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Meganeura

Meganeura is a genus of extinct insects from the Late Carboniferous (approximately 300 million years ago). They resembled and are related to the present-day dragonflies and damselflies, and were predatory, with their diet mainly consisting of other insects. The genus belongs to the Meganeuridae, a family including other similarly giant dragonfly-like insects ranging from the Late Carboniferous to Middle Permian. With a wingspan about 65–75 cm (2.13–2.46 ft),[1][2][3] M. monyi is one of the largest-known flying insect species.

Meganeura
Temporal range: Kasimovian-Gzhelian, 305–299 Ma
M. monyi specimen MNHN R52938 which was originally attributed to different genus Meganeurella
M. monyi specimen LdLAP 392
Scientific classification
Domain: Eukaryota
Kingdom: Animalia
Phylum: Arthropoda
Class: Insecta
Division: Palaeoptera
Superorder: Odonatoptera
Order: Meganisoptera
Family: Meganeuridae
Genus: Meganeura
Brongniart, 1885
Species
  • Meganeura brongniarti
  • Meganeura monyi
  • Meganeura vischerae
Wing venation of Meganeura monyi, redrawn after Brongniart (1893, Pl. XLI)

Fossils of Meganeura were first discovered in Late Carboniferous (Stephanian) Coal Measures of Commentry, France in 1880. In 1885, French paleontologist Charles Brongniart described and named the fossil "Meganeura" (great-nerved), which refers to the network of veins on the insect's wings. Another fine fossil specimen was found in 1979 at Bolsover in Derbyshire. The holotype is housed in the National Museum of Natural History, in Paris. Despite being the iconic "giant dragonfly", fossils of Meganeura are poorly preserved in comparison to other meganeurids.[4]

Lifestyle edit

 
Life restoration of Meganeurites gracilipes, a close relative of Meganeura

Research on close relatives Meganeurula and Meganeurites suggest that Meganeura was adapted to open habitats, and similar in behaviour to extant hawkers. The eyes of Meganeura were likely enlarged relative to body size. Meganeura had spines on the tibia and tarsi sections of the legs, which would have functioned as a "flying trap" to capture prey.[4] An engineering examination estimated that the mass of the largest specimens with wingspans over 70 cm to be 100 to 150 grams. The analysis also suggested that Meganeura would be susceptible to overheating.[5]

Size edit

There has been some controversy as to how insects of the Carboniferous period were able to grow so large.

  • Oxygen levels and atmospheric density. The way oxygen is diffused through the insect's body via its tracheal breathing system puts an upper limit on body size, which prehistoric insects seem to have well exceeded. It was originally proposed by Harlé (1911) that Meganeura was able to fly only because the atmosphere of Earth at that time contained more oxygen than the present 20 percent. This hypothesis was initially dismissed by fellow scientists, but has found approval more recently through further study into the relationship between gigantism and oxygen availability.[6] If this hypothesis is correct, these insects would have been susceptible to falling oxygen levels and certainly could not survive in our modern atmosphere. Other research indicates that insects really do breathe, with "rapid cycles of tracheal compression and expansion".[7] Recent analysis of the flight energetics of modern insects and birds suggests that both the oxygen levels and air density provide an upper bound on size.[8] The presence of very large Meganeuridae with wing spans rivaling those of Meganeura during the Permian, when the oxygen content of the atmosphere was already much lower than in the Carboniferous, presented a problem to the oxygen-related explanations in the case of the giant dragonflies. However, despite the fact that meganeurids had the largest-known wingspans, their bodies were not very heavy, being less massive than those of several living Coleoptera; therefore, they were not true giant insects, only being giant in comparison with their living relatives.
  • Lack of predators. Other explanations for the large size of meganeurids compared to living relatives are warranted.[9] Bechly (2004) suggested that the lack of aerial vertebrate predators allowed pterygote insects to evolve to maximum sizes during the Carboniferous and Permian periods, perhaps accelerated by an evolutionary "arms race" for increase in body size between plant-feeding Palaeodictyoptera and Meganisoptera as their predators.
  • Aquatic larvae stadium. Another theory suggests that insects that developed in water before becoming terrestrial as adults grew bigger as a way to protect themselves against the high levels of oxygen.[10]

See also edit

References edit

  1. ^ Rake 2017, p. 20.
  2. ^ Taylor & Lewis 2007, p. 160.
  3. ^ Manzanera, R.A.J.; Smith, H. (2015). "Flight in nature I: Take-off in animal flyers". The Aeronautical Journal. 119 (1213): 257–280. doi:10.1017/S0001924000010472.
  4. ^ a b Nel, André; Prokop, Jakub; Pecharová, Martina; Engel, Michael S.; Garrouste, Romain (2018-08-14). "Palaeozoic giant dragonflies were hawker predators". Scientific Reports. 8 (1): 12141. Bibcode:2018NatSR...812141N. doi:10.1038/s41598-018-30629-w. ISSN 2045-2322. PMC 6092361. PMID 30108284.
  5. ^ Cannell, Alan E. R. (2018-10-01). "The engineering of the giant dragonflies of the Permian: revised body mass, power, air supply, thermoregulation and the role of air density". Journal of Experimental Biology. 221 (19). doi:10.1242/jeb.185405. ISSN 0022-0949. PMID 30309956.
  6. ^ Chapelle & Peck 1999: "Oxygen supply may also have led to insect gigantism in the Carboniferous period, because atmospheric oxygen was 30-35% (ref. 7). The demise of these insects when oxygen content fell indicates that large species may be susceptible to such change. Giant amphipods may therefore be among the first species to disappear if global temperatures are increased or global oxygen levels decline. Being close to the critical MPS limit may be seen as a specialization that makes giant species more prone to extinction over geological time.
  7. ^ Westneat et al. 2003: "Insects are known to exchange respiratory gases in their system of tracheal tubes by using either diffusion or changes in internal pressure that are produced through body motion or hemolymph circulation. However, the inability to see inside living insects has limited our understanding of their respiration mechanisms. We used a synchrotron beam to obtain x-ray videos of living, breathing insects. Beetles, crickets, and ants exhibited rapid cycles of tracheal compression and expansion in the head and thorax. Body movements and hemolymph circulation cannot account for these cycles; therefore, our observations demonstrate a previously unknown mechanism of respiration in insects analogous to the inflation and deflation of vertebrate lungs.
  8. ^ Dudley 1998: "Uniformitarian approaches to the evolution of terrestrial locomotor physiology and animal flight performance have generally presupposed the constancy of atmospheric composition. Recent geophysical data, as well as theoretical models, suggest that, to the contrary, both oxygen and carbon dioxide concentrations have changed dramatically during defining periods of metazoan evolution. Hyperoxia in the late Paleozoic atmosphere may have physiologically enhanced the initial evolution of tetrapod locomotor energetics; a concurrently hyperdense atmosphere would have augmented aerodynamic force production in early flying insects. Multiple historical origins of vertebrate flight also correlate temporally with geological periods of increased oxygen concentration and atmospheric density. Arthropod as well as amphibian gigantism appear to have been facilitated by a hyperoxic Carboniferous atmosphere and were subsequently eliminated by a late Permian transition to hypoxia. For extant organisms, the transient, chronic and ontogenetic effects of exposure to hyperoxic gas mixtures are poorly understood relative to the contemporary understanding of the physiology of oxygen deprivation. Experimentally, the biomechanical and physiological effects of hyperoxia on animal flight performance can be decoupled through the use of gas mixtures that vary in density and oxygen concentration. Such manipulations permit both paleophysiological simulation of ancestral locomotor performance and an analysis of maximal flight capacity in extant forms.
  9. ^ Nel et al. 2008.
  10. ^ Than, Ker (August 9, 2011). . National Geographic. Archived from the original on September 27, 2011. Retrieved 20 July 2017.

Bibliography edit

  • Bechly, G (2004). "Evolution and systematics" (PDF). In Hutchins, M.; Evans, A.V.; Garrison, R.W. & Schlager, N. (eds.). Grzimek's Animal Life Encyclopedia. Vol. Insects (2nd ed.). Farmington Hills, MI: Gale. pp. 7–16.
  • Chapelle, Gauthier & Peck, Lloyd S. (May 1999). "Polar gigantism dictated by oxygen availability". Nature. 399 (6732): 114–115. Bibcode:1999Natur.399..114C. doi:10.1038/20099. S2CID 4308425.
  • Dudley, Robert (April 1998). "Atmospheric oxygen, giant Paleozoic insects and the evolution of aerial locomotion performance". The Journal of Experimental Biology. 201 (Pt8): 1043–1050. doi:10.1242/jeb.201.8.1043. PMID 9510518.
  • Harlé, Edouard (1911). "Le Vol de grands reptiles et insectes disparus semble indiquer une pression atmosphérique élevée". Extr. Du Bulletin de la Sté Géologique de France (in French). 4 (9): 118–121.
  • Nel, André; Fleck, Günther; Garrouste, Romain & Gand, Georges (2008). "The Odonatoptera of the Late Permian Lodève Basin (Insecta)". Journal of Iberian Geology. 34 (1): 115–122.
  • Rake, Matthew (2017). Prehistoric Ancestors of Modern Animals. Hungry Tomato. p. 20. ISBN 978-1512436099.
  • Taylor, Paul D.; Lewis, David N. (2007). Fossil Invertebrates (repeated ed.). Harvard University Press. p. 160. ISBN 978-0674025745.
  • Westneat, MW; Betz, O; Blob, RW; Fezzaa, K; Cooper, WJ & Lee, WK (January 2003). "Tracheal respiration in insects visualized with synchrotron x-ray imaging". Science. 299 (5606): 558–560. Bibcode:2003Sci...299..558W. doi:10.1126/science.1078008. PMID 12543973. S2CID 43634044.

External links edit

  Media related to Meganeura at Wikimedia Commons

  • of Meganeura monyi made for Denver Museum of Natural History.

meganeura, genus, extinct, insects, from, late, carboniferous, approximately, million, years, they, resembled, related, present, dragonflies, damselflies, were, predatory, with, their, diet, mainly, consisting, other, insects, genus, belongs, meganeuridae, fam. Meganeura is a genus of extinct insects from the Late Carboniferous approximately 300 million years ago They resembled and are related to the present day dragonflies and damselflies and were predatory with their diet mainly consisting of other insects The genus belongs to the Meganeuridae a family including other similarly giant dragonfly like insects ranging from the Late Carboniferous to Middle Permian With a wingspan about 65 75 cm 2 13 2 46 ft 1 2 3 M monyi is one of the largest known flying insect species MeganeuraTemporal range Kasimovian Gzhelian 305 299 Ma PreꞒ Ꞓ O S D C P T J K Pg NM monyi specimen MNHN R52938 which was originally attributed to different genus MeganeurellaM monyi specimen LdLAP 392Scientific classificationDomain EukaryotaKingdom AnimaliaPhylum ArthropodaClass InsectaDivision PalaeopteraSuperorder OdonatopteraOrder MeganisopteraFamily MeganeuridaeGenus MeganeuraBrongniart 1885Species Meganeura brongniarti Meganeura monyi Meganeura vischerae Wing venation of Meganeura monyi redrawn after Brongniart 1893 Pl XLI Fossils of Meganeura were first discovered in Late Carboniferous Stephanian Coal Measures of Commentry France in 1880 In 1885 French paleontologist Charles Brongniart described and named the fossil Meganeura great nerved which refers to the network of veins on the insect s wings Another fine fossil specimen was found in 1979 at Bolsover in Derbyshire The holotype is housed in the National Museum of Natural History in Paris Despite being the iconic giant dragonfly fossils of Meganeura are poorly preserved in comparison to other meganeurids 4 Contents 1 Lifestyle 2 Size 3 See also 4 References 5 Bibliography 6 External linksLifestyle edit nbsp Life restoration of Meganeurites gracilipes a close relative of MeganeuraResearch on close relatives Meganeurula and Meganeurites suggest that Meganeura was adapted to open habitats and similar in behaviour to extant hawkers The eyes of Meganeura were likely enlarged relative to body size Meganeura had spines on the tibia and tarsi sections of the legs which would have functioned as a flying trap to capture prey 4 An engineering examination estimated that the mass of the largest specimens with wingspans over 70 cm to be 100 to 150 grams The analysis also suggested that Meganeura would be susceptible to overheating 5 Size editThere has been some controversy as to how insects of the Carboniferous period were able to grow so large Oxygen levels and atmospheric density The way oxygen is diffused through the insect s body via its tracheal breathing system puts an upper limit on body size which prehistoric insects seem to have well exceeded It was originally proposed by Harle 1911 that Meganeura was able to fly only because the atmosphere of Earth at that time contained more oxygen than the present 20 percent This hypothesis was initially dismissed by fellow scientists but has found approval more recently through further study into the relationship between gigantism and oxygen availability 6 If this hypothesis is correct these insects would have been susceptible to falling oxygen levels and certainly could not survive in our modern atmosphere Other research indicates that insects really do breathe with rapid cycles of tracheal compression and expansion 7 Recent analysis of the flight energetics of modern insects and birds suggests that both the oxygen levels and air density provide an upper bound on size 8 The presence of very large Meganeuridae with wing spans rivaling those of Meganeura during the Permian when the oxygen content of the atmosphere was already much lower than in the Carboniferous presented a problem to the oxygen related explanations in the case of the giant dragonflies However despite the fact that meganeurids had the largest known wingspans their bodies were not very heavy being less massive than those of several living Coleoptera therefore they were not true giant insects only being giant in comparison with their living relatives Lack of predators Other explanations for the large size of meganeurids compared to living relatives are warranted 9 Bechly 2004 suggested that the lack of aerial vertebrate predators allowed pterygote insects to evolve to maximum sizes during the Carboniferous and Permian periods perhaps accelerated by an evolutionary arms race for increase in body size between plant feeding Palaeodictyoptera and Meganisoptera as their predators Aquatic larvae stadium Another theory suggests that insects that developed in water before becoming terrestrial as adults grew bigger as a way to protect themselves against the high levels of oxygen 10 See also edit nbsp Paleontology portalList of largest insectsReferences edit Rake 2017 p 20 Taylor amp Lewis 2007 p 160 Manzanera R A J Smith H 2015 Flight in nature I Take off in animal flyers The Aeronautical Journal 119 1213 257 280 doi 10 1017 S0001924000010472 a b Nel Andre Prokop Jakub Pecharova Martina Engel Michael S Garrouste Romain 2018 08 14 Palaeozoic giant dragonflies were hawker predators Scientific Reports 8 1 12141 Bibcode 2018NatSR 812141N doi 10 1038 s41598 018 30629 w ISSN 2045 2322 PMC 6092361 PMID 30108284 Cannell Alan E R 2018 10 01 The engineering of the giant dragonflies of the Permian revised body mass power air supply thermoregulation and the role of air density Journal of Experimental Biology 221 19 doi 10 1242 jeb 185405 ISSN 0022 0949 PMID 30309956 Chapelle amp Peck 1999 Oxygen supply may also have led to insect gigantism in the Carboniferous period because atmospheric oxygen was 30 35 ref 7 The demise of these insects when oxygen content fell indicates that large species may be susceptible to such change Giant amphipods may therefore be among the first species to disappear if global temperatures are increased or global oxygen levels decline Being close to the critical MPS limit may be seen as a specialization that makes giant species more prone to extinction over geological time Westneat et al 2003 Insects are known to exchange respiratory gases in their system of tracheal tubes by using either diffusion or changes in internal pressure that are produced through body motion or hemolymph circulation However the inability to see inside living insects has limited our understanding of their respiration mechanisms We used a synchrotron beam to obtain x ray videos of living breathing insects Beetles crickets and ants exhibited rapid cycles of tracheal compression and expansion in the head and thorax Body movements and hemolymph circulation cannot account for these cycles therefore our observations demonstrate a previously unknown mechanism of respiration in insects analogous to the inflation and deflation of vertebrate lungs Dudley 1998 Uniformitarian approaches to the evolution of terrestrial locomotor physiology and animal flight performance have generally presupposed the constancy of atmospheric composition Recent geophysical data as well as theoretical models suggest that to the contrary both oxygen and carbon dioxide concentrations have changed dramatically during defining periods of metazoan evolution Hyperoxia in the late Paleozoic atmosphere may have physiologically enhanced the initial evolution of tetrapod locomotor energetics a concurrently hyperdense atmosphere would have augmented aerodynamic force production in early flying insects Multiple historical origins of vertebrate flight also correlate temporally with geological periods of increased oxygen concentration and atmospheric density Arthropod as well as amphibian gigantism appear to have been facilitated by a hyperoxic Carboniferous atmosphere and were subsequently eliminated by a late Permian transition to hypoxia For extant organisms the transient chronic and ontogenetic effects of exposure to hyperoxic gas mixtures are poorly understood relative to the contemporary understanding of the physiology of oxygen deprivation Experimentally the biomechanical and physiological effects of hyperoxia on animal flight performance can be decoupled through the use of gas mixtures that vary in density and oxygen concentration Such manipulations permit both paleophysiological simulation of ancestral locomotor performance and an analysis of maximal flight capacity in extant forms Nel et al 2008 Than Ker August 9 2011 Why Giant Bugs Once Roamed the Earth National Geographic Archived from the original on September 27 2011 Retrieved 20 July 2017 Bibliography editBechly G 2004 Evolution and systematics PDF In Hutchins M Evans A V Garrison R W amp Schlager N eds Grzimek s Animal Life Encyclopedia Vol Insects 2nd ed Farmington Hills MI Gale pp 7 16 Chapelle Gauthier amp Peck Lloyd S May 1999 Polar gigantism dictated by oxygen availability Nature 399 6732 114 115 Bibcode 1999Natur 399 114C doi 10 1038 20099 S2CID 4308425 Dudley Robert April 1998 Atmospheric oxygen giant Paleozoic insects and the evolution of aerial locomotion performance The Journal of Experimental Biology 201 Pt8 1043 1050 doi 10 1242 jeb 201 8 1043 PMID 9510518 Harle Edouard 1911 Le Vol de grands reptiles et insectes disparus semble indiquer une pression atmospherique elevee Extr Du Bulletin de la Ste Geologique de France in French 4 9 118 121 Nel Andre Fleck Gunther Garrouste Romain amp Gand Georges 2008 The Odonatoptera of the Late Permian Lodeve Basin Insecta Journal of Iberian Geology 34 1 115 122 Rake Matthew 2017 Prehistoric Ancestors of Modern Animals Hungry Tomato p 20 ISBN 978 1512436099 Taylor Paul D Lewis David N 2007 Fossil Invertebrates repeated ed Harvard University Press p 160 ISBN 978 0674025745 Westneat MW Betz O Blob RW Fezzaa K Cooper WJ amp Lee WK January 2003 Tracheal respiration in insects visualized with synchrotron x ray imaging Science 299 5606 558 560 Bibcode 2003Sci 299 558W doi 10 1126 science 1078008 PMID 12543973 S2CID 43634044 External links edit nbsp Media related to Meganeura at Wikimedia Commons Picture of life sized model of Meganeura monyi made for Denver Museum of Natural History Retrieved from https en wikipedia org w index php title Meganeura amp oldid 1198348529, wikipedia, wiki, book, books, library,

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