Information about Reptile
“Reptilia” redirects here. For other uses, see Reptile (disambiguation).
| Reptiles Fossil range: Carboniferous - Recent | ||||||||
|---|---|---|---|---|---|---|---|---|
![]() A Tuatara, Sphenodon punctatus A Tuatara, Sphenodon punctatus | ||||||||
| Scientific classification | ||||||||
| ||||||||
| Subclasses | ||||||||
| Synonyms | ||||||||
|
- Crocodilia (crocodiles, gharials, caimans and alligators): 23 species
- Sphenodontia (tuataras from New Zealand): 2 species
- Squamata (lizards, snakes and amphisbaenids ("worm-lizards")): approximately 7,900 species
- Testudines (turtles and tortoises): approximately 300 species
Except for a few members of the Testudines, all reptiles are covered by scales.
Most reptile species are oviparous (egg-laying). Many species of squamates, however, are capable of giving live birth. This is achieved, either through ovoviviparity (egg retention), or viviparity (offspring born without use of calcified eggs). Many of the viviparous species feed their fetuses through various forms of placenta analogous to those of mammals (Pianka & Vitt, 2003 pgs: 116-118). They often provide considerable initial care for their hatchlings.
Classification
History of classification
Reptiles are a paraphyletic group. The group can be made monophyletic by including the birds (Aves).
| Mammals are a clade, and therefore the cladists are happy to acknowledge the traditional taxon Mammalia; and birds, too, are a clade, universally ascribed to the formal taxon Aves. Mammalia and Aves are, in fact, subclades within the grand clade of the Amniota. But the traditional class reptilia is not a clade. It is just a section of the clade Amniota: the section that is left after the Mammalia and Aves have been hived off. It cannot be defined by synamorphies, as is the proper way. It is instead defined by a combination of the features it has and the features it lacks: reptiles are the amniotes that lack fur or feathers. At best, the cladists suggest, we could say that the traditional Reptila are 'non-avian, non-mammalian amniotes'.[1] |
| By the same token, the traditional class Amphibia becomes Amphibia*, because some ancient amphibian or other gave rise to all the amniotes; and the phylum Crustacea becomes Crustacea*, because it may have given rise to the insects and myriapods (centipedes and millipedes). If we believe, as some (but not all) zoologists do, that myriapods gave rise to insects, then they should be called Myriapoda*....by this convention Reptilia without an asterisk is synonymous with Amniota, and includes birds and mammals, whereas Reptilia* means non-avian, non-mammalian amniotes.[2] |
The terms "Sauropsida" ("Lizard Faces") and "Theropsida" ("Beast Faces") were coined in 1916 by E.S. Goodrich to distinguish between lizards, birds, and their relatives on one hand (Sauropsida) and mammals and their extinct relatives (Theropsida) on the other. This division is supported by the nature of the hearts and blood vessels in each group, and other features such as the structure of the forebrain. According to Goodrich both lineages evolved from an earlier stem group, the Protosauria ("First Lizards") which included some Paleozoic amphibians as well as early reptiles.
In 1956 D.M.S. Watson observed that the first two groups diverged very early in reptilian history, and so he divided Goodrich's Protosauria among them. He also reinterpreted the Sauropsida and Theropsida to exclude birds and mammals respectively. Thus his Sauropsida included Procolophonia, Eosuchia, Millerosauria, Chelonia (turtles), Squamata (lizards and snakes), Rhynchocephalia, Crocodilia, "thecodonts" (paraphyletic basal Archosauria), non-avian dinosaurs, pterosaurs, ichthyosaurs, and sauropyterygians.
This classification supplemented, but was never as popular as, the classification of the reptiles (according to Romer's classic Vertebrate Paleontology) into four subclasses according to the positioning of temporal fenestrae, openings in the sides of the skull behind the eyes. Those divisions were:
- Anapsida - no fenestrae
- Synapsida - one low fenestra (no longer considered true reptiles)
- Euryapsida - one high fenestra (now included within Diapsida)
- Diapsida - two fenestrae
Taxonomy
Classification to order level, after Benton, 2004.- Series Amniota
- Class Synapsida
- Order Pelycosauria*
- Order Therapsida
- Class Mammalia
- Class Sauropsida
- Subclass Anapsida
- Order Testudines (turtles)
- Subclass Diapsida
- Order Araeoscelidia
- Order Younginiformes
- Infraclass Ichthyosauria
- Infraclass Lepidosauromorpha
- Superorder Sauropterygia
- Order Placodontia
- Order Nothosauroidea
- Order Plesiosauria
- Superorder Lepidosauria
- Order Sphenodontida (tuatara)
- Order Squamata (lizards & snakes)
- Infraclass Archosauromorpha
- Order Prolacertiformes
- Division Archosauria
- Subdivision Crurotarsi
- Superorder Crocodylomorpha
- Order Crocodylia
- Subdivision Avemetatarsalia
- Infradivision Ornithodira
- Order Pterosauria
- Superorder Dinosauria
- Order Saurischia
- Class Aves
- Order Ornithischia
Phylogeny
SauropsidaAnapsida | |--Mesosauridae (Extinct) | `--Parareptilia | |--Millerettidae (Extinct) | |--Bolosauridae (Extinct) | `--Procolophonomorpha | |--Procolophonia | | |--Procolophonidae (Extinct) | | `--Pareiasauridae (Extinct) | `?-Testudines (turtles) `--EureptiliaCaptorhinidae (Extinct) `--RomeriidaProtorothyrididae (Extinct) `--DiapsidaAraeoscelidia (Extinct)Avicephala (Extinct) `--Neodiapsida |?-Younginiformes (Extinct) `--+--Lepidosauromorpha | |?-Euryapsida | | |?-Sauropterygia (Extinct) | | `?-Ichthyopterygia (Extinct) | `--Lepidosauriformes | `--Lepidosauria | |--Sphenodontida (including tuataras) | `--Squamata (including lizards, mosasaurs and snakes) `--Archosauromorpha |?-Choristodera (Extinct)Trilophosauridae (Extinct)Rhynchosauridae (Extinct)Prolacertiformes (Extinct) `--ArchosauriformesProterosuchidae (Extinct) |?-Erythrosuchidae (Extinct)Euparkeriidae (Extinct) `--+--Proterochampsidae `--ArchosauriaCrurotarsi (including Crocodylia) `--OrnithodiraPterosauromorpha (Extinct) `--Dinosauromorpha (including Dinosauria, which includes Aves [birds])Evolution
The early reptile Hylonomus
Hylonomus is the oldest-known reptile, and was about 8 to 12 inches (20 to 30 cm) long. Westlothiana has been suggested as the oldest reptile, but is for the moment considered to be more related to amphibians than amniotes. Petrolacosaurus and Mesosaurus are other examples. The earliest reptiles were found in the swamp forests of the Carboniferous, but were largely overshadowed by bigger labyrinthodont amphibians such as Proterogynrius. It was only after the small ice age at the end of the Carboniferous that the reptiles grew to big sizes, producing species such as Edaphosaurus and Dimetrodon.
The first true "reptiles" (Sauropsids) are categorized as Anapsids, having a solid skull with holes only for nose, eyes, spinal cord, etc. Turtles are believed by some to be surviving Anapsids, as they also share this skull structure; but this point has become contentious lately, with some arguing that turtles reverted to this primitive state in order to improve their armor. Both sides have strong evidence, and the conflict has yet to be resolved.
Shortly after the first reptiles, two branches split off, one leading to the Anapsids, which did not develop holes in their skulls. The other group, Diapsida, possessed a pair of holes in their skulls behind the eyes, along with a second pair located higher on the skull. The Diapsida split yet again into two lineages, the lepidosaurs (which contain modern snakes, lizards and tuataras, as well as, debatably, the extinct sea reptiles of the Mesozoic) and the archosaurs (today represented by only crocodilians and birds, but also containing pterosaurs and dinosaurs).
The earliest, solid-skulled amniotes also gave rise to a separate line, the Synapsida. Synapsids developed a pair of holes in their skulls behind the eyes (similar to the diapsids), which were used to both lighten the skull and increase the space for jaw muscles. The synapsids eventually evolved into mammals, and are often referred to as mammal-like reptiles, though they are not true members of Sauropsida. (A preferable term is "stem-mammals".)
Systems
Circulatory

Thermographic image of a monitor lizard.
Respiratory
All reptiles breathe using lungs. Aquatic turtles have developed more permeable skin, and some species have modified their cloaca to increase the area for gas exchange (Orenstein, 2001). Even with these adaptations, breathing is never fully accomplished without lungs. Lung ventilation is accomplished differently in each main reptile group. In squamates the lungs are ventilated almost exclusively by the axial musculature. This is also the same musculature that is used during locomotion. Because of this constraint, most squamates are forced to hold their breath during intense runs. Some, however, have found a way around it. Varanids, and a few other lizard species, employ buccal pumping as a complement to their normal "axial breathing." This allows the animals to completely fill their lungs during intense locomotion, and thus remain aerobically active for a long time. Tegu lizards are known to possess a proto-diaphragm, which separates the pulmonary cavity from the visceral cavity. While not actually capable of movement, it does allow for greater lung inflation, by taking the weight of the viscera off the lungs (Klein et al, 2003). Crocodilians actually have a muscular diaphragm that is analogous to the mammalian diaphragm. The difference is that the muscles for the crocodilian diaphragm pull the pubis (part of the pelvis, which is movable in crocodilians) back, which brings the liver down, thus freeing space for the lungs to expand. This type of diaphragmatic setup has been referred to as the "hepatic piston."How Turtles & Tortoises breathe has been the subject of much study. To date, only a few species have been studied thoroughly enough to get an idea of how turtles do it. The results indicate that turtles & tortoises have found a variety of solutions to this problem. The problem is that most turtle shells are rigid and do not allow for the type of expansion and contraction that other amniotes use to ventilate their lungs. Some turtles such as the Indian flapshell (Lissemys punctata) have a sheet of muscle that envelopes the lungs. When it contracts, the turtle can exhale. When at rest, the turtle can retract the limbs into the body cavity and force air out of the lungs. When the turtle protracts its limbs, the pressure inside the lungs is reduced, and the turtle can suck air in. Turtle lungs are attached to the inside of the top of the shell (carapace), with the bottom of the lungs attached (via connective tissue) to the rest of the viscera. By using a series of special muscles (roughly equivalent to a diaphragm), turtles are capable of pushing their viscera up and down, resulting in effective respiration, since many of these muscles have attachment points in conjunction with their forelimbs (indeed, many of the muscles expand into the limb pockets during contraction). Breathing during locomotion has been studied in three species, and they show different patterns. Adult female green sea turtles do not breathe as they crutch along their nesting beaches. They hold their breath during terrestrial locomotion and breathe in bouts as they rest. North American box turtles breathe continuously during locomotion, and the ventilation cycle is not coordinated with the limb movements (Landberg et al., 2003). They are probably using their abdominal muscles to breathe during locomotion. The last species to have been studied is red-eared sliders, which also breathe during locomotion, but they had smaller breaths during locomotion than during small pauses between locomotor bouts, indicating that there may be mechanical interference between the limb movements and the breathing apparatus. Box turtles have also been observed to breathe while completely sealed up inside their shells (ibid).
Most reptiles lack a secondary palate, meaning that they must hold their breath while swallowing. Crocodilians have evolved a bony secondary palate that allows them to continue breathing while remaining submerged (and protect their brains from getting kicked in by struggling prey). Skinks (family Scincidae) also have evolved a bony secondary palate, to varying degrees. Snakes took a different approach and extended their trachea instead. Their tracheal extension sticks out like a fleshy straw, and allows these animals to swallow large prey without suffering from asphyxiation.
Excretory
Excretion is performed mainly by two small kidneys. In diapsids uric acid is the main nitrogenous waste product; turtles, like mammals, mainly excrete urea. Unlike the kidneys of mammals and birds, reptile kidneys are unable to produce liquid urine more concentrated than their body fluid. This is because they lack a specialized structure present in the nephrons of birds and mammals, called a Loop of Henle. Because of this, many reptiles use the colon to aid in the reabsorption of water. Some are also able to take up water stored in the bladder. Excess salts are also excreted by nasal and lingual salt-glands in some reptiles.Nervous
The reptilian nervous system contains the same basic part of the amphibian brain, but the reptile cerebrum and cerebellum are slightly larger. Most typical sense organs are well developed with certain exceptions most notably the snakes lack of external ears (middle and inner ears are present). All reptilians have advanced visual depth perception compared to other animals. There are twelve pairs of cranial nerves.[1]Reproductive
Most reptiles reproduce sexually. All male reptiles except turtles and tortoises have a twin tube-like sexual organ called the hemipenes. Turtles and tortoises have a single penis. All testudines lay eggs, none are live bearing as some lizards and snakes are. All reproductive activity occurs with the cloaca, the single exit/entrance at the base of the tail where waste and reproduction happens.Asexual reproduction has been identified in squamates in six families of lizards and one snake. In some species of squamates, a population of females are able to produce a unisexual diploid clone of the mother. This asexual reproduction called parthenogenesis occurs in several species of gecko, and is particularly widespread in the teiids (especially Aspidocelis) and lacertids (Lacerta) In captivity Komodo dragons (varanidae) have reproduced by parthenogenesis.
Parthenogenetic species are also suspected to occur among chameleons, agamids, xantusiids, and typhlopids.
Amniotic eggs are covered with leathery or calcareous shells. An amnion, chorion and allantois are present during embryonic life. There are no larval stages of development.
Notes
References
- Colin Tudge (2000). The Variety of Life. Oxford University Press. ISBN 0198604262.2000&rft.pub=Oxford%20University%20Press">
- Benton, Michael J. (2004). Vertebrate Paleontology, 3rd ed., Oxford: Blackwell Science Ltd.. ISBN 0632056371.
- Colbert, Edwin H. (1969). Evolution of the Vertebrates, 2nd ed., New York: John Wiley and Sons Inc.. ISBN 0471164666.
- Goodrich, E.S. (1916|). "On the classification of the Reptilia". Proceedings of the Royal Society of London 89B: 261-276.
- Klein, Wilfied; Abe, Augusto; Andrade, Denis; Perry, Steven (2003). Structure of the posthepatic septum and its influence on visceral topology in the tegu lizard, Tupinambis merianae (Teidae: Reptilia). Journal of Morphology 258 (2): 151-157.
- Landberg, Tobias; Mailhot, Jeffrey; Brainerd, Elizabeth (2003). Lung ventilation during treadmill locomotion in a terrestrial turtle, Terrapene carolina. Journal of Experimental Biology 206 (19): 3391-3404.
- Laurin, Michel and Gauthier, Jacques A.: Diapsida. Lizards, Sphenodon, crocodylians, birds, and their extinct relatives, Version 22 June 2000; part of The Tree of Life Web Project
- Mazzotti, Frank; Ross, Charles (ed) (1989). "Structure And Function" Crocodiles and Alligators. Facts on File. ISBN 0-8160-2174-0.
- Orenstein, Ronald (2001). Turtles, Tortoises & Terrapins: Survivors in Armor. Firefly Books. ISBN 1-55209-605-X.
- Pianka, Eric; Vitt, Laurie (2003). Lizards Windows to the Evolution of Diversity. University of California Press, 116-118. ISBN 0-520-23401-4.
- Pough, Harvey; Janis, Christine; Heiser, John (2005). Vertebrate Life. Pearson Prentice Hall. ISBN 0-13-145310-6.
- Romer, A.S. (1933). Vertebrate Paleontology. University of Chicago Press. , 3rd ed., 1966.
- Wang, Tobias; Altimiras, Jordi; Klein, Wilfried; Axelsson, Michael (2003). Ventricular haemodynamics in Python molurus: separation of pulmonary and systemic pressures. The Journal of Experimental Biology 206: 4242-4245.
- Watson, D.M.S. (1957). "On Millerosaurus and the early history of the sauropsid reptiles". Philosophical Transactions of the Royal Society of London, Series B, Biological Sciences 240 (673): 325-400.
See also
External links
- Tree of Life Website
- University of Bristol Taxonomic hierarchy of the vertebrates, according to Benton 2004
- The EMBL Reptile Database
- The HC Network
- Reptile Phylogeny
- Herp-edia The online reptile encyclopedia
- World Reptile Amphibian Information Center
- Pictures of Reptils on Biocrawler.com
- Reptile Protection in India
- Information on reptiles in captivity
- Reptile Amphibian & Pesticide (RAP) Database
- Reptiles
Reptile and Reptilia could refer to several things:
..... Read more.
- Reptile, an animal of the taxonomic class Reptilia, including: crocodilians, snakes, lizards, and turtles.
- The Reptile, a 1966 film directed by John Gilling.
..... Read more.
The Carboniferous is a major division of the geologic timescale that extends from the end of the Devonian period, about 359.2 ± 2.5 Ma (million years ago), to the beginning of the Permian period, about 299.0 ± 0.8 Ma (ICS 2004).
..... Read more.
..... Read more.
Sphenodon
Gray, 1831
Species
Sphenodon punctatus (Gray, 1842)
Sphenodon guntheri (Buller, 1877)
Sphenodon diversum
..... Read more.
Gray, 1831
black: range (North Island, New Zealand)
Species
Sphenodon punctatus (Gray, 1842)
Sphenodon guntheri (Buller, 1877)
Sphenodon diversum
..... Read more.
Scientific classification or biological classification is a method by which biologists group and categorize species of organisms. Scientific classification also can be called scientific taxonomy, but should be distinguished from folk taxonomy, which lacks scientific basis.
..... Read more.
..... Read more.
Editing of this page by unregistered or newly registered users is currently disabled until (UTC) due to vandalism.
If you are prevented from editing this page, and you wish to make a change, please discuss changes on the talk page, request unprotection, log in, or
..... Read more.
If you are prevented from editing this page, and you wish to make a change, please discuss changes on the talk page, request unprotection, log in, or
..... Read more.
Chordata
Bateson, 1885
Typical Classes
See below
Chordates (phylum Chordata) are a group of animals that includes the vertebrates, together with several closely related invertebrates.
..... Read more.
Bateson, 1885
Typical Classes
See below
Chordates (phylum Chordata) are a group of animals that includes the vertebrates, together with several closely related invertebrates.
..... Read more.
Vertebrata
Cuvier, 1812
Classes and Clades
See below
Vertebrates are members of the subphylum Vertebrata (within the phylum Chordata), specifically, those chordates with backbones or spinal columns.
..... Read more.
Cuvier, 1812
Classes and Clades
See below
Vertebrates are members of the subphylum Vertebrata (within the phylum Chordata), specifically, those chordates with backbones or spinal columns.
..... Read more.
In phylogenetics, a group of organisms is said to be paraphyletic (Greek para = near and phyle = race) if the group contains its most recent common ancestor, but does not contain all the descendants of that ancestor.
..... Read more.
..... Read more.
Edwin Stephen Goodrich (b. Weston-super-Mare, 21 June 1868; d. Oxford, 6 January 1946), was an English zoologist, specialising in comparative anatomy, embryology, paleontology, and evolution. He held the Linacre Chair of Zoology in the University of Oxford from 1921 to 1946.
..... Read more.
..... Read more.
class is the rank in the scientific classification of organisms in biology below Phylum and above Order.
For example, Mammalia is the class used in the classification of dogs, whose phylum is Chordata (animals with notochords) and order is Carnivora (mammals that eat meat).
..... Read more.
For example, Mammalia is the class used in the classification of dogs, whose phylum is Chordata (animals with notochords) and order is Carnivora (mammals that eat meat).
..... Read more.
Anapsida
Osborn, 1903
Orders
Testudines (Turtles, tortoises & terrapins)
Mesosauria - extinct
Millerettidae - extinct
Nyctiphruretidae - extinct
Pareiasauridae - extinct
Procolophonidae - extinct
..... Read more.
Osborn, 1903
Orders
Testudines (Turtles, tortoises & terrapins)
Mesosauria - extinct
Millerettidae - extinct
Nyctiphruretidae - extinct
Pareiasauridae - extinct
Procolophonidae - extinct
..... Read more.
Diapsida
Osborn, 1903
Groups
See text
Diapsids ("two arches") are a group of tetrapod animals that developed two holes (temporal fenestra) in each side of their skulls, about 300 million years ago during the late Carboniferous period.
..... Read more.
Osborn, 1903
Groups
See text
Diapsids ("two arches") are a group of tetrapod animals that developed two holes (temporal fenestra) in each side of their skulls, about 300 million years ago during the late Carboniferous period.
..... Read more.
In scientific nomenclature, synonyms are different scientific names used for a single taxon. Usage and terminology are different for zoology and botany.
..... Read more.
Zoology
In zoological nomenclature, synonyms are different scientific names that pertain to the same taxon, for example..... Read more.
Josephus Nicolaus Laurenti (December 4, 1735 - February 17, 1805) was an Austrian naturalist.
Laurenti was the author of Specimen Medicum, Exhibens Synopsin Reptilium Emendatam cum Experimentis circa Venena (1768) on the poisonous function of reptiles and amphibians.
..... Read more.
Laurenti was the author of Specimen Medicum, Exhibens Synopsin Reptilium Emendatam cum Experimentis circa Venena (1768) on the poisonous function of reptiles and amphibians.
..... Read more.
Tetrapoda
Broili, 1913
Classes
..... Read more.
Broili, 1913
Classes
- Amphibia
- Aves
- Mammalia
- Sauropsida (Reptilia)
- Synapsida
..... Read more.
Amniota
Haeckel, 1866
Living subgroups
See text
The amniotes are a group of tetrapod vertebrates that include the Synapsida (mammals and mammal-like reptiles) and Sauropsida (reptiles and dinosaurs, including birds).
..... Read more.
Haeckel, 1866
Living subgroups
See text
The amniotes are a group of tetrapod vertebrates that include the Synapsida (mammals and mammal-like reptiles) and Sauropsida (reptiles and dinosaurs, including birds).
..... Read more.
This article or section is in need of attention from an expert on the subject.
Please help recruit one or [ improve this article] yourself. See the talk page for details.
..... Read more.
Please help recruit one or [ improve this article] yourself. See the talk page for details.
..... Read more.
- See also:
..... Read more.
order (Latin: ordo, plural ordines) is a rank between class and family (termed a taxon at that rank). The superorder is a rank between class and order. Exact details of formal nomenclature depend on the Nomenclature Code which applies.
..... Read more.
..... Read more.
Crocodilia
Owen, 1842
Families
Crocodilia
..... Read more.
Owen, 1842
black: range of Crocodilia
Families
- Gavialidae
- Alligatoridae
- Crocodylidae
Crocodilia
..... Read more.
Crocodylidae
Cuvier, 1807
Genera
A crocodile is any species belonging to the family Crocodylidae
..... Read more.
Cuvier, 1807
Genera
- Mecistops
- Crocodylus
- Osteolaemus
A crocodile is any species belonging to the family Crocodylidae
..... Read more.
Gavialis
Species: G. gangeticus
Binomial name
Gavialis gangeticus
(Gmelin, 1789)
The gharial (Gavialis gangeticus
..... Read more.
Species: G. gangeticus
Binomial name
Gavialis gangeticus
(Gmelin, 1789)
The gharial (Gavialis gangeticus
..... Read more.
Alligatoridae
Gray, 1844
Living Genera
Alligator
Caiman
Melanosuchus
Paleosuchus
Alligators and caimans are archosaurs, small species of crocodilians and forming the family Alligatoridae
..... Read more.
Gray, 1844
Living Genera
Alligator
Caiman
Melanosuchus
Paleosuchus
Alligators and caimans are archosaurs, small species of crocodilians and forming the family Alligatoridae
..... Read more.
Alligator
Daudin, 1809
Species
Alligator mississippiensis
Alligator sinensis
An alligator is a crocodilian in the genus Alligator of the family Alligatoridae.
..... Read more.
Daudin, 1809
Species
Alligator mississippiensis
Alligator sinensis
An alligator is a crocodilian in the genus Alligator of the family Alligatoridae.
..... Read more.
Sphenodontia
Williston, 1925
Families
..... Read more.
Williston, 1925
Families
- Gephyrosauridae
- Pleurosauridae
- Sphenodontidae
..... Read more.
Sphenodon
Gray, 1831
Species
Sphenodon punctatus (Gray, 1842)
Sphenodon guntheri (Buller, 1877)
Sphenodon diversum
..... Read more.
Gray, 1831
black: range (North Island, New Zealand)
Species
Sphenodon punctatus (Gray, 1842)
Sphenodon guntheri (Buller, 1877)
Sphenodon diversum
..... Read more.
Anthem
"God Defend New Zealand"
"God Save the Queen" 1
Capital Wellington
Largest city Auckland
..... Read more.
"God Defend New Zealand"
"God Save the Queen" 1
Capital Wellington
Largest city Auckland
..... Read more.
Squamata
Oppel, 1811
Suborders
see text
..... Read more.
Oppel, 1811
black: range of Squamata
Suborders
see text
- This article is about the Squamata order of reptiles. For the Roman scale armour see: Lorica squamata.
..... Read more.
Lacertilia*
Günther, 1867
Families
Many, see text.
Lizards are reptiles of the order Squamata, normally possessing four legs, external ear openings and movable eyelids.
..... Read more.
Günther, 1867
Families
Many, see text.
Lizards are reptiles of the order Squamata, normally possessing four legs, external ear openings and movable eyelids.
..... Read more.
Serpentes
Linnaeus, 1758
Infraorders and Families
..... Read more.
Linnaeus, 1758
Infraorders and Families
- Alethinophidia - Nopcsa, 1923
- Acrochordidae- Bonaparte, 1831
..... Read more.
