Sauria is the clade of diapsids containing the most recent common ancestor of Archosauria (which includes crocodilians and birds) and Lepidosauria (which includes squamates and the tuatara), and all its descendants.[1] Since most molecular phylogenies recover turtles as more closely related to archosaurs than to lepidosaurs as part of Archelosauria, Sauria likely contains all living reptiles and can be considered the reptile crown group, and may therefore be synonymous with Reptilia under some definitions.[2] Sauria may also include other major extinct reptile groups, such as the marine reptile clades Sauropterygia, Ichthyosauromorpha, and Thalattosauria.[3]

Saurians
Temporal range: LopingianPresent, 260–0 Ma
clockwise from top left:

Agkistrodon contortrix (the copperhead, a snake), Dinemellia dinemelli (the white-faced buffalo-weaver, a bird), various extinct ornithischian dinosaurs, Chelonia mydas (the green sea turtle), Anurognathus (an extinct pterosaur), and Alligator mississippiensis (the american alligator, a crocodilian)

Scientific classification Edit this classification
Kingdom: Animalia
Phylum: Chordata
Class: Reptilia
Clade: Neodiapsida
Clade: Sauria
Macartney, 1802
Groups
Synonyms

Sauria lies within the larger total group Sauropsida, which also contains various stem-reptiles which are more closely related to reptiles than to mammals.[4] Prior to its modern usage, "Sauria" was used as a name for the suborder occupied by lizards, which included crocodilians in 18th century classifications.

Systematics

edit

Sauria was historically used as a partial equivalent for Squamata (which contains lizards and snakes).[5] The redefinition to cover the last common ancestor of archosaurs and lepidosaurs was the result of papers by Jacques Gauthier and colleagues in the 1980s.[6]

Genomic studies[7][8][9] and comprehensive studies in the fossil record[10] suggest that turtles are closely related to archosaurs as part of Sauria, and not to the non-saurian parareptiles as previously thought.

Synapomorphies

edit

The synapomorphies or characters that unite the clade Sauria also help them be distinguished from other stem reptiles , or early sauropsids in the following categories based on the following regions of the body.[11][12][13] Note that most recent work has found that many features previously recognized as saurian characters are widespread in crownward stem reptile groups such as millerettids and neodiapsids.

  • Skull region
    • Dorsal origin of temporal musculature (shared with all neodiapsids)
    • Postparietal absent
    • Tabular bone lost
    • Stapes lacking a foramen
    • Anterior inferior process of the prootic present
  • Trunk region
    • Sacral ribs oriented laterally
    • Ontogenetic fusion of caudal ribs
    • Trunk ribs mostly single headed
  • Pectoral region
  • Pelvic region
    • A thyroid fenestra between the pubis and ischium
  • Limb region
    • Fifth distal tarsal absent
    • Short and stout fifth or hooked metatarsal

However, some of these characters might be lost or modified in several lineages, particularly among birds and turtles; it is best to see these characters as the ancestral features that were present in the ancestral saurian.[11]

Phylogeny

edit

The cladogram shown below follows the most likely result found by an analysis of turtle relationships using both fossil and genetic evidence by M.S. Lee, in 2013. This study found Eunotosaurus, sometimes regarded as a turtle relative, to be only very distantly related to turtles in the clade Parareptilia.[10]

The cladogram below follows the most likely result found by another analysis of turtle relationships, this one using only fossil evidence, published by Rainer Schoch and Hans-Dieter Sues in 2015. This study found Eunotosaurus to be an actual early stem-turtle, though other versions of the analysis found weak support for it as a parareptile.[15]

The cladogram below follows the analysis of Li et al. (2018). It places turtles within Diapsida but outside of Sauria (the Lepidosauromorpha + Archosauromorpha clade).[16]

The following cladogram was found by Simões et al. (2022):[3]

Cladogram of Jenkins et al. 2026, which found Pantestudines within Archosauromorpha with strong morphological support.[17]

References

edit
  1. Gauthier, J. A., Kluge, A. G., & Rowe, T. (1988). The early evolution of the Amniota. The phylogeny and classification of the tetrapods, 1, 103–155.
  2. Simões, Tiago R.; Kammerer, Christian F.; Caldwell, Michael W.; Pierce, Stephanie E. (2022-08-19). "Successive climate crises in the deep past drove the early evolution and radiation of reptiles". Science Advances. 8 (33) eabq1898. Bibcode:2022SciA....8.1898S. doi:10.1126/sciadv.abq1898. ISSN 2375-2548. PMC 9390993. PMID 35984885.
  3. 1 2 Simões, Tiago R.; Kammerer, Christian F.; Caldwell, Michael W.; Pierce, Stephanie E. (2022-08-19). "Successive climate crises in the deep past drove the early evolution and radiation of reptiles". Science Advances. 8 (33) eabq1898. Bibcode:2022SciA....8.1898S. doi:10.1126/sciadv.abq1898. ISSN 2375-2548. PMC 9390993. PMID 35984885.
  4. Ezcurra, M. D.; Scheyer, T. M.; Butler, R. J. (2014). "The origin and early evolution of Sauria: reassessing the Permian saurian fossil record and the timing of the crocodile-lizard divergence". PLOS ONE. 9 (2) e89165. Bibcode:2014PLoSO...989165E. doi:10.1371/journal.pone.0089165. PMC 3937355. PMID 24586565.
  5. Queiroz, Kevin de; Cantino, Philip D.; Gauthier, Jacques A. (2020-04-30), "Squamata M. Oppel 1811 [K. de Queiroz and J. A. Gauthier], converted clade name" (PDF), in de Queiroz, Kevin; Cantino, Philip; Gauthier, Jacques (eds.), Phylonyms (1 ed.), Boca Raton : CRC Press, [2019]: CRC Press, pp. 1093–1102, doi:10.1201/9780429446276-258, ISBN 978-0-429-44627-6, retrieved 2024-10-04{{citation}}: CS1 maint: location (link)
  6. Queiroz, Kevin de; Cantino, Philip D.; Gauthier, Jacques A. (2020-04-30), "Sauria J. Macartney 1802 [J. A. Gauthier and K. de Queiroz], converted clade name" (PDF), in de Queiroz, Kevin; Cantino, Philip; Gauthier, Jacques (eds.), Phylonyms (1 ed.), Boca Raton : CRC Press, [2019]: CRC Press, pp. 1065–1074, doi:10.1201/9780429446276-254, ISBN 978-0-429-44627-6, retrieved 2024-10-04{{citation}}: CS1 maint: location (link)
  7. Wang, Zhuo (27 March 2013). "The draft genomes of soft-shell turtle and green sea turtle yield insights into the development and evolution of the turtle-specific body plan". Nature Genetics. 45 (701–706): 701–6. doi:10.1038/ng.2615. PMC 4000948. PMID 23624526.
  8. Crawford, Nicholas G., et al. "More than 1000 ultraconserved elements provide evidence that turtles are the sister group of archosaurs." Biology letters 8.5 (2012): 783–786.
  9. Jarvis, E.D.; et al. (2014). "Whole-genome analyses resolve early branches in the tree of life of modern birds". Science. 346 (6215): 1320–1331. Bibcode:2014Sci...346.1320J. doi:10.1126/science.1253451. PMC 4405904. PMID 25504713.
  10. 1 2 Lee, M. S. Y. (2013). "Turtle origins: Insights from phylogenetic retrofitting and molecular scaffolds". Journal of Evolutionary Biology. 26 (12): 2729–2738. doi:10.1111/jeb.12268. PMID 24256520. S2CID 2106400.
  11. 1 2 Pough, F. H., Janis, C. M., & Heiser, J. B. (2005). Vertebrate life. Pearson/Prentice Hall.
  12. Laurin, Michel and Jacques A. Gauthier. 2011. Diapsida. Lizards, Sphenodon, crocodylians, birds, and their extinct relatives. Version 20 April 2011. http://tolweb.org/Diapsida/14866/2011.04.20 in The Tree of Life Web Project, http://tolweb.org/
  13. Laurin, Michel and Jacques A. Gauthier. 2011. Autapomorphies of Diapsid Clades. Version 20 April 2011. http://tolweb.org/accessory/Autapomorphies_of_Diapsid_Clades?acc_id=465 in The Tree of Life Web Project, http://tolweb.org/
  14. Lyson, Tyler R.; Bhullar, Bhart-Anjan S.; Bever, Gabe S.; Joyce, Walter G.; Queiroz, Kevin de; Abzhanov, Arhat; Gauthier, Jacques A. (2013-09-01). "Homology of the enigmatic nuchal bone reveals novel reorganization of the shoulder girdle in the evolution of the turtle shell". Evolution & Development. 15 (5): 317–325. doi:10.1111/ede.12041. ISSN 1525-142X.
  15. Schoch, Rainer R.; Sues, Hans-Dieter (24 June 2015). "A Middle Triassic stem-turtle and the evolution of the turtle body plan". Nature. 523 (7562): 584–587. Bibcode:2015Natur.523..584S. doi:10.1038/nature14472. PMID 26106865. S2CID 205243837.
  16. Li, Chun; Fraser, Nicholas C.; Rieppel, Olivier; Wu, Xiao-Chun (August 2018). "A Triassic stem turtle with an edentulous beak". Nature. 560 (7719): 476–479. Bibcode:2018Natur.560..476L. doi:10.1038/s41586-018-0419-1. ISSN 0028-0836. PMID 30135526. S2CID 52067286.
  17. Jenkins, Xavier A.; Peecook, Brandon R.; Choiniere, Jonah N.; Buffa, Valentin; Benoit, Julien; Browning, Claire; Fernandez, Vincent; Dollman, Kathleen; Gomes, Timothy W.; McGaughey, Gary A.; Marchant, Cy J.; Fitch, Adam J.; Day, Michael O.; Evers, Serjoscha W.; Benson, Roger B.J. (May 2026). "The phylogenetic origin of turtles". Current Biology. doi:10.1016/j.cub.2026.04.070.
edit
  • Wikimedia Commons logo Media related to Sauria at Wikimedia Commons
  • Wikispecies logo Data related to Sauria at Wikispecies