other joints in the skull, which allow the snake to open its mouth wide enough to swallow prey whole, even if it is larger in diameter than the snake itself.[89] For example, the African egg-eating snake has flexible jaws adapted for eating eggs much larger than the diameter of its head.[17]: 81  This snake has no teeth, but does have bony protrusions on the inside edge of its spine, which it uses to break the shell when eating eggs.[17]: 81 

 
Carpet python constricting and consuming a chicken

The majority of snakes eat a variety of prey animals, but there is some specialization in certain species. King cobras and the Australian bandy-bandy consume other snakes. Species of the family Pareidae have more teeth on the right side of their mouths than on the left, as they mostly prey on snails and the shells usually spiral clockwise.[17]: 184 [90][91]

Some snakes have a venomous bite, which they use to kill their prey before eating it.[89][92] Other snakes kill their prey by constriction,[89] while some swallow their prey when it is still alive.[17]: 81 [89]

After eating, snakes become dormant to allow the process of digestion to take place;[57] this is an intense activity, especially after consumption of large prey. In species that feed only sporadically, the entire intestine enters a reduced state between meals to conserve energy. The digestive system is then 'up-regulated' to full capacity within 48 hours of prey consumption. Being ectothermic ("cold-blooded"), the surrounding temperature plays an important role in the digestion process. The ideal temperature for snakes to digest food is 30 °C (86 °F). There is a huge amount of metabolic energy involved in a snake's digestion, for example the surface body temperature of the South American rattlesnake (Crotalus durissus) increases by as much as 1.2 °C (2.2 °F) during the digestive process.[93] If a snake is disturbed after having eaten recently, it will often regurgitate its prey to be able to escape the perceived threat. When undisturbed, the digestive process is highly efficient; the snake's digestive enzymes dissolve and absorb everything but the prey's hair (or feathers) and claws, which are excreted along with waste.

Hooding and spitting

Hooding (expansion of the neck area) is a visual deterrent, mostly seen in cobras (elapids), and is primarily controlled by rib muscles.[94] Hooding can be accompanied by spitting venom towards the threatening object,[95] and producing a specialized sound; hissing. Studies on captive cobras showed that 13 to 22% of the body length is raised during hooding.[96]

Locomotion

The lack of limbs does not impede the movement of snakes. They have developed several different modes of locomotion to deal with particular environments. Unlike the gaits of limbed animals, which form a continuum, each mode of snake locomotion is discrete and distinct from the others; transitions between modes are abrupt.[97][98]

Lateral undulation

 
Crawling prints of a snake

Lateral undulation is the sole mode of aquatic locomotion, and the most common mode of terrestrial locomotion.[98] In this mode, the body of the snake alternately flexes to the left and right, resulting in a series of rearward-moving "waves".[97] While this movement appears rapid, snakes have rarely been documented moving faster than two body-lengths per second, often much less.[99] This mode of movement has the same net cost of transport (calories burned per meter moved) as running in lizards of the same mass.[100]

Terrestrial lateral undulation is the most common mode of terrestrial locomotion for most snake species.[97] In this mode, the posteriorly moving waves push against contact points in the environment, such as rocks, twigs, irregularities in the soil, etc.[97] Each of these environmental objects, in turn, generates a reaction force directed forward and towards the midline of the snake, resulting in forward thrust while the lateral components cancel out.[101] The speed of this movement depends upon the density of push-points in the environment, with a medium density of about 8[clarification needed] along the snake's length being ideal.[99] The wave speed is precisely the same as the snake speed, and as a result, every point on the snake's body follows the path of the point ahead of it, allowing snakes to move through very dense vegetation and small openings.[101]

When swimming, the waves become larger as they move down the snake's body, and the wave travels backwards faster than the snake moves forwards.[102] Thrust is generated by pushing their body against the water, resulting in the observed slip. In spite of overall similarities, studies show that the pattern of muscle activation is different in aquatic versus terrestrial lateral undulation, which justifies calling them separate modes.[103] All snakes can laterally undulate forward (with backward-moving waves), but only sea snakes have been observed reversing the motion (moving backwards with forward-moving waves).[97]

Sidewinding

 
A neonate sidewinder rattlesnake (Crotalus cerastes) sidewinding

Most often employed by colubroid snakes (colubrids, elapids, and vipers) when the snake must move in an environment that lacks irregularities to push against (rendering lateral undulation impossible), such as a slick mud flat, or a sand dune, sidewinding is a modified form of lateral undulation in which all of the body segments oriented in one direction remain in contact with the ground, while the other segments are lifted up, resulting in a peculiar "rolling" motion.[104][105] This mode of locomotion overcomes the slippery nature of sand or mud by pushing off with only static portions on the body, thereby minimizing slipping.[104] The static nature of the contact points can be shown from the tracks of a sidewinding snake, which show each belly scale imprint, without any smearing. This mode of locomotion has very low caloric cost, less than 13 of the cost for a lizard to move the same distance.[100] Contrary to popular belief, there is no evidence that sidewinding is associated with the sand being hot.[104]

Concertina

When push-points are absent, but there is not enough space to use sidewinding because of lateral constraints, such as in tunnels, snakes rely on concertina locomotion.[97][105] In this mode, the snake braces the posterior portion of its body against the tunnel wall while the front of the snake extends and straightens.[104] The front portion then flexes and forms an anchor point, and the posterior is straightened and pulled forwards. This mode of locomotion is slow and very demanding, up to seven times the cost of laterally undulating over the same distance.[100] This high cost is due to the repeated stops and starts of portions of the body as well as the necessity of using active muscular effort to brace against the tunnel walls.

Arboreal

 
Golden tree snake climbing a flower

The movement of snakes in arboreal habitats has only recently been studied.[106] While on tree branches, snakes use several modes of locomotion depending on species and bark texture.[106] In general, snakes will use a modified form of concertina locomotion on smooth branches, but will laterally undulate if contact points are available.[106] Snakes move faster on small branches and when contact points are present, in contrast to limbed animals, which do better on large branches with little 'clutter'.[106]

Gliding snakes (Chrysopelea) of Southeast Asia launch themselves from branch tips, spreading their ribs and laterally undulating as they glide between trees.[104][107][108] These snakes can perform a controlled glide for hundreds of feet depending upon launch altitude and can even turn in midair.[104][107]

Rectilinear

The slowest mode of snake locomotion is rectilinear locomotion, which is also the only one where the snake does not need to bend its body laterally, though it may do so when turning.[109] In this mode, the belly scales are lifted and pulled forward before being placed down and the body pulled over them. Waves of movement and stasis pass posteriorly, resulting in a series of ripples in the skin.[109] The ribs of the snake do not move in this mode of locomotion and this method is most often used by large pythons, boas, and vipers when stalking prey across open ground as the snake's movements are subtle and harder to detect by their prey in this manner.[104]

Interactions with humans

 
Most common symptoms of any kind of snake bite envenomation.[110][111] Furthermore, there is vast variation in symptoms between bites from different types of snakes.[110]

Bite

 
Vipera berus, one fang in glove with a small venom stain, the other still in place

Snakes do not ordinarily prey on humans. Unless startled or injured, most snakes prefer to avoid contact and will not attack humans. With the exception of large constrictors, nonvenomous snakes are not a threat to humans. The bite of a nonvenomous snake is usually harmless; their teeth are not adapted for tearing or inflicting a deep puncture wound, but rather grabbing and holding. Although the possibility of infection and tissue damage is present in the bite of a nonvenomous snake, venomous snakes present far greater hazard to humans.[17]: 209  The World Health Organization (WHO) lists snakebite under the "other neglected conditions" category.[112]

Documented deaths resulting from snake bites are uncommon. Nonfatal bites from venomous snakes may result in the need for amputation of a limb or part thereof. Of the roughly 725 species of venomous snakes worldwide, only 250 are able to kill a human with one bite. Australia averages only one fatal snake bite per year. In India, 250,000 snakebites are recorded in a single year, with as many as 50,000 recorded initial deaths.[113] The WHO estimates that on the order of 100,000 people die each year as a result of snake bites, and around three times as many amputations and other permanent disabilities are caused by snakebites annually.[114]

The treatment for a snakebite is as variable as the bite itself. The most common and effective method is through antivenom (or antivenin), a serum made from the venom of the snake. Some antivenom is species-specific (monovalent) while some is made for use with multiple species in mind (polyvalent). In the United States for example, all species of venomous snakes are pit vipers, with the exception of the coral snake. To produce antivenom, a mixture of the venoms of the different species of rattlesnakes, copperheads, and cottonmouths is injected into the body of a horse in ever-increasing dosages until the horse is immunized. Blood is then extracted from the immunized horse. The serum is separated and further purified and freeze-dried. It is reconstituted with sterile water and becomes antivenom. For this reason, people who are allergic to horses are more likely to have an allergic reaction to antivenom.[115] Antivenom for the more dangerous species (such as mambas, taipans, and cobras) is made in a similar manner in India, South Africa, and Australia, although these antivenoms are species-specific.

Snake charmers

 
The Indian cobra is the most common subject of snake charmings.

In some parts of the world, especially in India, snake charming is a roadside show performed by a charmer. In such a show, the snake charmer carries a basket containing a snake that he seemingly charms by playing tunes with his flutelike musical instrument, to which the snake responds.[116] The snake is in fact responding to the movement of the flute, not the sound it makes, as snakes lack external ears (though they do have internal ears).[116]

The Wildlife Protection Act of 1972 in India technically prohibits snake charming on the grounds of reducing animal cruelty. Other types of snake charmers use a snake and mongoose show, where the two animals have a mock fight; however, this is not very common, as the animals may be seriously injured or killed. Snake charming as a profession is dying out in India because of competition from modern forms of entertainment and environment laws proscribing the practice. Many Indians have never seen snake charming and it is becoming a folktale of the past.[116][117][118][119]

Trapping

The Irulas tribe of Andhra Pradesh and Tamil Nadu in India have been hunter-gatherers in the hot, dry plains forests, and have practiced the art of snake catching for generations. They have a vast knowledge of snakes in the field. They generally catch the snakes with the help of a simple stick. Earlier, the Irulas caught thousands of snakes for the snake-skin industry. After the complete ban of the snake-skin industry in India and protection of all snakes under the Indian Wildlife (Protection) Act 1972, they formed the Irula Snake Catcher's Cooperative and switched to catching snakes for removal of venom, releasing them in the wild after four extractions. The venom so collected is used for producing life-saving antivenom, biomedical research and for other medicinal products.[120] The Irulas are also known to eat some of the snakes they catch and are very useful in rat extermination in the villages.

Despite the existence of snake charmers, there have also been professional snake catchers or wranglers. Modern-day snake trapping involves a herpetologist using a long stick with a V- shaped end. Some television show hosts, like Bill Haast, Austin Stevens, Steve Irwin, and Jeff Corwin, prefer to catch them using bare hands.

Consumption

 
A "海豹蛇" ("sea-leopard snake", supposedly Enhydris bocourti) occupies a place of honor among the live delicacies on display outside a Guangzhou restaurant.

Although snakes are not commonly thought of as food, their consumption is acceptable in some cultures and may even be considered a delicacy. Snake soup is popular in Cantonese cuisine, consumed by locals in the autumn to warm their bodies. Western cultures document the consumption of snakes only under extreme circumstances of hunger,[121] with the exception of cooked rattlesnake meat, which is commonly consumed in Texas[122] and parts of the Midwestern United States.

 
Snake meat, in a Taipei restaurant

In Asian countries such as China, Taiwan, Thailand, Indonesia, Vietnam, and Cambodia, drinking the blood of a snake—particularly the cobra—is believed to increase sexual virility.[123] When possible, the blood is drained while the cobra is still alive, and it is usually mixed with some form of liquor to improve the taste.[123]

The use of snakes in alcohol is accepted in some Asian countries. In such cases, one or more snakes are left to steep in a jar or container of liquor, as this is claimed to make the liquor stronger (as well as more expensive). One example of this is the Habu snake, which is sometimes placed in the Okinawan liqueur Habushu (ブ酒), also known as "Habu Sake".[124]

Snake wine (蛇酒) is an alcoholic beverage produced by infusing whole snakes in rice wine or grain alcohol. First recorded as being consumed in China during the Western Zhou dynasty, this drink is considered an important curative and is believed to reinvigorate a person according to traditional Chinese medicine.[125]

Pets

In the Western world, some snakes are kept as pets, especially docile species such as the ball python and corn snake. To meet the demand, a captive breeding industry has developed. Snakes bred in captivity are considered preferable to specimens caught in the wild and tend to make better pets.[126] Compared with more traditional types of companion animal, snakes can be very low-maintenance pets; they require minimal space, as most common species do not exceed 5 feet (1.5 m) in length, and can be fed relatively infrequently—usually once every five to 14 days. Certain snakes have a lifespan of more than 40 years if given proper care.

Symbolism

 
The reverse side of the throne of Pharaoh Tutankhamun with four golden uraeus cobra figures. Gold with lapis lazuli; Valley of the Kings, Thebes (1347–37 BCE).
 
Snakes composing a bronze kerykeion from the mythical Longanus river in Sicily
 
Imperial Japan depicted as an evil snake in a WWII propaganda poster
 
"The Smoking Snake", insignia of the Brazilian Expeditionary Force in WWII
 
A common adder in the coat of arms of the Kyyjärvi municipality

In ancient Mesopotamia, Nirah, the messenger god of Ištaran, was represented as a serpent on kudurrus, or boundary stones.[127] Representations of two intertwined serpents are common in Sumerian art and Neo-Sumerian artwork[127] and still appear sporadically on cylinder seals and amulets until as late as the thirteenth century BC.[127] The horned viper (Cerastes cerastes) appears in Kassite and Neo-Assyrian kudurrus[127] and is invoked in Assyrian texts as a magical protective entity.[127] A dragon-like creature with horns, the body and neck of a snake, the forelegs of a lion, and the hind-legs of a bird appears in Mesopotamian art from the Akkadian Period until the Hellenistic Period (323 BC–31 BC).[127] This creature, known in Akkadian as the mušḫuššu, meaning "furious serpent", was used as a symbol for particular deities and also as a general protective emblem.[127] It seems to have originally been the attendant of the Underworld god Ninazu,[127] but later became the attendant to the Hurrian storm-god Tishpak, as well as, later, Ninazu's son Ningishzida, the Babylonian national god Marduk, the scribal god Nabu, and the Assyrian national god Ashur.[127]

In Egyptian history, the snake occupies a primary role with the Nile cobra adorning the crown of the pharaoh in ancient times. It was worshipped as one of the gods and was also used for sinister purposes: murder of an adversary and ritual suicide (Cleopatra).[citation needed] The ouroboros was a well-known ancient Egyptian symbol of a serpent swallowing its own tail.[128] The precursor to the ouroboros was the "Many-Faced",[128] a serpent with five heads, who, according to the Amduat, the oldest surviving Book of the Afterlife, was said to coil around the corpse of the sun god Ra protectively.[128] The earliest surviving depiction of a "true" ouroboros comes from the gilded shrines in the tomb of Tutankhamun.[128] In the early centuries AD, the ouroboros was adopted as a symbol by Gnostic Christians[128] and chapter 136 of the Pistis Sophia, an early Gnostic text, describes "a great dragon whose tail is in its mouth".[128] In medieval alchemy, the ouroboros became a typical western dragon with wings, legs, and a tail.[128]

In the Bible, King Nahash of Ammon, whose name means "Snake", is depicted very negatively, as a particularly cruel and despicable enemy of the ancient Hebrews.

 
Medusa (1597) by the Italian artist Caravaggio

The ancient Greeks used the Gorgoneion, a depiction of a hideous face with serpents for hair, as an apotropaic symbol to ward off evil.[129] In a Greek myth described by Pseudo-Apollodorus in his Bibliotheca, Medusa was a Gorgon with serpents for hair whose gaze turned all those who looked at her to stone and was slain by the hero Perseus.[130][131][132] In the Roman poet Ovid's Metamorphoses, Medusa is said to have once been a beautiful priestess of Athena, whom Athena turned into a serpent-haired monster after she was raped by the god Poseidon in Athena's temple.[133] In another myth referenced by the Boeotian poet Hesiod and described in detail by Pseudo-Apollodorus, the hero Heracles is said to have slain the Lernaean Hydra,[134][135] a multiple-headed serpent which dwelt in the swamps of Lerna.[134][135]

The legendary account of the foundation of Thebes mentioned a monster snake guarding the spring from which the new settlement was to draw its water. In fighting and killing the snake, the companions of the founder Cadmus all perished – leading to the term "Cadmean victory" (i.e. a victory involving one's own ruin).[citation needed]

 
Rod of Asclepius, in which the snake, through ecdysis, symbolizes healing

Three medical symbols involving snakes that are still used today are Bowl of Hygieia, symbolizing pharmacy, and the Caduceus and Rod of Asclepius, which are symbols denoting medicine in general.[56]

One of the etymologies proposed for the common female first name Linda is that it might derive from Old German Lindi or Linda, meaning a serpent.

India is often called the land of snakes and is steeped in tradition regarding snakes.[136] Snakes are worshipped as gods even today with many women pouring milk on snake pits (despite snakes' aversion for milk).[136] The cobra is seen on the neck of Shiva and Vishnu is depicted often as sleeping on a seven-headed snake or within the coils of a serpent.[137] There are also several temples in India solely for cobras sometimes called Nagraj (King of Snakes) and it is believed that snakes are symbols of fertility. There is a Hindu festival called Nag Panchami each year on which day snakes are venerated and prayed to. See also Nāga.[citation needed]

In India there is another mythology about snakes. Commonly known in Hindi as "Ichchhadhari" snakes. Such snakes can take the form of any living creature, but prefer human form. These mythical snakes possess a valuable gem called "Mani", which is more brilliant than diamond. There are many stories in India about greedy people trying to possess this gem and ending up getting killed.[citation needed]

The snake is one of the 12 celestial animals of Chinese zodiac, in the Chinese calendar.[138]

Many ancient Peruvian cultures worshipped nature.[139] They emphasized animals and often depicted snakes in their art.[140]

Religion

Snakes are used in Hinduism as a part of ritual worship.[141] In the annual Nag Panchami festival, participants worship either live cobras or images of Nāgas. Lord Shiva is depicted in most images with a snake coiled around his neck.[142] Puranic literature includes various stories associated with snakes, for example Shesha is said to hold all the planets of the Universe on his hoods and to constantly sing the glories of Vishnu from all his mouths. Other notable snakes in Hinduism are Vasuki, Takshaka, Karkotaka, and Pingala. The term Nāga is used to refer to entities that take the form of large snakes in Hinduism and Buddhism.[143]

Snakes have been widely revered in many cultures, such as in ancient Greece where the serpent was seen as a healer.[144] Asclepius carried a serpent wound around his wand, a symbol seen today on many ambulances.[145] In Judaism, the snake of brass is also a symbol of healing, of one's life being saved from imminent death.[146]

In religious terms, the snake and jaguar were arguably the most important animals in ancient Mesoamerica.[147] "In states of ecstasy, lords dance a serpent dance; great descending snakes adorn and support buildings from Chichen Itza to Tenochtitlan, and the Nahuatl word coatl meaning serpent or twin, forms part of primary deities such as Mixcoatl, Quetzalcoatl, and Coatlicue."[148] In the Maya and Aztec calendars, the fifth day of the week was known as Snake Day.

In some parts of Christianity, the redemptive work of Jesus Christ is compared to saving one's life through beholding the Nehushtan (serpent of brass).[149] Snake handlers use snakes as an integral part of church worship, to demonstrate their faith in divine protection. However, more commonly in Christianity, the serpent has been depicted as a representative of evil and sly plotting, as seen in the description in Genesis of a snake tempting Eve in the Garden of Eden.[150] Saint Patrick is purported to have expelled all snakes from Ireland while converting the country to Christianity in the 5th century, thus explaining the absence of snakes there.[151]

In Christianity and Judaism, the snake makes its infamous appearance in the first book of the Bible when a serpent appears before Adam and Eve and tempts them with the forbidden fruit from the Tree of Knowledge.[150] The snake returns in the Book of Exodus when Moses turns his staff into a snake as a sign of God's power, and later when he makes the Nehushtan, a bronze snake on a pole that when looked at cured the people of bites from the snakes that plagued them in the desert. The serpent makes its final appearance symbolizing Satan in the Book of Revelation: "And he laid hold on the dragon the old serpent, which is the devil and Satan, and bound him for a thousand years."[152]

In Neo-Paganism and Wicca, the snake is seen as a symbol of wisdom and knowledge.[153] Additionally, snakes are sometimes associated with Hecate, the Greek goddess of witchcraft.[154]

 
Ballcourt marker from the Postclassic site of Mixco Viejo in Guatemala. This sculpture depicts Kukulkan, jaws agape, with the head of a human warrior emerging from his maw.[155]

Medicine

Several compounds from snake venoms are being researched as potential treatments or preventatives for pain, cancers, arthritis, stroke, heart disease, hemophilia, and hypertension, and to control bleeding (e.g. during surgery).[156][157][158]

See also

References

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  144. ^ Tsoucalas, Gregory; Androutsos, George (2019). "Chapter 17 – Asclepius and the Snake as Toxicological Symbols in Ancient Greece and Rome". In Wexler, Philip (ed.). History of Toxicology and Environmental Health Series: Toxicology in Antiquity (Second ed.). Elsevier Inc. pp. 257–265. ISBN 978-0-12-815339-0. Retrieved 3 March 2021 – via ScienceDirect.
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  157. ^ Holland JS (February 2013). "The Bite That Heals". National Geographic.
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Further reading

External links

  • "Bibliography for "Serpentes"". Biodiversity Heritage Library.
  • "Serpentes". Integrated Taxonomic Information System.
  • . eNature. Archived from the original on 15 March 2008.
  • "Snakes of the Indian Subcontinent". Naturemagics Kerala Photo Gallery.
  • "Herpetology Database". Swedish Museum of Natural History.
  • BBC Nature: Snake news, and video clips from BBC programmes past and present.
  • Basics of snake taxonomy at Life is Short but Snakes are Long

snake, this, article, about, reptile, other, uses, disambiguation, elongated, limbless, carnivorous, reptiles, suborder, serpentes, ɜːr, like, other, squamates, snakes, ectothermic, amniote, vertebrates, covered, overlapping, scales, many, species, snakes, hav. This article is about the reptile For other uses see Snake disambiguation Snakes are elongated limbless carnivorous reptiles of the suborder Serpentes s ɜːr ˈ p ɛ n t iː z 2 Like all other squamates snakes are ectothermic amniote vertebrates covered in overlapping scales Many species of snakes have skulls with several more joints than their lizard ancestors enabling them to swallow prey much larger than their heads cranial kinesis To accommodate their narrow bodies snakes paired organs such as kidneys appear one in front of the other instead of side by side and most have only one functional lung Some species retain a pelvic girdle with a pair of vestigial claws on either side of the cloaca Lizards have evolved elongate bodies without limbs or with greatly reduced limbs about twenty five times independently via convergent evolution leading to many lineages of legless lizards 3 These resemble snakes but several common groups of legless lizards have eyelids and external ears which snakes lack although this rule is not universal see Amphisbaenia Dibamidae and Pygopodidae SnakesTemporal range Late Cretaceous Present 1 94 0 Ma PreꞒ Ꞓ O S D C P T J K Pg NScientific classificationKingdom AnimaliaPhylum ChordataClass ReptiliaOrder SquamataClade OphidiaSuborder SerpentesLinnaeus 1758InfraordersAlethinophidia Nopcsa 1923 Scolecophidia Cope 1864Approximate world distribution of snakes all speciesLiving snakes are found on every continent except Antarctica and on most smaller land masses exceptions include some large islands such as Ireland Iceland Greenland the Hawaiian archipelago and the islands of New Zealand as well as many small islands of the Atlantic and central Pacific oceans 4 Additionally sea snakes are widespread throughout the Indian and Pacific oceans Around thirty families are currently recognized comprising about 520 genera and about 3 900 species 5 They range in size from the tiny 10 4 cm long 4 1 in Barbados threadsnake 6 to the reticulated python of 6 95 meters 22 8 ft in length 7 The fossil species Titanoboa cerrejonensis was 12 8 meters 42 ft long 8 Snakes are thought to have evolved from either burrowing or aquatic lizards perhaps during the Jurassic period with the earliest known fossils dating to between 143 and 167 Ma ago 9 10 The diversity of modern snakes appeared during the Paleocene epoch c 66 to 56 Ma ago after the Cretaceous Paleogene extinction event The oldest preserved descriptions of snakes can be found in the Brooklyn Papyrus Most species of snake are nonvenomous and those that have venom use it primarily to kill and subdue prey rather than for self defense Some possess venom that is potent enough to cause painful injury or death to humans Nonvenomous snakes either swallow prey alive or kill by constriction Contents 1 Etymology 2 Evolution 2 1 Fossils 2 2 Genetic basis of snake evolution 3 Distribution 4 Taxonomy 4 1 Families 4 2 Legless lizards 5 Biology 5 1 Size 5 2 Perception 5 3 Skin 5 3 1 Molting 5 4 Skeleton 5 5 Internal organs 5 6 Venom 5 7 Reproduction 5 8 Facultative parthenogenesis 5 9 Embryonic Development 6 Behavior 6 1 Winter dormancy 6 2 Feeding and diet 6 3 Hooding and spitting 6 4 Locomotion 6 4 1 Lateral undulation 6 4 2 Sidewinding 6 4 3 Concertina 6 4 4 Arboreal 6 4 5 Rectilinear 7 Interactions with humans 7 1 Bite 7 2 Snake charmers 7 3 Trapping 7 4 Consumption 7 5 Pets 7 6 Symbolism 7 7 Religion 7 8 Medicine 8 See also 9 References 10 Further reading 11 External linksEtymologyThe English word snake comes from Old English snaca itself from Proto Germanic snak an cf Germanic Schnake ring snake Swedish snok grass snake from Proto Indo European root s neg o to crawl to creep which also gave sneak as well as Sanskrit naga snake 11 The word ousted adder as adder went on to narrow in meaning though in Old English naeddre was the general word for snake 12 The other term serpent is from French ultimately from Indo European serp to creep 13 which also gave Ancient Greek ἕrpw herpō I crawl EvolutionA phylogenetic overview of modern snakes Scolecophidia Leptotyphlopidae AnomalepididaeTyphlopidaeAlethinophidia Amerophidia AniliusTropidophiidaeAfrophidia Uropeltoidea Uropeltidae AnomochilusCylindrophisMacrostomata Pythonoidea PythonidaeXenopeltisLoxocemusCaenophidia AcrochordidaeXenodermidaePareidaeViperidaeHomalopsidaeColubridaeCyclocoridaeBuhomaElapidaePseudaspididaeProsymnidaePsammophiidaeAtractaspididaePseudoxyrhophiidaeLamprophiidaeBooidea BoidaeErycinaeCalabariaUngaliophiinaeSanziniaCandoiaNote the tree only indicates relationships not evolutionary branching times 14 The fossil record of snakes is relatively poor because snake skeletons are typically small and fragile making fossilization uncommon Fossils readily identifiable as snakes though often retaining hind limbs first appear in the fossil record during the Cretaceous period 15 The earliest known true snake fossils members of the crown group Serpentes come from the marine simoliophiids the oldest of which is the Late Cretaceous Cenomanian age Haasiophis terrasanctus 1 dated to between 112 and 94 million years old 16 Based on comparative anatomy there is consensus that snakes descended from lizards 17 11 18 Pythons and boas primitive groups among modern snakes have vestigial hind limbs tiny clawed digits known as anal spurs which are used to grasp during mating 17 11 19 The families Leptotyphlopidae and Typhlopidae also possess remnants of the pelvic girdle appearing as horny projections when visible Front limbs are nonexistent in all known snakes This is caused by the evolution of their Hox genes controlling limb morphogenesis The axial skeleton of the snakes common ancestor like most other tetrapods had regional specializations consisting of cervical neck thoracic chest lumbar lower back sacral pelvic and caudal tail vertebrae Early in snake evolution the Hox gene expression in the axial skeleton responsible for the development of the thorax became dominant As a result the vertebrae anterior to the hindlimb buds when present all have the same thoracic like identity except from the atlas axis and 1 3 neck vertebrae In other words most of a snake s skeleton is an extremely extended thorax Ribs are found exclusively on the thoracic vertebrae Neck lumbar and pelvic vertebrae are very reduced in number only 2 10 lumbar and pelvic vertebrae are present while only a short tail remains of the caudal vertebrae However the tail is still long enough to be of important use in many species and is modified in some aquatic and tree dwelling species Many modern snake groups originated during the Paleocene alongside the adaptive radiation of mammals following the extinction of non avian dinosaurs The expansion of grasslands in North America also led to an explosive radiation among snakes 20 Previously snakes were a minor component of the North American fauna but during the Miocene the number of species and their prevalence increased dramatically with the first appearances of vipers and elapids in North America and the significant diversification of Colubridae including the origin of many modern genera such as Nerodia Lampropeltis Pituophis and Pantherophis 20 Fossils There is fossil evidence to suggest that snakes may have evolved from burrowing lizards 21 during the Cretaceous Period 22 An early fossil snake relative Najash rionegrina was a two legged burrowing animal with a sacrum and was fully terrestrial 23 One extant analog of these putative ancestors is the earless monitor Lanthanotus of Borneo though it also is semiaquatic 24 Subterranean species evolved bodies streamlined for burrowing and eventually lost their limbs 24 According to this hypothesis features such as the transparent fused eyelids brille and loss of external ears evolved to cope with fossorial difficulties such as scratched corneas and dirt in the ears 22 24 Some primitive snakes are known to have possessed hindlimbs but their pelvic bones lacked a direct connection to the vertebrae These include fossil species like Haasiophis Pachyrhachis and Eupodophis which are slightly older than Najash 19 This hypothesis was strengthened in 2015 by the discovery of a 113 million year old fossil of a four legged snake in Brazil that has been named Tetrapodophis amplectus It has many snake like features is adapted for burrowing and its stomach indicates that it was preying on other animals 25 It is currently uncertain if Tetrapodophis is a snake or another species in the squamate order as a snake like body has independently evolved at least 26 times Tetrapodophis does not have distinctive snake features in its spine and skull 26 27 A study in 2021 places the animal in a group of extinct marine lizards from the Cretaceous period known as dolichosaurs and not directly related to snakes 28 An alternative hypothesis based on morphology suggests the ancestors of snakes were related to mosasaurs extinct aquatic reptiles from the Cretaceous forming the clade Pythonomorpha 18 According to this hypothesis the fused transparent eyelids of snakes are thought to have evolved to combat marine conditions corneal water loss through osmosis and the external ears were lost through disuse in an aquatic environment This ultimately led to an animal similar to today s sea snakes In the Late Cretaceous snakes recolonized land and continued to diversify into today s snakes Fossilized snake remains are known from early Late Cretaceous marine sediments which is consistent with this hypothesis particularly so as they are older than the terrestrial Najash rionegrina Similar skull structure reduced or absent limbs and other anatomical features found in both mosasaurs and snakes lead to a positive cladistical correlation although some of these features are shared with varanids citation needed Genetic studies in recent years have indicated snakes are not as closely related to monitor lizards as was once believed and therefore not to mosasaurs the proposed ancestor in the aquatic scenario of their evolution However more evidence links mosasaurs to snakes than to varanids Fragmented remains found from the Jurassic and Early Cretaceous indicate deeper fossil records for these groups which may potentially refute either hypothesis 29 30 Tetrapodophis Eupodophis descouensi Eupodophis descouensi Eupodophis descouensi hind legGenetic basis of snake evolution Main article Limb development Both fossils and phylogenetic studies demonstrate that snakes evolved from lizards hence the question became which genetic changes led to limb loss in the snake ancestor Limb loss is actually very common in extant reptiles and has happened dozens of times within skinks anguids and other lizards 31 In 2016 two studies reported that limb loss in snakes is associated with DNA mutations in the Zone of Polarizing Activity Regulatory Sequence ZRS a regulatory region of the sonic hedgehog gene which is critically required for limb development More advanced snakes have no remnants of limbs but basal snakes such as pythons and boas do have traces of highly reduced vestigial hind limbs Python embryos even have fully developed hind limb buds but their later development is stopped by the DNA mutations in the ZRS 32 33 34 35 Distribution Approximate world distribution of snakes There are about 3 900 species of snakes 36 ranging as far northward as the Arctic Circle in Scandinavia and southward through Australia 18 Snakes can be found on every continent except Antarctica as well as in the sea and as high as 16 000 feet 4 900 m in the Himalayan Mountains of Asia 18 37 143 There are numerous islands from which snakes are absent such as Ireland Iceland and New Zealand 4 37 although New Zealand s waters are infrequently visited by the yellow bellied sea snake and the banded sea krait 38 TaxonomySee also List of snake genera All modern snakes are grouped within the suborder Serpentes in Linnean taxonomy part of the order Squamata though their precise placement within squamates remains controversial 39 The two infraorders of Serpentes are Alethinophidia and Scolecophidia 39 This separation is based on morphological characteristics and mitochondrial DNA sequence similarity Alethinophidia is sometimes split into Henophidia and Caenophidia with the latter consisting of colubroid snakes colubrids vipers elapids hydrophiids and atractaspids and acrochordids while the other alethinophidian families comprise Henophidia 40 While not extant today the Madtsoiidae a family of giant primitive python like snakes was around until 50 000 years ago in Australia represented by genera such as Wonambi There are numerous debates in the systematics within the group For instance many sources classify Boidae and Pythonidae as one family while some keep the Elapidae and Hydrophiidae sea snakes separate for practical reasons despite their extremely close relation Recent molecular studies support the monophyly of the clades of modern snakes scolecophidians typhlopids anomalepidids alethinophidians core alethinophidians uropeltids Cylindrophis Anomochilus uropeltines macrostomatans booids boids pythonids and caenophidians 14 Families Infraorder Alethinophidia 25 familiesFamily 5 Taxon author 5 Genera 5 Species 5 Common name Geographic range 41 Acrochordidae Bonaparte 1831 1 3 Wart snakes Western India and Sri Lanka through tropical Southeast Asia to the Philippines south through the Indonesian Malaysian island group to Timor east through New Guinea to the northern coast of Australia to Mussau Island the Bismarck Archipelago and Guadalcanal Island in the Solomon Islands Aniliidae Stejneger 1907 1 1 False coral snake Tropical South America Anomochilidae Cundall Wallach 1993 1 3 Dwarf pipe snakes West Malaysia and on the Indonesian island of Sumatra Atractaspididae Gunther 1858 12 72 Burrowing asps Africa and the Middle EastBoidae Gray 1825 14 61 Boas Northern Central and South America the Caribbean southeastern Europe and Asia Minor Northern Central and East Africa Madagascar and Reunion Island the Arabian Peninsula Central and southwestern Asia India and Sri Lanka the Moluccas and New Guinea through to Melanesia and Samoa Bolyeriidae Hoffstetter 1946 2 2 Splitjaw snakes Mauritius Colubridae Oppel 1811 258 5 2055 5 Typical snakes Widespread on all continents except Antarctica 42 Cyclocoridae Weinell amp Brown 2017 5 8 Cyclocorids The PhilippinesCylindrophiidae Fitzinger 1843 1 14 Asian pipe snakes Sri Lanka east through Myanmar Thailand Cambodia Vietnam and the Malay Archipelago to as far east as Aru Islands off the southwestern coast of New Guinea Also found in southern China Fujian Hong Kong and on Hainan Island and in Laos Elapidae Boie 1827 55 389 Elapids On land worldwide in tropical and subtropical regions except in Europe Sea snakes occur in the Indian Ocean and the Pacific 43 Homalopsidae Bonaparte 1845 28 53 Homalopsids Southeastern Asia and northern Australia Lamprophiidae Fitzinger 1843 16 89 Lamprophiids formerly included Atracaspididae Psammophiidae and several other families Africa including the Seychelles Loxocemidae Cope 1861 1 1 Mexican burrowing snake Along the Pacific versant from Mexico south to Costa Rica Pareidae Romer 1956 3 20 Snail eating snakes Southeast Asia and islands on the Sunda Shelf Sumatra Borneo Java and their surrounding smaller islands Prosymnidae Kelly Barker Villet amp Broadley 2009 1 16 Shovel snout snakes Subsaharan AfricaPsammophiidae Bourgeois 1968 8 55 Psammophiids Africa including Madagascar Asia and southern EuropePseudaspididae Cope 1893 3 4 Pseudaspidids Mostly Subsaharan Africa two species in Southeast AsiaPseudoxyrhophiidae Dowling 1975 22 89 Pseudoxyrhophiids Mostly Madagascar and the Comoros 5 species in subsaharan Africa 1 in SocotraPythonidae Fitzinger 1826 8 40 Pythons Subsaharan Africa India Myanmar southern China Southeast Asia and from the Philippines southeast through Indonesia to New Guinea and Australia Tropidophiidae Brongersma 1951 2 34 Dwarf boas West Indies also Panama and northwestern South America as well as in northwestern and southeastern Brazil Uropeltidae Muller 1832 8 55 Shield tailed snakes Southern India and Sri Lanka Viperidae Oppel 1811 35 341 Vipers The Americas Africa and Eurasia east to Wallace s Line Xenodermidae Cope 1900 6 18 Dragon amp odd scaled snakes Southern and southeastern Asia and islands on the Sunda Shelf Sumatra Borneo Java and their surrounding smaller islands Xenopeltidae Bonaparte 1845 1 2 Sunbeam snakes Southeast Asia from the Andaman and Nicobar Islands east through Myanmar to southern China Thailand Laos Cambodia Vietnam the Malay Peninsula and the East Indies to Sulawesi as well as the Philippines Xenophidiidae Wallach amp Gunther 1998 1 2 Spine jawed snakes Borneo amp peninsular Malaysia Infraorder Scolecophidia 5 familiesFamily 5 Taxon author 5 Genera 5 Species 5 Common name Geographic range 41 Anomalepidae Taylor 1939 4 18 Primitive blind snakes From southern Central America to northwestern South America Disjunct populations in northeastern and southeastern South America Gerrhopilidae Vidal Wynn Donnellan and Hedges 2010 2 18 Indo Malayan blindsnakes Southern amp southeastern Asia including Sri Lanka the Philippines and New Guinea Leptotyphlopidae Stejneger 1892 13 139 Slender blind snakes Africa western Asia from Turkey to northwestern India on Socotra Island from the southwestern United States south through Mexico and Central to South America though not in the high Andes In Pacific South America they occur as far south as southern coastal Peru and on the Atlantic side as far as Uruguay and Argentina In the Caribbean they are found on the Bahamas Hispaniola and the Lesser Antilles Typhlopidae Merrem 1820 18 266 Typical blind snakes Most tropical and many subtropical regions around the world particularly in Africa Madagascar Asia islands in the Pacific tropical America and in southeastern Europe Xenotyphlopidae Vidal Vences Branch and Hedges 2010 1 1 Round nosed blindsnake Northern Madagascar Legless lizards Main article Legless lizard While snakes are limbless reptiles evolved from and grouped with lizards there are many other species of lizards that have lost their limbs independently but which superficially look similar to snakes These include the slowworm and glass snake Other serpentine tetrapods that are unrelated to snakes include caecilians amphibians amphisbaenians near lizard squamates and the extinct aistopods amphibians Biology An adult Barbados threadsnake Leptotyphlops carlae on an American quarter dollar Size The now extinct Titanoboa cerrejonensis was 12 8 m 42 ft in length 8 By comparison the largest extant snakes are the reticulated python measuring about 6 95 m 22 8 ft long 7 and the green anaconda which measures about 5 21 m 17 1 ft long and is considered the heaviest snake on Earth at 97 5 kg 215 lb 44 At the other end of the scale the smallest extant snake is Leptotyphlops carlae with a length of about 10 4 cm 4 1 in 6 Most snakes are fairly small animals approximately 1 m 3 3 ft in length 45 Perception Thermographic image of a snake eating a mouse Pit vipers pythons and some boas have infrared sensitive receptors in deep grooves on the snout allowing them to see the radiated heat of warm blooded prey In pit vipers the grooves are located between the nostril and the eye in a large pit on each side of the head Other infrared sensitive snakes have multiple smaller labial pits lining the upper lip just below the nostrils 46 A snake tracks its prey using smell collecting airborne particles with its forked tongue then passing them to the vomeronasal organ or Jacobson s organ in the mouth for examination 46 The fork in the tongue provides a sort of directional sense of smell and taste simultaneously 46 The snake s tongue is constantly in motion sampling particles from the air ground and water analyzing the chemicals found and determining the presence of prey or predators in the local environment In water dwelling snakes such as the anaconda the tongue functions efficiently underwater 46 A line diagram from The Fauna of British India by G A Boulenger 1890 illustrating the terminology of shields on the head of a snake The underside of a snake is very sensitive to vibration allowing the snake to detect approaching animals by sensing faint vibrations in the ground 46 Snake vision varies greatly between species Some have keen eyesight and others are only able to distinguish light from dark but the important trend is that a snake s visual perception is adequate enough to track movements 47 Generally vision is best in tree dwelling snakes and weakest in burrowing snakes Some have binocular vision where both eyes are capable of focusing on the same point an example of this being the Asian vine snake Most snakes focus by moving the lens back and forth in relation to the retina Diurnal snakes have round pupils and many nocturnal snakes have slit pupils Most species possess three visual pigments and are probably able to see two primary colors in daylight It has been concluded that the last common ancestors of all snakes had UV sensitive vision but most snakes that depend on their eyesight to hunt in daylight have evolved lenses that act like sunglasses for filtering out the UV light which probably also sharpens their vision by improving the contrast 48 49 Skin Main article Snake scale The skin of a snake is covered in scales Contrary to the popular notion of snakes being slimy because of possible confusion of snakes with worms snakeskin has a smooth dry texture Most snakes use specialized belly scales to travel allowing them to grip surfaces The body scales may be smooth keeled or granular The eyelids of a snake are transparent spectacle scales also known as brille which remain permanently closed The shedding of scales is called ecdysis or in normal usage molting or sloughing Snakes shed the complete outer layer of skin in one piece 50 Snake scales are not discrete but extensions of the epidermis hence they are not shed separately but as a complete outer layer during each molt akin to a sock being turned inside out 51 Snakes have a wide diversity of skin coloration patterns which are often related to behavior such as the tendency to have to flee from predators Snakes that are at a high risk of predation tend to be plain or have longitudinal stripes providing few reference points to predators thus allowing the snake to escape without being noticed Plain snakes usually adopt active hunting strategies as their pattern allows them to send little information to prey about motion Blotched snakes usually use ambush based strategies likely because it helps them blend into an environment with irregularly shaped objects like sticks or rocks Spotted patterning can similarly help snakes to blend into their environment 52 The shape and number of scales on the head back and belly are often characteristic and used for taxonomic purposes Scales are named mainly according to their positions on the body In advanced Caenophidian snakes the broad belly scales and rows of dorsal scales correspond to the vertebrae allowing these to be counted without the need for dissection Molting A common watersnake shedding its skin Molting or ecdysis serves a number of purposes It allows old worn skin to be replaced and it can remove parasites such as mites and ticks that live in the skin It s also been observed in snakes that molting can be synced to mating cycles Shedding skin can release pheromones and revitalize color and patterns of the skin to increase attraction of mates 53 Renewal of the skin by molting supposedly allows growth in some animals such as insects but this has been disputed in the case of snakes 51 54 Molting occurs periodically throughout the life of a snake Before each molt the snake stops eating and often hides or moves to a safe place Just before shedding the skin becomes dull and dry looking and the snake s eyes turn cloudy or blue colored The inner surface of the old skin liquefies causing it to separate from the new skin beneath it After a few days the eyes become clear and the snake crawls out of its old skin which splits close to the snake s mouth The snake rubs its body against rough surfaces to aid in the shedding of its old skin In many cases the cast skin peels backward over the body from head to tail in one piece like pulling a sock off inside out revealing a new larger brighter layer of skin which has formed underneath 51 55 A young snake that is still growing may shed its skin up to four times a year but an older snake may shed only once or twice a year 55 The discarded skin carries a perfect imprint of the scale pattern so it is usually possible to identify the snake from the cast skin if it is reasonably intact 51 This periodic renewal has led to the snake being a symbol of healing and medicine as pictured in the Rod of Asclepius 56 Scale counts can sometimes be used to identify the sex of a snake when the species is not distinctly sexually dimorphic A probe is fully inserted into the cloaca marked at the point where it stops then removed and measured against the subcaudal scales 57 The scalation count determines whether the snake is a male or female as the hemipenes of a male will probe to a different depth usually longer than the cloaca of a female 57 clarification needed Skeleton The skeletons of snakes are radically different from those of most other reptiles as compared with the turtle here for example consisting almost entirely of an extended ribcage The skeleton of most snakes consists solely of the skull hyoid vertebral column and ribs though henophidian snakes retain vestiges of the pelvis and rear limbs The skull consists of a solid and complete neurocranium to which many of the other bones are only loosely attached particularly the highly mobile jaw bones which facilitate manipulation and ingestion of large prey items The left and right sides of the lower jaw are joined only by a flexible ligament at the anterior tips allowing them to separate widely and the posterior end of the lower jaw bones articulate with a quadrate bone allowing further mobility The mandible and quadrate bones can pick up ground borne vibrations 58 because the sides of the lower jaw can move independently of one another a snake resting its jaw on a surface has sensitive stereo auditory perception used for detecting the position of prey The jaw quadrate stapes pathway is capable of detecting vibrations on the angstrom scale despite the absence of an outer ear and the lack of an impedance matching mechanism provided by the ossicles in other vertebrates for receiving vibrations from the air 59 60 The hyoid is a small bone located posterior and ventral to the skull in the neck region which serves as an attachment for the muscles of the snake s tongue as it does in all other tetrapods The vertebral column consists of between 200 and 400 vertebrae or sometimes more The body vertebrae each have two ribs articulating with them The tail vertebrae are comparatively few in number often less than 20 of the total and lack ribs The vertebrae have projections that allow for strong muscle attachment enabling locomotion without limbs Caudal autotomy self amputation of the tail a feature found in some lizards is absent in most snakes 61 In the rare cases where it does exist in snakes caudal autotomy is intervertebral meaning the separation of adjacent vertebrae unlike that in lizards which is intravertebral i e the break happens along a predefined fracture plane present on a vertebra 62 63 In some snakes most notably boas and pythons there are vestiges of the hindlimbs in the form of a pair of pelvic spurs These small claw like protrusions on each side of the cloaca are the external portion of the vestigial hindlimb skeleton which includes the remains of an ilium and femur Snakes are polyphyodonts with teeth that are continuously replaced 64 Internal organs Anatomy of a snake file info esophagustracheatracheal lungsrudimentary left lungright lungheartliverstomachair sacgallbladderpancreasspleenintestinetesticleskidneys Snakes and other non archosaur crocodilians dinosaurs birds and allies reptiles have a three chambered heart that controls the circulatory system via the left and right atrium and one ventricle 65 Internally the ventricle is divided into three interconnected cavities the cavum arteriosum the cavum pulmonale and the cavum venosum 66 The cavum venosum receives deoxygenated blood from the right atrium and the cavum arteriosum receives oxygenated blood from the left atrium Located beneath the cavum venosum is the cavum pulmonale which pumps blood to the pulmonary trunk 67 The snake s heart is encased in a sac called the pericardium located at the bifurcation of the bronchi The heart is able to move around owing to the lack of a diaphragm this adjustment protects the heart from potential damage when large ingested prey is passed through the esophagus The spleen is attached to the gall bladder and pancreas and filters the blood The thymus located in fatty tissue above the heart is responsible for the generation of immune cells in the blood The cardiovascular system of snakes is unique for the presence of a renal portal system in which the blood from the snake s tail passes through the kidneys before returning to the heart 68 The vestigial left lung is often small or sometimes even absent as snakes tubular bodies require all of their organs to be long and thin 68 In the majority of species only one lung is functional This lung contains a vascularized anterior portion and a posterior portion that does not function in gas exchange 68 This saccular lung is used for hydrostatic purposes to adjust buoyancy in some aquatic snakes and its function remains unknown in terrestrial species 68 Many organs that are paired such as kidneys or reproductive organs are staggered within the body one located ahead of the other 68 Snakes have no lymph nodes 68 Venom See also Snake venom Venomous snake and Bite Innocuous milk snakes are often mistaken for coral snakes whose venom is deadly to humans Cobras vipers and closely related species use venom to immobilize injure or kill their prey The venom is modified saliva delivered through fangs 17 243 The fangs of advanced venomous snakes like viperids and elapids are hollow allowing venom to be injected more effectively and the fangs of rear fanged snakes such as the boomslang simply have a groove on the posterior edge to channel venom into the wound Snake venoms are often prey specific and their role in self defense is secondary 17 243 Venom like all salivary secretions is a predigestant that initiates the breakdown of food into soluble compounds facilitating proper digestion Even nonvenomous snakebites like any animal bite cause tissue damage 17 209 Certain birds mammals and other snakes such as kingsnakes that prey on venomous snakes have developed resistance and even immunity to certain venoms 17 243 Venomous snakes include three families of snakes and do not constitute a formal taxonomic classification group The colloquial term poisonous snake is generally an incorrect label for snakes A poison is inhaled or ingested whereas venom produced by snakes is injected into its victim via fangs 69 There are however two exceptions Rhabdophis sequesters toxins from the toads it eats then secretes them from nuchal glands to ward off predators and a small unusual population of garter snakes in the US state of Oregon retains enough toxins in their livers from ingested newts to be effectively poisonous to small local predators such as crows and foxes 70 Snake venoms are complex mixtures of proteins and are stored in venom glands at the back of the head 70 In all venomous snakes these glands open through ducts into grooved or hollow teeth in the upper jaw 17 243 69 The proteins can potentially be a mix of neurotoxins which attack the nervous system hemotoxins which attack the circulatory system cytotoxins which attack the cells directly bungarotoxins related to neurotoxins but also directly affect muscle tissue and many other toxins that affect the body in different ways 69 Almost all snake venom contains hyaluronidase an enzyme that ensures rapid diffusion of the venom 17 243 Venomous snakes that use hemotoxins usually have fangs in the front of their mouths making it easier for them to inject the venom into their victims 69 Some snakes that use neurotoxins such as the mangrove snake have fangs in the back of their mouths with the fangs curled backwards 71 This makes it difficult both for the snake to use its venom and for scientists to milk them 69 Elapids however such as cobras and kraits are proteroglyphous they possess hollow fangs that cannot be erected toward the front of their mouths and cannot stab like a viper They must actually bite the victim 17 242 It has been suggested that all snakes may be venomous to a certain degree with harmless snakes having weak venom and no fangs 72 According to this theory most snakes that are labelled nonvenomous would be considered harmless because they either lack a venom delivery method or are incapable of delivering enough to endanger a human The theory postulates that snakes may have evolved from a common lizard ancestor that was venomous and also that venomous lizards like the gila monster beaded lizard monitor lizards and the now extinct mosasaurs may have derived from this same common ancestor They share this venom clade with various other saurian species Venomous snakes are classified in two taxonomic families Elapids cobras including king cobras kraits mambas Australian copperheads sea snakes and coral snakes 71 Viperids vipers rattlesnakes copperheads cottonmouths and bushmasters 71 There is a third family containing the opistoglyphous rear fanged snakes as well as the majority of other snake species Colubrids boomslangs tree snakes vine snakes cat snakes although not all colubrids are venomous 17 209 71 Reproduction See also Sexual selection in scaled reptiles Although a wide range of reproductive modes are used by snakes all employ internal fertilization This is accomplished by means of paired forked hemipenes which are stored inverted in the male s tail 73 The hemipenes are often grooved hooked or spined designed to grip the walls of the female s cloaca 74 73 The clitoris of the female snake consists of two structures located between the cloaca and the scent glands 75 Most species of snakes lay eggs which they abandon shortly after laying However a few species such as the king cobra construct nests and stay in the vicinity of the hatchlings after incubation 73 Most pythons coil around their egg clutches and remain with them until they hatch 76 A female python will not leave the eggs except to occasionally bask in the sun or drink water She will even shiver to generate heat to incubate the eggs 76 Some species of snake are ovoviviparous and retain the eggs within their bodies until they are almost ready to hatch 77 78 Several species of snake such as the boa constrictor and green anaconda are fully viviparous nourishing their young through a placenta as well as a yolk sac this is highly unusual among reptiles and normally found in requiem sharks or placental mammals 77 78 Retention of eggs and live birth are most often associated with colder environments 73 78 The garter snake has been studied for sexual selection Sexual selection in snakes is demonstrated by the 3 000 species that each use different tactics in acquiring mates 79 Ritual combat between males for the females they want to mate with includes topping a behavior exhibited by most viperids in which one male will twist around the vertically elevated fore body of its opponent and force it downward It is common for neck biting to occur while the snakes are entwined 80 Facultative parthenogenesis Parthenogenesis is a natural form of reproduction in which growth and development of embryos occur without fertilization Agkistrodon contortrix copperhead and Agkistrodon piscivorus cottonmouth can reproduce by facultative parthenogenesis meaning that they are capable of switching from a sexual mode of reproduction to an asexual mode 81 The most likely type of parthenogenesis to occur is automixis with terminal fusion a process in which two terminal products from the same meiosis fuse to form a diploid zygote This process leads to genome wide homozygosity expression of deleterious recessive alleles and often to developmental abnormalities Both captive born and wild born copperheads and cottonmouths appear to be capable of this form of parthenogenesis 81 Reproduction in squamate reptiles is almost exclusively sexual Males ordinarily have a ZZ pair of sex determining chromosomes and females a ZW pair However the Colombian Rainbow boa Epicrates maurus can also reproduce by facultative parthenogenesis resulting in production of WW female progeny 82 The WW females are likely produced by terminal automixis Embryonic Development Mouse embryo 12 day post fertilization side by side with Corn Snake embryo 2 days post ovo positioning 83 Snake embryonic development initially follows similar steps as any vertebrate embryo The snake embryo begins as a zygote undergoes rapid cell division forms a germinal disc also called a blastodisc then undergoes gastrulation neurulation and organogenesis 84 Cell division and proliferation continues until an early snake embryo develops and the typical body shape of a snake can be observed 84 Multiple features differentiate the embryologic development of snakes from other vertebrates two significant factors being the elongation of the body and the lack of limb development Diagram illustrating differential somite size due to difference in somitogenesis clock oscillation 83 The elongation in snake body is accompanied by a significant increase in vertebra count mice have 60 vertebrae whereas snakes may have over 300 83 This increase in vertebrae is due to an increase in somites during embryogenesis leading to an increased number of vertebrae which develop 83 Somites are formed at the presomitic mesoderm due to a set of oscillatory genes that direct the somitogenesis clock The snake somitogenesis clock operates at a frequency 4 times that of a mouse after correction for developmental time creating more somites and therefore creating more vertebrae 83 This difference in clock speed is believed to be caused by differences in Lunatic fringe gene expression a gene involved in the somitogenesis clock 85 There is ample literature focusing on the limb development lack of development in snake embryos and the gene expression associated with the different stages In basal snakes such as the python embryos in early development exhibit a hind limb bud that develops with some cartilage and a cartilaginous pelvic element however this degenerates before hatching 86 This presence of vestigial development suggests that some snakes are still undergoing hind limb reduction before they are eliminated 87 There is no evidence in basal snakes of forelimb rudiments and no examples of snake forelimb bud initiation in embryo so little is known regarding the loss of this trait 87 Recent studies suggests that hind limb reduction could be due to mutations in enhancers for the SSH gene 87 however other studies suggested that mutations within the Hox Genes or their enhancers could contribute to snake limblessness 83 Since multiple studies have found evidence suggesting different genes played a role in the loss of limbs in snakes it is likely that multiple gene mutations had an additive effect leading to limb loss in snakes 88 BehaviorWinter dormancy Snake coiled on a stick in Oklahoma It was brumating in a large pile of wood chips found by this landscaper after he bulldozed the pile in late autumn 2018 In regions where winters are too cold for snakes to tolerate while remaining active local species will enter a period of brumation Unlike hibernation in which the dormant mammals are actually asleep brumating reptiles are awake but inactive Individual snakes may brumate in burrows under rock piles or inside fallen trees or large numbers of snakes may clump together in hibernacula Feeding and diet African egg eating snake eating an egg All snakes are strictly carnivorous preying on small animals including lizards frogs other snakes small mammals birds eggs fish snails worms and insects 17 81 18 89 Snakes cannot bite or tear their food to pieces so must swallow their prey whole The eating habits of a snake are largely influenced by body size smaller snakes eat smaller prey Juvenile pythons might start out feeding on lizards or mice and graduate to small deer or antelope as an adult for example The snake s jaw is a complex structure Contrary to the popular belief that snakes can dislocate their jaws they have an extremely flexible lower jaw the two halves of which are not rigidly attached and numerous other joints in the skull which allow the snake to open its mouth wide enough to swallow prey whole even if it is larger in diameter than the snake itself 89 For example the African egg eating snake has flexible jaws adapted for eating eggs much larger than the diameter of its head 17 81 This snake has no teeth but does have bony protrusions on the inside edge of its spine which it uses to break the shell when eating eggs 17 81 Carpet python constricting and consuming a chicken The majority of snakes eat a variety of prey animals but there is some specialization in certain species King cobras and the Australian bandy bandy consume other snakes Species of the family Pareidae have more teeth on the right side of their mouths than on the left as they mostly prey on snails and the shells usually spiral clockwise 17 184 90 91 Some snakes have a venomous bite which they use to kill their prey before eating it 89 92 Other snakes kill their prey by constriction 89 while some swallow their prey when it is still alive 17 81 89 Dolichophis jugularis preying on a sheltopusik After eating snakes become dormant to allow the process of digestion to take place 57 this is an intense activity especially after consumption of large prey In species that feed only sporadically the entire intestine enters a reduced state between meals to conserve energy The digestive system is then up regulated to full capacity within 48 hours of prey consumption Being ectothermic cold blooded the surrounding temperature plays an important role in the digestion process The ideal temperature for snakes to digest food is 30 C 86 F There is a huge amount of metabolic energy involved in a snake s digestion for example the surface body temperature of the South American rattlesnake Crotalus durissus increases by as much as 1 2 C 2 2 F during the digestive process 93 If a snake is disturbed after having eaten recently it will often regurgitate its prey to be able to escape the perceived threat When undisturbed the digestive process is highly efficient the snake s digestive enzymes dissolve and absorb everything but the prey s hair or feathers and claws which are excreted along with waste Hooding and spitting Hooding expansion of the neck area is a visual deterrent mostly seen in cobras elapids and is primarily controlled by rib muscles 94 Hooding can be accompanied by spitting venom towards the threatening object 95 and producing a specialized sound hissing Studies on captive cobras showed that 13 to 22 of the body length is raised during hooding 96 Locomotion The lack of limbs does not impede the movement of snakes They have developed several different modes of locomotion to deal with particular environments Unlike the gaits of limbed animals which form a continuum each mode of snake locomotion is discrete and distinct from the others transitions between modes are abrupt 97 98 Lateral undulation Main article Undulatory locomotion Crawling prints of a snake Lateral undulation is the sole mode of aquatic locomotion and the most common mode of terrestrial locomotion 98 In this mode the body of the snake alternately flexes to the left and right resulting in a series of rearward moving waves 97 While this movement appears rapid snakes have rarely been documented moving faster than two body lengths per second often much less 99 This mode of movement has the same net cost of transport calories burned per meter moved as running in lizards of the same mass 100 Terrestrial lateral undulation is the most common mode of terrestrial locomotion for most snake species 97 In this mode the posteriorly moving waves push against contact points in the environment such as rocks twigs irregularities in the soil etc 97 Each of these environmental objects in turn generates a reaction force directed forward and towards the midline of the snake resulting in forward thrust while the lateral components cancel out 101 The speed of this movement depends upon the density of push points in the environment with a medium density of about 8 clarification needed along the snake s length being ideal 99 The wave speed is precisely the same as the snake speed and as a result every point on the snake s body follows the path of the point ahead of it allowing snakes to move through very dense vegetation and small openings 101 When swimming the waves become larger as they move down the snake s body and the wave travels backwards faster than the snake moves forwards 102 Thrust is generated by pushing their body against the water resulting in the observed slip In spite of overall similarities studies show that the pattern of muscle activation is different in aquatic versus terrestrial lateral undulation which justifies calling them separate modes 103 All snakes can laterally undulate forward with backward moving waves but only sea snakes have been observed reversing the motion moving backwards with forward moving waves 97 Sidewinding Main article Sidewinding A neonate sidewinder rattlesnake Crotalus cerastes sidewinding Most often employed by colubroid snakes colubrids elapids and vipers when the snake must move in an environment that lacks irregularities to push against rendering lateral undulation impossible such as a slick mud flat or a sand dune sidewinding is a modified form of lateral undulation in which all of the body segments oriented in one direction remain in contact with the ground while the other segments are lifted up resulting in a peculiar rolling motion 104 105 This mode of locomotion overcomes the slippery nature of sand or mud by pushing off with only static portions on the body thereby minimizing slipping 104 The static nature of the contact points can be shown from the tracks of a sidewinding snake which show each belly scale imprint without any smearing This mode of locomotion has very low caloric cost less than 1 3 of the cost for a lizard to move the same distance 100 Contrary to popular belief there is no evidence that sidewinding is associated with the sand being hot 104 Concertina Main article Concertina movement When push points are absent but there is not enough space to use sidewinding because of lateral constraints such as in tunnels snakes rely on concertina locomotion 97 105 In this mode the snake braces the posterior portion of its body against the tunnel wall while the front of the snake extends and straightens 104 The front portion then flexes and forms an anchor point and the posterior is straightened and pulled forwards This mode of locomotion is slow and very demanding up to seven times the cost of laterally undulating over the same distance 100 This high cost is due to the repeated stops and starts of portions of the body as well as the necessity of using active muscular effort to brace against the tunnel walls Arboreal Golden tree snake climbing a flower The movement of snakes in arboreal habitats has only recently been studied 106 While on tree branches snakes use several modes of locomotion depending on species and bark texture 106 In general snakes will use a modified form of concertina locomotion on smooth branches but will laterally undulate if contact points are available 106 Snakes move faster on small branches and when contact points are present in contrast to limbed animals which do better on large branches with little clutter 106 Gliding snakes Chrysopelea of Southeast Asia launch themselves from branch tips spreading their ribs and laterally undulating as they glide between trees 104 107 108 These snakes can perform a controlled glide for hundreds of feet depending upon launch altitude and can even turn in midair 104 107 Rectilinear Main article Rectilinear locomotion The slowest mode of snake locomotion is rectilinear locomotion which is also the only one where the snake does not need to bend its body laterally though it may do so when turning 109 In this mode the belly scales are lifted and pulled forward before being placed down and the body pulled over them Waves of movement and stasis pass posteriorly resulting in a series of ripples in the skin 109 The ribs of the snake do not move in this mode of locomotion and this method is most often used by large pythons boas and vipers when stalking prey across open ground as the snake s movements are subtle and harder to detect by their prey in this manner 104 Interactions with humans Most common symptoms of any kind of snake bite envenomation 110 111 Furthermore there is vast variation in symptoms between bites from different types of snakes 110 Bite Main article Snakebite Vipera berus one fang in glove with a small venom stain the other still in place Snakes do not ordinarily prey on humans Unless startled or injured most snakes prefer to avoid contact and will not attack humans With the exception of large constrictors nonvenomous snakes are not a threat to humans The bite of a nonvenomous snake is usually harmless their teeth are not adapted for tearing or inflicting a deep puncture wound but rather grabbing and holding Although the possibility of infection and tissue damage is present in the bite of a nonvenomous snake venomous snakes present far greater hazard to humans 17 209 The World Health Organization WHO lists snakebite under the other neglected conditions category 112 Documented deaths resulting from snake bites are uncommon Nonfatal bites from venomous snakes may result in the need for amputation of a limb or part thereof Of the roughly 725 species of venomous snakes worldwide only 250 are able to kill a human with one bite Australia averages only one fatal snake bite per year In India 250 000 snakebites are recorded in a single year with as many as 50 000 recorded initial deaths 113 The WHO estimates that on the order of 100 000 people die each year as a result of snake bites and around three times as many amputations and other permanent disabilities are caused by snakebites annually 114 The treatment for a snakebite is as variable as the bite itself The most common and effective method is through antivenom or antivenin a serum made from the venom of the snake Some antivenom is species specific monovalent while some is made for use with multiple species in mind polyvalent In the United States for example all species of venomous snakes are pit vipers with the exception of the coral snake To produce antivenom a mixture of the venoms of the different species of rattlesnakes copperheads and cottonmouths is injected into the body of a horse in ever increasing dosages until the horse is immunized Blood is then extracted from the immunized horse The serum is separated and further purified and freeze dried It is reconstituted with sterile water and becomes antivenom For this reason people who are allergic to horses are more likely to have an allergic reaction to antivenom 115 Antivenom for the more dangerous species such as mambas taipans and cobras is made in a similar manner in India South Africa and Australia although these antivenoms are species specific Snake charmers Main article Snake charming The Indian cobra is the most common subject of snake charmings In some parts of the world especially in India snake charming is a roadside show performed by a charmer In such a show the snake charmer carries a basket containing a snake that he seemingly charms by playing tunes with his flutelike musical instrument to which the snake responds 116 The snake is in fact responding to the movement of the flute not the sound it makes as snakes lack external ears though they do have internal ears 116 The Wildlife Protection Act of 1972 in India technically prohibits snake charming on the grounds of reducing animal cruelty Other types of snake charmers use a snake and mongoose show where the two animals have a mock fight however this is not very common as the animals may be seriously injured or killed Snake charming as a profession is dying out in India because of competition from modern forms of entertainment and environment laws proscribing the practice Many Indians have never seen snake charming and it is becoming a folktale of the past 116 117 118 119 Trapping The Irulas tribe of Andhra Pradesh and Tamil Nadu in India have been hunter gatherers in the hot dry plains forests and have practiced the art of snake catching for generations They have a vast knowledge of snakes in the field They generally catch the snakes with the help of a simple stick Earlier the Irulas caught thousands of snakes for the snake skin industry After the complete ban of the snake skin industry in India and protection of all snakes under the Indian Wildlife Protection Act 1972 they formed the Irula Snake Catcher s Cooperative and switched to catching snakes for removal of venom releasing them in the wild after four extractions The venom so collected is used for producing life saving antivenom biomedical research and for other medicinal products 120 The Irulas are also known to eat some of the snakes they catch and are very useful in rat extermination in the villages Despite the existence of snake charmers there have also been professional snake catchers or wranglers Modern day snake trapping involves a herpetologist using a long stick with a V shaped end Some television show hosts like Bill Haast Austin Stevens Steve Irwin and Jeff Corwin prefer to catch them using bare hands Consumption A 海豹蛇 sea leopard snake supposedly Enhydris bocourti occupies a place of honor among the live delicacies on display outside a Guangzhou restaurant Although snakes are not commonly thought of as food their consumption is acceptable in some cultures and may even be considered a delicacy Snake soup is popular in Cantonese cuisine consumed by locals in the autumn to warm their bodies Western cultures document the consumption of snakes only under extreme circumstances of hunger 121 with the exception of cooked rattlesnake meat which is commonly consumed in Texas 122 and parts of the Midwestern United States Snake meat in a Taipei restaurant In Asian countries such as China Taiwan Thailand Indonesia Vietnam and Cambodia drinking the blood of a snake particularly the cobra is believed to increase sexual virility 123 When possible the blood is drained while the cobra is still alive and it is usually mixed with some form of liquor to improve the taste 123 The use of snakes in alcohol is accepted in some Asian countries In such cases one or more snakes are left to steep in a jar or container of liquor as this is claimed to make the liquor stronger as well as more expensive One example of this is the Habu snake which is sometimes placed in the Okinawan liqueur Habushu ブ酒 also known as Habu Sake 124 Snake wine 蛇酒 is an alcoholic beverage produced by infusing whole snakes in rice wine or grain alcohol First recorded as being consumed in China during the Western Zhou dynasty this drink is considered an important curative and is believed to reinvigorate a person according to traditional Chinese medicine 125 Pets In the Western world some snakes are kept as pets especially docile species such as the ball python and corn snake To meet the demand a captive breeding industry has developed Snakes bred in captivity are considered preferable to specimens caught in the wild and tend to make better pets 126 Compared with more traditional types of companion animal snakes can be very low maintenance pets they require minimal space as most common species do not exceed 5 feet 1 5 m in length and can be fed relatively infrequently usually once every five to 14 days Certain snakes have a lifespan of more than 40 years if given proper care Symbolism Main article Serpent symbolism The reverse side of the throne of Pharaoh Tutankhamun with four golden uraeus cobra figures Gold with lapis lazuli Valley of the Kings Thebes 1347 37 BCE Snakes composing a bronze kerykeion from the mythical Longanus river in Sicily Imperial Japan depicted as an evil snake in a WWII propaganda poster The Smoking Snake insignia of the Brazilian Expeditionary Force in WWII A common adder in the coat of arms of the Kyyjarvi municipality In ancient Mesopotamia Nirah the messenger god of Istaran was represented as a serpent on kudurrus or boundary stones 127 Representations of two intertwined serpents are common in Sumerian art and Neo Sumerian artwork 127 and still appear sporadically on cylinder seals and amulets until as late as the thirteenth century BC 127 The horned viper Cerastes cerastes appears in Kassite and Neo Assyrian kudurrus 127 and is invoked in Assyrian texts as a magical protective entity 127 A dragon like creature with horns the body and neck of a snake the forelegs of a lion and the hind legs of a bird appears in Mesopotamian art from the Akkadian Period until the Hellenistic Period 323 BC 31 BC 127 This creature known in Akkadian as the musḫussu meaning furious serpent was used as a symbol for particular deities and also as a general protective emblem 127 It seems to have originally been the attendant of the Underworld god Ninazu 127 but later became the attendant to the Hurrian storm god Tishpak as well as later Ninazu s son Ningishzida the Babylonian national god Marduk the scribal god Nabu and the Assyrian national god Ashur 127 In Egyptian history the snake occupies a primary role with the Nile cobra adorning the crown of the pharaoh in ancient times It was worshipped as one of the gods and was also used for sinister purposes murder of an adversary and ritual suicide Cleopatra citation needed The ouroboros was a well known ancient Egyptian symbol of a serpent swallowing its own tail 128 The precursor to the ouroboros was the Many Faced 128 a serpent with five heads who according to the Amduat the oldest surviving Book of the Afterlife was said to coil around the corpse of the sun god Ra protectively 128 The earliest surviving depiction of a true ouroboros comes from the gilded shrines in the tomb of Tutankhamun 128 In the early centuries AD the ouroboros was adopted as a symbol by Gnostic Christians 128 and chapter 136 of the Pistis Sophia an early Gnostic text describes a great dragon whose tail is in its mouth 128 In medieval alchemy the ouroboros became a typical western dragon with wings legs and a tail 128 In the Bible King Nahash of Ammon whose name means Snake is depicted very negatively as a particularly cruel and despicable enemy of the ancient Hebrews Medusa 1597 by the Italian artist Caravaggio The ancient Greeks used the Gorgoneion a depiction of a hideous face with serpents for hair as an apotropaic symbol to ward off evil 129 In a Greek myth described by Pseudo Apollodorus in his Bibliotheca Medusa was a Gorgon with serpents for hair whose gaze turned all those who looked at her to stone and was slain by the hero Perseus 130 131 132 In the Roman poet Ovid s Metamorphoses Medusa is said to have once been a beautiful priestess of Athena whom Athena turned into a serpent haired monster after she was raped by the god Poseidon in Athena s temple 133 In another myth referenced by the Boeotian poet Hesiod and described in detail by Pseudo Apollodorus the hero Heracles is said to have slain the Lernaean Hydra 134 135 a multiple headed serpent which dwelt in the swamps of Lerna 134 135 The legendary account of the foundation of Thebes mentioned a monster snake guarding the spring from which the new settlement was to draw its water In fighting and killing the snake the companions of the founder Cadmus all perished leading to the term Cadmean victory i e a victory involving one s own ruin citation needed Rod of Asclepius in which the snake through ecdysis symbolizes healing Three medical symbols involving snakes that are still used today are Bowl of Hygieia symbolizing pharmacy and the Caduceus and Rod of Asclepius which are symbols denoting medicine in general 56 One of the etymologies proposed for the common female first name Linda is that it might derive from Old German Lindi or Linda meaning a serpent India is often called the land of snakes and is steeped in tradition regarding snakes 136 Snakes are worshipped as gods even today with many women pouring milk on snake pits despite snakes aversion for milk 136 The cobra is seen on the neck of Shiva and Vishnu is depicted often as sleeping on a seven headed snake or within the coils of a serpent 137 There are also several temples in India solely for cobras sometimes called Nagraj King of Snakes and it is believed that snakes are symbols of fertility There is a Hindu festival called Nag Panchami each year on which day snakes are venerated and prayed to See also Naga citation needed In India there is another mythology about snakes Commonly known in Hindi as Ichchhadhari snakes Such snakes can take the form of any living creature but prefer human form These mythical snakes possess a valuable gem called Mani which is more brilliant than diamond There are many stories in India about greedy people trying to possess this gem and ending up getting killed citation needed The snake is one of the 12 celestial animals of Chinese zodiac in the Chinese calendar 138 Many ancient Peruvian cultures worshipped nature 139 They emphasized animals and often depicted snakes in their art 140 Religion Main article Snake worship Snakes are used in Hinduism as a part of ritual worship 141 In the annual Nag Panchami festival participants worship either live cobras or images of Nagas Lord Shiva is depicted in most images with a snake coiled around his neck 142 Puranic literature includes various stories associated with snakes for example Shesha is said to hold all the planets of the Universe on his hoods and to constantly sing the glories of Vishnu from all his mouths Other notable snakes in Hinduism are Vasuki Takshaka Karkotaka and Pingala The term Naga is used to refer to entities that take the form of large snakes in Hinduism and Buddhism 143 Snakes have been widely revered in many cultures such as in ancient Greece where the serpent was seen as a healer 144 Asclepius carried a serpent wound around his wand a symbol seen today on many ambulances 145 In Judaism the snake of brass is also a symbol of healing of one s life being saved from imminent death 146 In religious terms the snake and jaguar were arguably the most important animals in ancient Mesoamerica 147 In states of ecstasy lords dance a serpent dance great descending snakes adorn and support buildings from Chichen Itza to Tenochtitlan and the Nahuatl word coatl meaning serpent or twin forms part of primary deities such as Mixcoatl Quetzalcoatl and Coatlicue 148 In the Maya and Aztec calendars the fifth day of the week was known as Snake Day In some parts of Christianity the redemptive work of Jesus Christ is compared to saving one s life through beholding the Nehushtan serpent of brass 149 Snake handlers use snakes as an integral part of church worship to demonstrate their faith in divine protection However more commonly in Christianity the serpent has been depicted as a representative of evil and sly plotting as seen in the description in Genesis of a snake tempting Eve in the Garden of Eden 150 Saint Patrick is purported to have expelled all snakes from Ireland while converting the country to Christianity in the 5th century thus explaining the absence of snakes there 151 In Christianity and Judaism the snake makes its infamous appearance in the first book of the Bible when a serpent appears before Adam and Eve and tempts them with the forbidden fruit from the Tree of Knowledge 150 The snake returns in the Book of Exodus when Moses turns his staff into a snake as a sign of God s power and later when he makes the Nehushtan a bronze snake on a pole that when looked at cured the people of bites from the snakes that plagued them in the desert The serpent makes its final appearance symbolizing Satan in the Book of Revelation And he laid hold on the dragon the old serpent which is the devil and Satan and bound him for a thousand years 152 In Neo Paganism 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National Geographic Wilcox C 2016 Venomous Scientific American ISBN 978 0374283377 Further readingBehler JL King FW 1979 The Audubon Society Field Guide to Reptiles and Amphibians of North America New York Alfred A Knopf p 581 ISBN 978 0 394 50824 5 Bullfinch T 2000 Bullfinch s Complete Mythology London Chancellor Press p 679 ISBN 978 0 7537 0381 6 Archived from the original on 9 February 2009 Capula M Behler JL 1989 Simon amp Schuster s Guide to Reptiles and Amphibians of the World New York Simon amp Schuster ISBN 978 0 671 69098 4 Coborn J 1991 The Atlas of Snakes of the World New Jersey TFH Publications ISBN 978 0 86622 749 0 Cogger H Zweifel R 1992 Reptiles amp Amphibians Sydney Weldon Owen ISBN 978 0 8317 2786 4 Conant R Collins J 1991 A Field Guide to Reptiles and Amphibians Eastern Central North America Boston Houghton Mifflin Company ISBN 978 0 395 58389 0 Deane John 1833 The Worship of the Serpent Whitefish Montana Kessinger Publishing p 412 ISBN 978 1 56459 898 1 Ditmars Raymond L 1906 Poisonous Snakes of the United States How to Distinguish Them New York E R Sanborn p 11 Ditmars Raymond L 1931 Snakes of the World New York Macmillan p 11 ISBN 978 0 02 531730 7 Ditmars RL 1933 Reptiles of the World The Crocodilians Lizards Snakes Turtles and Tortoises of the Eastern and Western Hemispheres New York Macmillan p 321 Ditmars RL Bridges W 1935 Snake Hunters Holiday New York D Appleton and Company p 309 Ditmars RL 1939 A Field Book of North American Snakes Garden City New York Doubleday Doran amp Co p 305 Freiberg M Walls J 1984 The World of Venomous Animals New Jersey TFH Publications ISBN 978 0 87666 567 1 Gibbons JW Gibbons W 1983 Their Blood Runs Cold Adventures With Reptiles and Amphibians Alabama University of Alabama Press p 164 ISBN 978 0 8173 0135 4 Mattison C 2007 The New Encyclopedia of Snakes New Jersey Princeton University Press p 272 ISBN 978 0 691 13295 2 McDiarmid RW Campbell JA Toure T 1999 Snake Species of the World A Taxonomic and Geographic Reference Vol 1 Herpetologists League p 511 ISBN 978 1 893777 00 2 Mehrtens J 1987 Living Snakes of the World in Color New York Sterling ISBN 978 0 8069 6461 4 Nobrega Alves RR Silva Vieira WL Santana GG 2008 Reptiles used in traditional folk medicine conservation implications Biodiversity and Conservation 17 8 2037 2049 doi 10 1007 s10531 007 9305 0 S2CID 42500066 Whitaker R 1996 நம ம ச ட ர ய ள ள ப ம ப கள Snakes around us Tamil National Book Trust ISBN 978 81 237 1905 4 Rosenfeld A 1989 Exotic Pets New York Simon amp Schuster p 293 ISBN 978 0 671 47654 0 Spawls S Branch B 1995 The Dangerous Snakes of Africa Sanibel Island Florida Ralph Curtis Publishing p 192 ISBN 978 0 88359 029 4 External links Look up snake in Wiktionary the free dictionary Wikiquote has quotations related to Snake Wikimedia Commons has media related to Serpentes category Wikisource has the text of the 1920 Encyclopedia Americana article Serpents Bibliography for Serpentes Biodiversity Heritage Library Serpentes Integrated Taxonomic Information System US Snakes eNature Archived from the original on 15 March 2008 Snakes of the Indian Subcontinent Naturemagics Kerala Photo Gallery Herpetology Database Swedish Museum of Natural History BBC Nature Snake news and video clips from BBC programmes past and present Basics of snake taxonomy at Life is Short but Snakes are Long Retrieved from https en wikipedia org w index php title Snake amp oldid 1129576809, wikipedia, wiki, book, books, library,

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