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2021 in reptile paleontology

List of years in reptile paleontology
In science
2018
2019
2020
2021
2022
2023
2024
In paleobotany
2018
2019
2020
2021
2022
2023
2024
In paleontology
2018
2019
2020
2021
2022
2023
2024
In arthropod paleontology
2018
2019
2020
2021
2022
2023
2024
In paleoentomology
2018
2019
2020
2021
2022
2023
2024
In paleomalacology
2018
2019
2020
2021
2022
2023
2024
In archosaur paleontology
2018
2019
2020
2021
2022
2023
2024
In mammal paleontology
2018
2019
2020
2021
2022
2023
2024
In paleoichthyology
2018
2019
2020
2021
2022
2023
2024

This list of fossil reptiles described in 2021 is a list of new taxa of fossil reptiles that were described during the year 2021, as well as other significant discoveries and events related to reptile paleontology that occurred in 2021.

Squamates

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Afrotortrix[1]

Gen. et sp. nov

Valid

Rage et al.

Eocene

 Algeria

An anilioid-grade snake. The type species is A. draaensis.

Caeruleodentatus[2]

Gen. et sp. nov

Valid

Scarpetta

Miocene

Split Rock Formation

 United States
( Wyoming)

A member of Iguania. Genus includes new species C. lovei.

Ectenosaurus everhartorum[3]

Sp. nov

Valid

Willman, Konishi & Caldwell

Late Cretaceous

 United States
( Kansas)

A plioplatecarpine mosasaur.

Elgaria peludoverde[4]

Sp. nov

Valid

Scarpetta, Ledesma & Bell

Pliocene

Olla Formation

 United States
( California)

A species of Elgaria.

Heterodon meadi[5]

Sp. nov

Valid

Jurestovsky

Hemphillian

Gray Fossil Site

 United States
( Tennessee)

A species of Heterodon.

Leiocephalus roquetus[6]

Sp. nov

Valid

Bochaton, Charles & Lenoble

Quaternary

 France
(La Désirade Island)

A curly-tailed lizard.

Morohasaurus[7]

Gen. et sp. nov

In press

Ikeda et al.

Early Cretaceous

Ohyamashimo Formation

 Japan

A member or a relative of the group Monstersauria. Genus includes new species M. kamitakiens.

Oculudentavis naga[8]

Sp. nov

Valid

Bolet et al.

Late Cretaceous (Cenomanian)

Burmese amber

 Myanmar

A lizard of uncertain phylogenetic placement.

Palaeopython schaali[9]

Sp. nov

In press

Smith & Scanferla

Eocene

Messel pit

 Germany

Palaeovaranus lismonimenos[10]

Sp. nov

Valid

Georgalis, Čerňanský & Klembara

Probably late Eocene

Quercy Phosphorites Formation

 France

A member of Anguimorpha belonging to the family Palaeovaranidae.

Paleochelco[11]

Gen. et sp. nov

Valid

Martinelli, Agnolín & Ezcurra

Late Cretaceous (Santonian)

Bajo de la Carpa Formation

 Argentina

Possibly a member of Polyglyphanodontia. The type species is P. occultato.

Paranecrosaurus[12]

Gen. et comb. nov

Valid

Smith & Habersetzer

Eocene

Messel Formation

 Germany

A palaeovaranid anguimorph.
The type species is "Saniwa" feisti Stritzke (1983).

Phosphoroboa[13]

Gen. et comb. nov

Valid

Georgalis, Rabi & Smith

Probably middle or late Eocene

Quercy Phosphorites Formation

 France

A snake belonging to the group Booidea. The type species is "Palaeopython" filholii Rochebrune (1880).

Pluridens serpentis[14]

Sp. nov

Valid

Longrich et al.

Late Cretaceous (Maastrichtian)

Ouled Abdoun Basin

 Morocco

A mosasaur.

Proegernia mikebulli[15]

Sp. nov

Valid

Thorn et al.

Late Oligocene

Namba Formation

 Australia

An egerniine skink.

Protodraco[16]

Gen. et sp. nov

Valid

Wagner et al.

Late Cretaceous (Cenomanian)

Burmese amber

 Myanmar

A member of the family Agamidae. Genus includes new species P. monocoli.

Pseudeumeces kyrillomethodicus[10]

Sp. nov

Valid

Georgalis, Čerňanský & Klembara

Probably Oligocene

Quercy Phosphorites Formation

 France

A member of the family Lacertidae belonging to the subfamily Gallotiinae.

Rageryx[17]

Gen. et sp. nov

Valid

Smith & Scanferla

Eocene (Ypresian or Lutetian)

Messel Formation

 Germany

An erycine boid snake. The type species is R. schmidi.

Sciroseps[18]

Gen. et sp. nov

Valid

Suarez et al.

Early Cretaceous (Albian)

Holly Creek Formation

 United States
( Arkansas)

A member of the family Paramacellodidae. The type species is S. pawhuskai.

Xenodens[19]

Gen. et sp. nov

Disputed

Longrich et al.

Late Cretaceous (Maastrichtian)

Ouled Abdoun Basin

 Morocco

A mosasaurine mosasaur. Genus includes new species X. calminechari. Sharpe, Powers & Caldwell (2024) considered X. calminechari to be nomen dubium, and interpreted its type material as subjected to a forgery.[20]

Research

[edit]

Ichthyosauromorphs

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Auroroborealia[44]

Gen. et sp. nov

In press

Zverkov et al.

Late Triassic

 Russia
( Sakha)

An early ichthyosaur of uncertain phylogenetic placement, possibly with toretocnemid or parvipelvian affinities. Genus includes new species A. incognita.

Catutosaurus[45]

Gen. et sp. nov

Valid

Fernández et al.

Late Jurassic (Tithonian)

 Argentina

An ichthyosaur belonging to the family Ophthalmosauridae. Genus includes new species C. gaspariniae.

Cymbospondylus youngorum[46]

Sp. nov

Sander et al.

Middle Triassic (Anisian)

Favret Formation

 United States
( Nevada)

Kazakhstanosaurus[47] Gen. et sp. nov Bolatovna and Maksutovich Late Jurassic  Kazakhstan Russia An ichthyosaur belonging to the family Ophthalmosauridae. Genus includes new species K. shchuchkinensis and K. efimovi.
Kyhytysuka[48] Gen. et comb. nov Cortés, Maxwell, and Larsson Early Cretaceous (Barremian-Aptian) Paja Formation  Colombia An ichthyosaur belonging to the family Ophthalmosauridae. The type species is "Platypterygius" sachicarum Páramo (1997).

Jabalisaurus[49]

Gen. et sp. nov

Valid

Barrientos-Lara and Alvarado-Ortega

Late Jurassic (Kimmeridgian)

La Casita Formation

 Mexico

An ichthyosaur belonging to the family Ophthalmosauridae. The type species is J. meztli

Parrassaurus[50]

Gen. et sp. nov

Valid

Barrientos-Lara & Alvarado-Ortega

Late Jurassic (Tithonian)

La Caja Formation

 Mexico

An ichthyosaur belonging to the family Ophthalmosauridae. The type species is P. yacahuitztli

Sumpalla[51]

Gen. et sp. nov

Valid

Campos et al.

Late Jurassic

Vaca Muerta

 Argentina

An ichthyosaur belonging to the family Ophthalmosauridae. Genus includes new species S. argentina

Research

[edit]

Sauropterygians

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Eiectus[59]

Gen. et sp. nov

Disputed

Noè & Gómez-Pérez

Early Cretaceous (Aptian and Albian)

 Australia

A pliosaurid, described after specimens described as Kronosaurus queenlandicus other than fragmentary holotype. Genus includes new species E. longmani. Some later researches criticized the reassignments.[60][61]

Fluvionectes[62]

Gen. et sp. nov

Valid

Campbell et al.

Late Cretaceous (Campanian)

Dinosaur Park Formation

 Canada
( Alberta)

An elasmosaurid plesiosaur. The type species is F. sloanae.

Monquirasaurus[59]

Gen. et comb. nov

Valid

Noè & Gómez-Pérez

Early Cretaceous

 Colombia

A pliosaurid; a new genus for "Kronosaurus" boyacensis Hampe (1992).

Plesiopharos[63]

Gen. et sp. nov

Valid

Puértolas-Pascual et al.

Early Jurassic (Sinemurian)

Coimbra Formation

 Portugal

An early member of Plesiosauroidea. The type species is P. moelensis.

Wumengosaurus rotundicarpus[64] Sp. nov Valid Qin et al. Middle Triassic (Anisian)  China A possible pachypleurosaur; a species of Wumengosaurus.

Research

[edit]

Turtles

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Adocus kohaku[80]

Sp. nov

Valid

Hirayama et al.

Late Cretaceous (Turonian)

Tamagawa Formation

 Japan

Akoranemys[81] Gen. et sp. nov In press Pérez-García Late Cretaceous (Cenomanian)  Madagascar A member of the family Bothremydidae belonging to the tribe Bothremydini and subtribe Bothremydina. Genus includes new species A. madagasika.

Apeshemys[82]

Gen. et comb. nov

Valid

Pérez-García

Miocene (Burdigalian)

Moghra Formation

 Egypt

A member of the family Podocnemididae belonging to the subfamily Erymnochelyinae. The type species is "Podocnemis" aegyptiaca Andrews (1900).

Chelonoidis petrocellii[83]

Sp. nov

Valid

Agnolin

Middle Pleistocene

 Argentina

A tortoise, a species of Chelonoidis.

Elkanemys[84]

Gen. et sp. nov

In press

Maniel, de la Fuente & Canale

Late Cretaceous (Cenomanian)

Candeleros Formation

 Argentina

A member of the family Bothremydidae belonging to the tribe Cearachelyini. Genus includes new species E. pritchardi.

Globochelus[85]

Gen. et sp. nov

Valid

De Lapparent de Broin, Breton & Rioult

Late Jurassic (Kimmeridgian)

 France

A member of the family Plesiochelyidae. Genus includes new species G. lennieri.

Notapachemys[86]

Gen. et sp. nov

Valid

Bourque

Eocene (Chadronian)

Chadron Formation

 United States
( Nebraska)

A member of the family Geoemydidae. The type species is N. oglala.

Palatobaena knellerorum[87]

Sp. nov

Valid

Lyson et al.

Paleocene (Danian)

Denver Formation

 United States
( Colorado)

A member of the family Baenidae.

Plastomenus joycei[88]

Sp. nov

Valid

Lyson, Petermann & Miller

Paleocene (Danian)

Denver Formation

 United States
( Colorado)

A soft-shelled turtle.

Pleurochayah[89]

Gen. et sp. nov

Valid

Adrian et al.

Late Cretaceous (Cenomanian)

Lewisville Formation

 United States
( Texas)

A member of the family Bothremydidae. The type species is P. appalachius.

Pleurosternon moncayensis[90]

Sp. nov

In press

Pérez-García et al.

Jurassic-Cretaceous transition

 Spain

Sahonachelys[91]

Gen. et sp. nov

Valid

Joyce et al.

Late Cretaceous (Maastrichtian)

Maevarano Formation

 Madagascar

A member of Pleurodira belonging to the group Pelomedusoides. The type species is S. mailakavava.

Shetwemys[82]

Gen. et comb. nov

Valid

Pérez-García

Oligocene (Rupelian)

Jebel Qatrani Formation

 Egypt

A member of the family Podocnemididae belonging to the subfamily Erymnochelyinae. The type species is "Podocnemis" fajumensis Andrews (1903).

Sindhochelys[92]

Gen. et sp. nov

Valid

Lapparent de Broin et al.

Paleocene (probably early Danian)

Khadro Formation

 Pakistan

A member of the family Bothremydidae. The type species is S. ragei.

Yakemys[93] Gen. et sp. nov Tong et al. Early Cretaceous Phu Kradung Formation  Thailand A member of Macrobaenidae. The type species is Y. multiporcata.

Research

[edit]

Archosauriformes

[edit]

Archosaurs

[edit]

Other archosauriforms

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Bharitalasuchus[119]

Gen. et sp. nov

Valid

Ezcurra, Bandyopadhyay & Gower

Middle Triassic

Yerrapalli Formation

 India

A member of the family Erythrosuchidae. The type species is B. tapani.

Heteropelta[120]

Gen. et sp. nov

Valid

Dalla Vecchia

Middle Triassic (Anisian)

Torbiditi d’Aupa Formation

 Italy

A member of Archosauriformes of uncertain phylogenetic placement, possibly a basal archosauriform, basal phytosaur or a suchian archosaur. The type species is H. boboi.

Incertovenator[121]

Gen. et sp. nov

Valid

Yáñez et al.

Late Triassic

Ischigualasto Formation

 Argentina

An archosauriform (possibly an archosaur) of uncertain phylogenetic placement. The type species is I. longicollum.

Kranosaura[122]

Gen. et sp. nov

Valid

Nesbitt et al.

Late Triassic (Norian)

Upper Maleri Formation

 India

A dome-headed archosauriform closely related to Triopticus, with which it forms the new clade Protopyknosia. The type species is K. kuttyi.

Syntomiprosopus [123]

Gen. et sp. nov

Valid

Heckert et al.

Late Triassic (Norian)

Chinle Formation

 US
( Arizona)

A short-faced archosauriform of uncertain affinity, possibly an early-diverging crocodylomorph. The type species is S. sucherorum.

Research

[edit]

Other reptiles

[edit]

New taxa

[edit]
Name Novelty Status Authors Age Type locality Location Notes Images

Balearosaurus[129]

Gen. et sp. nov

Valid

Matamales-Andreu et al.

Permian

 Spain

A moradisaurine captorhinid. Genus includes new species B. bombardensis.

Delorhynchus multidentatus[130]

Sp. nov

Rowe et al.

Permian (Cisuralian)

 United States
( Oklahoma)

Elorhynchus[131]

Gen. et sp. nov

Valid

Ezcurra et al.

Triassic (LadinianCarnian)

Chañares Formation

 Argentina

A rhynchosaur. Genus includes new species E. carrolli.

Karutia[132]

Gen. et sp. nov

Valid

Cisneros et al.

Permian (Cisuralian)

Pedra de Fogo Formation

 Brazil

A member of the family Acleistorhinidae. Genus includes new species K. fortunata.

Mengshanosaurus[133] Gen. et sp. nov Valid Meng et al. Early Cretaceous (Berriasian-Valanginian) Mengyin Formation  China A choristodere belonging to Neochoristodera, the type species is M. minimus.

Microsphenodon[134]

Gen. et sp. nov

Valid

Chambi-Trowell et al.

Late Triassic (Norian)

 Brazil

An early eusphenodontian rhynchocephalian. Genus includes new species M. bonapartei.

Oryporan[135]

Gen. et sp. nov

Valid

Pinheiro, Silva-Neves & Da-Rosa

Early Triassic

Sanga do Cabral Formation

 Brazil

A procolophonid parareptile. Genus includes new species O. insolitus.

Rhodotheratus[136]

Gen. et comb. nov

Valid

Albright, Sumida & Jung

Early Permian

Hennessey Formation

 United States
( Oklahoma)

A captorhinid. Genus includes "Captorhinikos" parvus Olson (1970).

Sphenofontis[137]

Gen. et sp. nov

Valid

Villa et al.

Late Jurassic (Kimmeridgian)

Torleite Formation

 Germany

A rhynchocephalian belonging to the family Sphenodontidae. The type species is S. velserae.

Stauromatodon[138]

Gen. et sp. nov

Valid

Sobral, Sues & Schoch

Middle Triassic (Ladinian)

Erfurt Formation

 Germany

A diapsid reptile of uncertain phylogenetic placement. Genus includes new species S. mohli.

Taytalura[139]

Gen. et sp. nov

Valid

Martínez et al.

Late Triassic

Ischigualasto Formation

 Argentina

A stem-lepidosaur. Genus includes new species T. alcoberi.

Tika[140]

Gen. et sp. nov

Valid

Apesteguía, Garberoglio & Gómez

Late Cretaceous (Cenomanian)

Candeleros Formation

 Argentina

A sphenodontine sphenodontid. Genus includes new species T. giacchinoi.

Trullidens[141]

Gen. et sp. nov

Valid

Kligman et al.

Late Triassic (Norian)

 United States
( Colorado)

A rhynchocephalian belonging to the group Opisthodontia. Genus includes new species T. purgatorii.

Vinitasaura[142]

Gen. et sp. nov

Valid

Sues & Kligman

Late Triassic (Carnian)

Vinita Formation

 United States
( Virginia)

A member of Lepidosauromorpha. Genus includes new species V. lizae.

Research

[edit]

Reptiles in general

[edit]

References

[edit]
  1. ^ Rage, J.-C.; Adaci, M.; Bensalah, M.; Mahboubi, M.; Marivaux, L.; Mebrouk, F.; Tabuce, R. (2021). "Latest Early-early Middle Eocene deposits of Algeria (Glib Zegdou, HGL50), yield the richest and most diverse fauna of amphibians and squamate reptiles from the Palaeogene of Africa" (PDF). Palæovertebrata. 44 (1): e1. doi:10.18563/pv.44.1.e1. S2CID 233892725.
  2. ^ Scarpetta, S. G. (2021). "Iguanian lizards from the Split Rock Formation, Wyoming: exploring the modernization of the North American lizard fauna". Journal of Systematic Palaeontology. 19 (3): 221–251. Bibcode:2021JSPal..19..221S. doi:10.1080/14772019.2021.1894612. S2CID 233402435.
  3. ^ Willman, A. J.; Konishi, T.; Caldwell, M. W. (2021). "A new species of Ectenosaurus (Mosasauridae: Plioplatecarpinae) from western Kansas, USA, reveals a novel suite of osteological characters for the genus". Canadian Journal of Earth Sciences. 58 (9): 741–755. Bibcode:2021CaJES..58..741W. doi:10.1139/cjes-2020-0175.
  4. ^ Scarpetta, S. G.; Ledesma, D. T.; Bell, C. J. (2021). "A new extinct species of alligator lizard (Squamata: Elgaria) and an expanded perspective on the osteology and phylogeny of Gerrhonotinae". BMC Ecology and Evolution. 21 (1): Article number 184. doi:10.1186/s12862-021-01912-8. PMC 8482661. PMID 34587907.
  5. ^ Jurestovsky, D. J. (2021). "Small Colubroids from the Late Hemphillian Gray Fossil Site of Northeastern Tennessee". Journal of Herpetology. 55 (4): 422–431. doi:10.1670/21-008. S2CID 240093403.
  6. ^ Bochaton, C.; Charles, L.; Lenoble, A. (2021). "Historical and fossil evidence of an extinct endemic species of Leiocephalus (Squamata: Leiocephalidae) from the Guadeloupe Islands" (PDF). Zootaxa. 4927 (3): 383–409. doi:10.11646/zootaxa.4927.3.4. PMID 33756701. S2CID 232337806.
  7. ^ Ikeda, T.; Ota, H.; Tanaka, T.; Ikuno, K.; Kubota, K.; Tanaka, K.; Saegusa, H. (2021). "A fossil Monstersauria (Squamata: Anguimorpha) from the Lower Cretaceous Ohyamashimo Formation of the Sasayama Group in Tamba City, Hyogo Prefecture, Japan". Cretaceous Research. 130: Article 105063. doi:10.1016/j.cretres.2021.105063. ISSN 0195-6671. S2CID 239230916.
  8. ^ Bolet, A.; Stanley, E. L.; Daza, J. D.; Arias, J. S.; Čerňanský, A.; Vidal-García, M.; Bauer, A. M.; Bevitt, J. J.; Peretti, A.; Evans, S. E. (2021). "Unusual morphology in the mid-Cretaceous lizard Oculudentavis". Current Biology. 31 (15): 3303–3314.e3. Bibcode:2021CBio...31E3303B. doi:10.1016/j.cub.2021.05.040. hdl:11336/148383. PMID 34129826.
  9. ^ Smith, K. T.; Scanferla, A. (2021). "More than one large constrictor snake lurked around paleolake Messel". Palaeontographica Abteilung A. 323 (1–3): 75–103. doi:10.1127/pala/2021/0119. S2CID 245089117.
  10. ^ a b Georgalis, G. L.; Čerňanský, A.; Klembara, J. (2021). "Osteological atlas of new lizards from the Phosphorites du Quercy (France), based on historical, forgotten, fossil material". Geodiversitas. 43 (9): 219–293. doi:10.5252/geodiversitas2021v43a9.
  11. ^ Martinelli, A. G.; Agnolín, F.; Ezcurra, M. D. (2021). "Unexpected new lizard from the Late Cretaceous of southern South America sheds light on Gondwanan squamate diversity". Revista del Museo Argentino de Ciencias Naturales. Nueva Series. 23 (1): 57–80. doi:10.22179/REVMACN.23.716. hdl:11336/167951. S2CID 243557642.
  12. ^ Smith, K. T.; Habersetzer, J. (2021). "The anatomy, phylogenetic relationships, and autecology of the carnivorous lizard "Saniwa" feisti Stritzke, 1983 from the Eocene of Messel, Germany". Comptes Rendus Palevol. 20 (23): 441–506. doi:10.5852/cr-palevol2021v20a23.
  13. ^ Georgalis, G. L.; Rabi, M.; Smith, K. T. (2021). "Taxonomic revision of the snakes of the genera Palaeopython and Paleryx (Serpentes, Constrictores) from the Paleogene of Europe". Swiss Journal of Palaeontology. 140 (1): Article 18. Bibcode:2021SwJP..140...18G. doi:10.1186/s13358-021-00224-0.
  14. ^ Longrich, N. R.; Bardet, N.; Khaldoune, F.; Khadiri Yazami, O.; Jalil, N.-E. (2021). "Pluridens serpentis, a new mosasaurid (Mosasauridae: Halisaurinae) from the Maastrichtian of Morocco and implications for mosasaur diversity" (PDF). Cretaceous Research. 126: Article 104882. Bibcode:2021CrRes.12604882L. doi:10.1016/j.cretres.2021.104882.
  15. ^ Thorn, K. M.; Hutchinson, M. N.; Lee, M. S. Y.; Brown, N. J.; Camens, A. B.; Worthy, T. H. (2021). "A new species of Proegernia from the Namba Formation in South Australia and the early evolution and environment of Australian egerniine skinks". Royal Society Open Science. 8 (2): 201686. Bibcode:2021RSOS....801686T. doi:10.1098/rsos.201686. ISSN 2054-5703. PMC 8074667. PMID 33972861.
  16. ^ Wagner, P.; Stanley, E. L.; Daza, J. D.; Bauer, A. M. (2021). "A new agamid lizard in mid-Cretaceous amber from northern Myanmar". Cretaceous Research. 124: Article 104813. Bibcode:2021CrRes.12404813W. doi:10.1016/j.cretres.2021.104813. S2CID 233704307.
  17. ^ Smith, K. T.; Scanferla, A. (2021). "A nearly complete skeleton of the oldest definitive erycine boid (Messel, Germany)". Geodiversitas. 43 (1): 1–24. doi:10.5252/geodiversitas2021v43a1.
  18. ^ Suarez, C. A.; Frederickson, J.; Cifelli, R. L.; Pittman, J. G.; Nydam, R. L.; Hunt-Foster, R. K.; Morgan, K. (2021). "A new vertebrate fauna from the Lower Cretaceous Holly Creek Formation of the Trinity Group, southwest Arkansas, USA". PeerJ. 9: e12242. doi:10.7717/peerj.12242. PMC 8542373. PMID 34721970.
  19. ^ Longrich, N. R.; Bardet, N.; Schulp, A. S.; Jalil, N.-E. (2021). "Xenodens calminechari gen. et sp. nov., a bizarre mosasaurid (Mosasauridae, Squamata) with shark-like cutting teeth from the upper Maastrichtian of Morocco, North Africa" (PDF). Cretaceous Research. 123: Article 104764. Bibcode:2021CrRes.12304764L. doi:10.1016/j.cretres.2021.104764. hdl:1874/418727. S2CID 233567615.
  20. ^ Sharpe, H. S.; Powers, M. J.; Caldwell, M. W. (2024). "Reassessment of Xenodens calminechari with a discussion of tooth morphology in mosasaurs". The Anatomical Record. doi:10.1002/ar.25612.
  21. ^ Lafuma, F.; Corfe, I. J.; Clavel, J.; Di-Poï, N. (2021). "Multiple evolutionary origins and losses of tooth complexity in squamates". Nature Communications. 12 (1): Article number 6001. Bibcode:2021NatCo..12.6001L. doi:10.1038/s41467-021-26285-w. PMC 8516937. PMID 34650041.
  22. ^ Herrera-Flores, J. A.; Stubbs, T. L.; Benton, M. J. (2021). "Ecomorphological diversification of squamates in the Cretaceous". Royal Society Open Science. 8 (3): Article ID 201961. Bibcode:2021RSOS....801961H. doi:10.1098/rsos.201961. PMC 8074880. PMID 33959350.
  23. ^ Gere, K.; Bodor, E. R.; Makádi, L.; Ősi, A. (2021). "Complex food preference analysis of the Late Cretaceous (Santonian) lizards from Iharkút (Bakony Mountains, Hungary)". Historical Biology: An International Journal of Paleobiology. 33 (12): 3686–3702. Bibcode:2021HBio...33.3686G. doi:10.1080/08912963.2021.1887862. S2CID 233961106.
  24. ^ Villaseñor-Amador, D.; Suárez, N. X.; Cruz, J. A. (2021). "Bipedalism in Mexican Albian lizard (Squamata) and the locomotion type in other Cretaceous lizards". Journal of South American Earth Sciences. 109: Article 103299. Bibcode:2021JSAES.10903299V. doi:10.1016/j.jsames.2021.103299. S2CID 233526155.
  25. ^ Augé, M. L.; Dion, M.; Phélizon, A. (2021). "The lizard (Reptilia, Squamata) assemblage from the Paleocene of Montchenot (Paris Basin, MP6)". Geodiversitas. 43 (17): 645–661. doi:10.5252/geodiversitas2021v43a17. S2CID 237537775.
  26. ^ Čerňanský, A.; Singh, N. P.; Patnaik, R.; Sharma, K. M.; Tiwari, R. P.; Sehgal, R. K.; Singh, N. A.; Choudhary, D. (2021). "The Miocene fossil lizards from Kutch (Gujarat), India: a rare window to the past diversity of this subcontinent". Journal of Paleontology. 96: 213–223. doi:10.1017/jpa.2021.85. S2CID 239688746.
  27. ^ Georgalis, G. L.; Scheyer, T. M. (2021). "Lizards and snakes from the earliest Miocene of Saint-Gérand-le-Puy, France: an anatomical and histological approach of some of the oldest Neogene squamates from Europe". BMC Ecology and Evolution. 21 (1): Article number 144. doi:10.1186/s12862-021-01874-x. PMC 8278609. PMID 34256702.
  28. ^ Bochaton, C.; Paradis, E.; Bailon, S.; Grouard, S.; Ineich, I.; Lenoble, A.; Lorvelec, O.; Tresset, A.; Boivin, N. (2021). "Large-scale reptile extinctions following European colonization of the Guadeloupe Islands". Science Advances. 7 (21): eabg2111. Bibcode:2021SciA....7.2111B. doi:10.1126/sciadv.abg2111. PMC 8133755. PMID 34138736.
  29. ^ Scarsbrook, L.; Sherratt, E.; Hitchmough, R. A.; Rawlence, N. J. (2021). "Skeletal variation in extant species enables systematic identification of New Zealand's large, subfossil diplodactylids". BMC Ecology and Evolution. 21 (1): Article number 67. doi:10.1186/s12862-021-01808-7. PMC 8080345. PMID 33906608.
  30. ^ Wencker, L. C. M.; Tschopp, E.; Villa, A.; Augé, M. L.; Delfino, M. (2021). "Phylogenetic value of jaw elements of lacertid lizards (Squamata: Lacertoidea): a case study with Oligocene material from France". Cladistics. 37 (6): 765–802. doi:10.1111/cla.12460. hdl:2318/1824383. PMID 34841590.
  31. ^ Tschopp, E.; Napoli, J. G.; Wencker, L. C. M.; Delfino, M.; Upchurch, P. (2021). "How to Render Species Comparable Taxonomic Units Through Deep Time: a Case Study on Intraspecific Osteological Variability in Extant and Extinct Lacertid Lizards". Systematic Biology. 71 (4): 875–900. doi:10.1093/sysbio/syab078. PMID 34605923.
  32. ^ Palacios-García, S.; Cruzado-Caballero, P.; Casillas, R.; Castillo Ruiz, C. (2021). "Quaternary biodiversity of the giant fossil endemic lizards from the island of El Hierro (Canary Islands, Spain)". Quaternary Science Reviews. 262: Article 106961. Bibcode:2021QSRv..26206961P. doi:10.1016/j.quascirev.2021.106961. S2CID 236302752.
  33. ^ Cabezuelo Hernández, T.; Bolet, A.; Torices, A.; Pérez-García, A. (2021). "Identification of a large anguimorph lizard (Reptilia, Squamata) by an articulated hindlimb from the upper Maastrichtian (Upper Cretaceous) of Basturs-1 (Lleida, Spain)". Cretaceous Research. 131: Article 105094. doi:10.1016/j.cretres.2021.105094. ISSN 0195-6671. S2CID 244352137.
  34. ^ Caldwell, M. W.; Simões, T. R.; Palci, A.; Garberoglio, F. F.; Reisz, R. R.; Lee, M. S. Y.; Nydam, R. L. (2021). "Tetrapodophis amplectus is not a snake: re-assessment of the osteology, phylogeny and functional morphology of an Early Cretaceous dolichosaurid lizard". Journal of Systematic Palaeontology. 19 (13): 893–952. Bibcode:2021JSPal..19..893C. doi:10.1080/14772019.2021.1983044. S2CID 244414151.
  35. ^ Jiménez-Huidobro, P.; López-Conde, O. A.; Chavarría-Arellano, M. L.; Porras-Múzquiz, H. (2021). "A yaguarasaurine mosasauroid from the upper Cenomanian−lower Turonian of Coahuila, northern Mexico". Journal of Vertebrate Paleontology. 41 (3): e1986516. Bibcode:2021JVPal..41E6516J. doi:10.1080/02724634.2021.1986516. S2CID 244281080.
  36. ^ Bardet, N.; Desmares, D.; Sánchez-Pellicer, R.; Gardin, S. (2021). "Rediscovery of "Liodon" asiaticum Répelin, 1915, a Mosasaurini (Squamata, Mosasauridae, Mosasaurinae) from the Upper Cretaceous of the vicinity of Jerusalem – Biostratigraphical insights from microfossils". Comptes Rendus Palevol. 20 (20): 351–372. doi:10.5852/cr-palevol2021v20a20.
  37. ^ Travis Taylor, L.; Minzoni, R. T.; Suarez, C. A.; Gonzalez, L. A.; Martin, L. D.; Lambert, W. J.; Ehret, D. J.; Harrell, T. L. (2021). "Oxygen isotopes from the teeth of Cretaceous marine lizards reveal their migration and consumption of freshwater in the Western Interior Seaway, North America". Palaeogeography, Palaeoclimatology, Palaeoecology. 573: Article 110406. Bibcode:2021PPP...57310406T. doi:10.1016/j.palaeo.2021.110406. S2CID 234799487.
  38. ^ Kato, T.; Nakajima, Y.; Shiseki, K.; Ando, H. (2021). "Advanced mosasaurs from the Upper Cretaceous Nakaminato Group in Japan". Island Arc. 30 (1). e12431. Bibcode:2021IsArc..30E2431K. doi:10.1111/iar.12431. S2CID 240303333.
  39. ^ Van Vranken, N. E.; Boyd, C. A. (2021). "The first in situ collection of a mosasaurine from the marine Breien Member of the Hell Creek Formation in south-central North Dakota, USA". PaleoBios. 38: ucmp_paleobios_54460.
  40. ^ Klein, C. G.; Pisani, D.; Field, D. J.; Lakin, R.; Wills, M. A.; Longrich, N. R. (2021). "Evolution and dispersal of snakes across the Cretaceous-Paleogene mass extinction". Nature Communications. 12 (1): Article number 5335. Bibcode:2021NatCo..12.5335K. doi:10.1038/s41467-021-25136-y. PMC 8440539. PMID 34521829.
  41. ^ Georgalis, G. L.; Guinot, G.; Kassegne, K. E.; Amoudji, Y. Z.; Johnson, A. K. C.; Cappetta, H.; Hautier, L. (2021). "An assemblage of giant aquatic snakes (Serpentes, Palaeophiidae) from the Eocene of Togo". Swiss Journal of Palaeontology. 140 (1): Article 20. Bibcode:2021SwJP..140...20G. doi:10.1186/s13358-021-00236-w.
  42. ^ Syromyatnikova, E.; Tesakov, A.; Titov, V. (2021). "Naja romani (Hoffstetter, 1939) (Serpentes: Elapidae) from the late Miocene of the Northern Caucasus: the last East European large cobra". Geodiversitas. 43 (19): 683–689. doi:10.5252/geodiversitas2021v43a19. S2CID 238231298.
  43. ^ Biton, R.; Bailon, S. (2021). "An African adder (Bitis arietans complex) at Qafzeh Cave, Israel, during the early Late Pleistocene (MIS 5) record". Journal of Quaternary Science. in press. doi:10.1002/jqs.3402. S2CID 245159565.
  44. ^ Zverkov, N. G.; Grigoriev, D. V.; Wolniewicz, A. S.; Konstantinov, A. G.; Sobolev, E. S. (2021). "Ichthyosaurs from the Upper Triassic (Carnian–Norian) of the New Siberian Islands, Russian Arctic, and their implications for the evolution of the ichthyosaurian basicranium and vertebral column". Earth and Environmental Science Transactions of the Royal Society of Edinburgh. 113: 51–74. doi:10.1017/S1755691021000372. S2CID 245153589.
  45. ^ Fernández, M. S.; Campos, L.; Maxwell, E. E.; Garrido, A. C. (2021). "Catutosaurus gaspariniae, gen. et sp. nov. (Ichthyosauria, Thunnosauria) of the Upper Jurassic of Patagonia and the evolution of the ophthalmosaurids". Journal of Vertebrate Paleontology. 41 (1): e1922427. Bibcode:2021JVPal..41E2427F. doi:10.1080/02724634.2021.1922427. S2CID 236312664.
  46. ^ Sander, P. M.; Griebeler, E. M.; Klein, N.; Velez Juarbe, J.; Wintrich, T.; Revell, L. J.; Schmitz, L. (2021). "Early giant reveals faster evolution of large body size in ichthyosaurs than in cetaceans". Science. 374 (6575): eabf5787. doi:10.1126/science.abf5787. PMID 34941418. S2CID 245444783.
  47. ^ Болатовна, Якупова Джамиля; Максутович, Ахмеденов Кажмурат (2021). "НОВЫЙ ВИД KAZAKHSTANOSAURUS EFIMOVI YAKUPOVA ET AKHMEDENOV SP. NOV. (ICHTHYOSAURIA, UNDOROSAURIDAE) ИЗ ВЕРХНЕЮРСКИХ ОТЛОЖЕНИЙ СРЕДНЕГО ПОВОЛЖЬЯ РОССИИ". Ученые записки Казанского университета. Серия Естественные науки. 163 (2): 251–263. ISSN 2542-064X.
  48. ^ Cortés, Dirley; Maxwell, Erin E.; Larsson, Hans C. E. (2021-11-22). "Re-appearance of hypercarnivore ichthyosaurs in the Cretaceous with differentiated dentition: revision of 'Platypterygius' sachicarum (Reptilia: Ichthyosauria, Ophthalmosauridae) from Colombia". Journal of Systematic Palaeontology. 19 (14): 969–1002. Bibcode:2021JSPal..19..969C. doi:10.1080/14772019.2021.1989507. ISSN 1477-2019. S2CID 244512087.
  49. ^ Barrientos-Lara, J. I.; Alvarado-Ortega, J. (2021). "A new ophthalmosaurid (Ichthyosauria) from the Upper Kimmeridgian deposits of the La Casita formation, near Gómez Farías, Coahuila, northern Mexico". Journal of South American Earth Sciences. 111: Article 103499. Bibcode:2021JSAES.11103499B. doi:10.1016/j.jsames.2021.103499.
  50. ^ Barrientos-Lara, J. I.; Alvarado-Ortega, J. (2021). "A new Tithonian ophthalmosaurid ichthyosaur from Coahuila in northeastern Mexico". Alcheringa: An Australasian Journal of Palaeontology. 45 (2): 203–216. Bibcode:2021Alch...45..203B. doi:10.1080/03115518.2021.1922755. S2CID 236270217.
  51. ^ Campos, L.; Fernández, M. S.; Herrera, Y.; Garrido, A. (2021). "Morphological disparity in the evolution of the ophthalmosaurid forefin: new clues from the Upper Jurassic of Argentina". Papers in Palaeontology. 7 (4): 1995–2020. Bibcode:2021PPal....7.1995C. doi:10.1002/spp2.1374. S2CID 237770509.
  52. ^ Yin, Y.; Ji, C.; Zhou, M. (2021). "The anatomy of the palate in Early Triassic Chaohusaurus brevifemoralis (Reptilia: Ichthyosauriformes) based on digital reconstruction". PeerJ. 9: e11727. doi:10.7717/peerj.11727. PMC 8269639. PMID 34268013.
  53. ^ Bindellini, G.; Wolniewicz, A. S.; Miedema, F.; Scheyer, T. M.; Dal Sasso, C. (2021). "Cranial anatomy of Besanosaurus leptorhynchus Dal Sasso & Pinna, 1996 (Reptilia: Ichthyosauria) from the Middle Triassic Besano Formation of Monte San Giorgio, Italy/Switzerland: taxonomic and palaeobiological implications". PeerJ. 9: e11179. doi:10.7717/peerj.11179. PMC 8106916. PMID 33996277.
  54. ^ Martin, J. E.; Suan, G.; Suchéras-Marx, B.; Rulleau, L.; Schlögl, J.; Janneau, K.; Williams, M.; Léna, A.; Grosjean, A.-S.; Sarroca, E.; Perrier, V.; Fernandez, V.; Charruault, A.-L.; Maxwell, E. E.; Vincent, P. (2021). "Stenopterygiids from the lower Toarcian of Beaujolais and a chemostratigraphic context for ichthyosaur preservation during the Toarcian Oceanic Anoxic Event". In M. Reolid; L. V. Duarte; E. Mattioli; W. Ruebsam (eds.). Carbon Cycle and Ecosystem Response to the Jenkyns Event in the Early Toarcian (Jurassic) (PDF). Vol. 514. The Geological Society of London. pp. 153–172. doi:10.1144/SP514-2020-232. S2CID 240424255. {{cite book}}: |journal= ignored (help)
  55. ^ Sousa, J.; Mateus, O. (2021). "The southernmost occurrence of Ichthyosaurus from the Sinemurian of Portugal". Fossil Record. 24 (2): 287–294. Bibcode:2021FossR..24..287S. doi:10.5194/fr-24-287-2021. hdl:10362/131844.
  56. ^ Massare, J. A.; Wahl, W. R.; Lomax, D. R. (2021). "Narial structures in Ichthyosaurus and other Early Jurassic ichthyosaurs as precursors to a completely subdivided naris". Paludicola. 13 (2): 128–139.
  57. ^ Campos, L.; Fernández, M. S.; Herrera, Y.; Talevi, M.; Concheyro, A.; Gouiric-Cavalli, S.; O'Gorman, J. P.; Santillana, S. N.; Acosta-Burlaille, L.; Moly, J. J.; Reguero, M. A. (2021). "Bridging the southern gap: First definitive evidence of Late Jurassic ichthyosaurs from Antarctica and their dispersion routes". Journal of South American Earth Sciences. 109: Article 103259. Bibcode:2021JSAES.10903259C. doi:10.1016/j.jsames.2021.103259. ISSN 0895-9811. S2CID 233714015.
  58. ^ Vakil, V.; Webb, G. E.; Cook, A. G. (2021). "Can vertebral remains differentiate more than one species of Australian Cretaceous ichthyosaur?". Alcheringa: An Australasian Journal of Palaeontology. 44 (4): 537–554. doi:10.1080/03115518.2020.1853809. S2CID 231875679.
  59. ^ a b Noè, L. F.; Gómez-Pérez, M. (2021). "Giant pliosaurids (Sauropterygia; Plesiosauria) from the Lower Cretaceous peri-Gondwanan seas of Colombia and Australia". Cretaceous Research. 132: Article 105122. doi:10.1016/j.cretres.2021.105122.
  60. ^ Fischer, Valentin; Benson, Roger B J; Zverkov, Nikolay G; Arkhangelsky, Maxim S; Stenshin, Ilya M; Uspensky, Gleb N; Prilepskaya, Natalya E (2023-03-15). "Anatomy and relationships of the bizarre Early Cretaceous pliosaurid Luskhan itilensis". Zoological Journal of the Linnean Society. 198 (1): 220–256. doi:10.1093/zoolinnean/zlac108. ISSN 0024-4082.
  61. ^ Poropat, Stephen F.; Bell, Phil R.; Hart, Lachlan J.; Salisbury, Steven W.; Kear, Benjamin P. (2023-04-03). "An annotated checklist of Australian Mesozoic tetrapods". Alcheringa: An Australasian Journal of Palaeontology. 47 (2): 129–205. doi:10.1080/03115518.2023.2228367. hdl:20.500.11937/96166. ISSN 0311-5518.
  62. ^ Campbell, J. A.; Mitchell, M. T.; Ryan, M. J.; Anderson, J. S. (2021). "A new elasmosaurid (Sauropterygia: Plesiosauria) from the non-marine to paralic Dinosaur Park Formation of southern Alberta, Canada". PeerJ. 9: e10720. doi:10.7717/peerj.10720. PMC 7882142. PMID 33614274.
  63. ^ Puértolas-Pascual, E.; Marx, M.; Mateus, O.; Saleiro, A.; Fernandes, A. E.; Marinheiro, J.; Tomás, C.; Mateus, S. (2021). "A new plesiosaur from the Lower Jurassic of Portugal and the early radiation of Plesiosauroidea". Acta Palaeontologica Polonica. 66 (2): 369–388. doi:10.4202/app.00815.2020. hdl:10362/123694.
  64. ^ Qin, Yanjiao; He, Xiao; Luo, Yongming; Hu, Xinrui; Jiang, Liangbing; Deng, Xiaojie; Shi, Zhenhua; Ran, Weiyu (2021). "A New Species of Wumengosaurus from Panxian Fauna in Middle Triassic of Guizhou Province". Guizhou Geology (in Literary Chinese). 38 (4): 373–381. doi:10.3969/j.issn.1000-5943.2021.04.004. ISSN 1000-5943.
  65. ^ Pommery, Y.; Scheyer, T. M.; Neenan, J. M.; Reich, T.; Fernandez, V.; Voeten, D. F. A. E.; Losko, A. S.; Werneburg, I. (2021). "Dentition and feeding in Placodontia: tooth replacement in Henodus chelyops". BMC Ecology and Evolution. 21 (1): Article number 136. doi:10.1186/s12862-021-01835-4. PMC 8256584. PMID 34225664.
  66. ^ Spiekman, S. N. F.; Klein, N. (2021). "An enigmatic lower jaw from the Lower Muschelkalk (Anisian, Middle Triassic) of Winterswijk provides insights into dental configuration, tooth replacement and histology". Netherlands Journal of Geosciences. 100: e17. Bibcode:2021NJGeo.100E..17S. doi:10.1017/njg.2021.12.
  67. ^ Klein, N.; Surmik, D. (2021). "Bone histology of eosauropterygian diapsid Proneusticosaurus silesiacus from the Middle Triassic of Poland reveals new insights into taxonomic affinities". Acta Palaeontologica Polonica. 66 (3): 585–598. doi:10.4202/app.00850.2020.
  68. ^ Lin, W.-B.; Jiang, D.-Y.; Rieppel, O.; Motani, R.; Tintori, A.; Sun, Z.-Y.; Zhou, M. (2021). "Panzhousaurus rotundirostris Jiang et al., 2019 (Diapsida: Sauropterygia) and the Recovery of the Monophyly of Pachypleurosauridae". Journal of Vertebrate Paleontology. 41 (1): e1901730. Bibcode:2021JVPal..41E1730L. doi:10.1080/02724634.2021.1901730. S2CID 234853964.
  69. ^ Liu, Q.; Yang, T.; Cheng, L.; Benton, M. J.; Moon, B. C.; Yan, C.; An, Z.; Tian, L. (2021). "An injured pachypleurosaur (Diapsida: Sauropterygia) from the Middle Triassic Luoping Biota indicating predation pressure in the Mesozoic". Scientific Reports. 11 (1): Article number 21818. Bibcode:2021NatSR..1121818L. doi:10.1038/s41598-021-01309-z. PMC 8575933. PMID 34750442.
  70. ^ Poblete-Huanca, Andrea; Suárez, Manuel; Rubilar-Rogers, David; Gressier, Jean Baptiste; Arraño, Constanza; Ormazábal, Matías (2021). "First record of a Lower Cretaceous (Hauterivian) plesiosaur from Chile". Cretaceous Research. 128: Article number 104963. Bibcode:2021CrRes.12804963P. doi:10.1016/j.cretres.2021.104963. ISSN 0195-6671.
  71. ^ Bastiaans, D.; Madzia, D.; Carrillo-Briceño, J. D.; Sachs, S. (2021). "Equatorial pliosaurid from Venezuela marks the youngest South American occurrence of the clade". Scientific Reports. 11 (1): Article number 15501. Bibcode:2021NatSR..1115501B. doi:10.1038/s41598-021-94515-8. PMC 8322105. PMID 34326353.
  72. ^ Krahl, A.; Witzel, U. (2021). "Foreflipper and hindflipper muscle reconstructions of Cryptoclidus eurymerus in comparison to functional analogues: introduction of a myological mechanism for flipper twisting". PeerJ. 9: e12537. doi:10.7717/peerj.12537. PMC 8684327. PMID 35003916.
  73. ^ Vakil, V.; Webb, G.; Cook, A. (2021). "Taxonomic utility of Early Cretaceous Australian plesiosaurian vertebrae". Palaeontologia Electronica. 24 (3): Article number 24.3.a30. doi:10.26879/1095.
  74. ^ Marx, M. P.; Mateus, O.; Polcyn, M. J.; Schulp, A. S.; Gonçalves, A. O.; Jacobs, L. L. (2021). "The cranial anatomy and relationships of Cardiocorax mukulu (Plesiosauria: Elasmosauridae) from Bentiaba, Angola". PLOS ONE. 16 (8): e0255773. Bibcode:2021PLoSO..1655773M. doi:10.1371/journal.pone.0255773. PMC 8370651. PMID 34403433.
  75. ^ Sachs, S.; Lindgren, J.; Madzia, D.; Kear, B. P. (2021). "Cranial osteology of the mid-Cretaceous elasmosaurid Thalassomedon haningtoni from the Western Interior Seaway of North America". Cretaceous Research. 123: Article 104769. Bibcode:2021CrRes.12304769S. doi:10.1016/j.cretres.2021.104769. S2CID 234055157.
  76. ^ O’Gorman, J. P.; Aspromonte, F.; Reguero, M. (2021). "New data on one of the first plesiosaur (Reptilia, Sauropterygia) skeletons recovered from Antarctica, with comments on the dorsal sacral and regions of elasmosaurids". Alcheringa: An Australasian Journal of Palaeontology. 45 (3): 354–368. doi:10.1080/03115518.2021.1958378. S2CID 239679057.
  77. ^ O'Gorman, J. P.; Otero, R. A.; Hiller, N.; O'Keefe, R. F.; Scofield, R. P.; Fordyce, E. (2021). "CT-scan description of Alexandronectes zealandiensis (Elasmosauridae, Aristonectinae), with comments on the elasmosaurid internal cranial features". Journal of Vertebrate Paleontology. 41 (2): e1923310. Bibcode:2021JVPal..41E3310O. doi:10.1080/02724634.2021.1923310. S2CID 237518012.
  78. ^ O’Gorman, J. P. (2021). "The most complete specimen of Kawanectes lafquenianum (Sauropterygia, Plesiosauria): new data on basicranial anatomy and possible sexual dimorphism in elasmosaurids". Cretaceous Research. 125: Article 104836. Bibcode:2021CrRes.12504836O. doi:10.1016/j.cretres.2021.104836.
  79. ^ Talevi, M.; Rothschild, B. M.; Mitidieri, M.; Fernández, M. S. (2021). "Infectious spondylitis with pathology mimicking that of tuberculosis in a cervical vertebra of a plesiosaur from the Upper Cretaceous of Patagonia, Argentina". Cretaceous Research. 128: Article 104982. Bibcode:2021CrRes.12804982T. doi:10.1016/j.cretres.2021.104982.
  80. ^ Hirayama*, Ren; Sonoda, Teppei; Uno, Hikaru; Horie, Kenji; Tsutsumi, Yukiyasu; Sasaki, Kazuhisa; Takisawa, Shunsuke Mitsuzuka and Toshio (2021). "Adocus Kohaku, A New Species of Aquatic Turtle (Testudines: Cryptodira: Adocidae) from the Late Cretaceous of Kuji, Iwate Prefecture, Northeast Japan, with Special References to the Geological Age of the Tamagawa Formation (Kuji Group) LSID urn:lsid:zoobank.org:act:61376EEE-A386-416E-98AE-FF64FE2597A2". International Journal of Paleobiology & Paleontology. 4 (1).
  81. ^ Pérez-García, A. (2021-02-01). "A new bothremydid turtle (Pleurodira) from the Upper Cretaceous (Cenomanian) of Madagascar". Cretaceous Research. 118: 104645. Bibcode:2021CrRes.11804645P. doi:10.1016/j.cretres.2020.104645. ISSN 0195-6671. S2CID 225033660.
  82. ^ a b Pérez-García, A. (2021). "New shell information and new generic attributions for the Egyptian podocnemidid turtles "Podocnemis" fajumensis (Oligocene) and "Podocnemis" aegyptiaca (Miocene)". Fossil Record. 24 (2): 247–262. Bibcode:2021FossR..24..247P. doi:10.5194/fr-24-247-2021.
  83. ^ Agnolin, F. L. (2021). "A New Tortoise from the Pleistocene of Argentina with Comments on the Extinction of Late Pleistocene Tortoises and Plant Communities". Paleontological Journal. 55 (8): 913–922. Bibcode:2021PalJ...55..913A. doi:10.1134/S0031030121080037. S2CID 245330393.
  84. ^ Maniel, I.J.; de la Fuente, M. S.; Zhuo, J.I. (2021). "The first Cearachelyini (Pelomedusoides, Bothremydidae) turtle from the Upper Cretaceous of Patagonia, and an overview of the occurrence and diversity of Pelomedusoides in Patagonia". Cretaceous Research. 125: Article 104869. Bibcode:2021CrRes.12504869M. doi:10.1016/j.cretres.2021.104869.
  85. ^ de Lapparent de Broin, F.; Breton, G.; Rioult, M. (2021). "Mesozoic turtles from Le Havre (France), review, definition of Globochelus lennieri n. g. n. sp. and new data on Tropidemys langii, Plesiochelyidae". Annales de Paléontologie. 107 (1): Article 102447. doi:10.1016/j.annpal.2020.102447. S2CID 234139698.
  86. ^ Bourque, J. R. (2021). "A new geoemydid (Testudines, aff. Rhinoclemmydinae) from the upper Eocene Chadron Formation (White River Group) of northwestern Nebraska" (PDF). Bulletin of the Florida Museum of Natural History. 58 (5): 86–101. doi:10.58782/flmnh.nlkv7912.
  87. ^ Lyson, T. R.; Petermann, H.; Toth, N.; Bastien, S.; Miller, I. M. (2021). "A new baenid turtle, Palatobaena knellerorum sp. nov., from the lower Paleocene (Danian) Denver Formation of south-central Colorado, U.S.A.". Journal of Vertebrate Paleontology. 41 (2): e1925558. Bibcode:2021JVPal..41E5558L. doi:10.1080/02724634.2021.1925558. S2CID 237518055.
  88. ^ Lyson, T. R.; Petermann, H.; Miller, I. M. (2021). "A new plastomenid trionychid turtle, Plastomenus joycei, sp. nov., from the earliest Paleocene (Danian) Denver Formation of south-central Colorado, U.S.A.". Journal of Vertebrate Paleontology. 41 (1): e1913600. Bibcode:2021JVPal..41E3600L. doi:10.1080/02724634.2021.1913600. ISSN 0272-4634. S2CID 236335666.
  89. ^ Adrian, B.; Smith, H. F.; Noto, C. R.; Grossman, A. (2021). "An early bothremydid from the Arlington Archosaur Site of Texas". Scientific Reports. 11 (1): Article number 9555. Bibcode:2021NatSR..11.9555A. doi:10.1038/s41598-021-88905-1. PMC 8137945. PMID 34017016.
  90. ^ Pérez-García, A.; Martín-Jiménez, M.; Aurell, M.; Canudo, J.I.; Casternera, D. (2021). "A new Iberian pleurosternid (Jurassic-Cretaceous transition, Spain) and first neuroanatomical study of this clade of stem turtles". Historical Biology: An International Journal of Paleobiology. 34 (2): 298–311. doi:10.1080/08912963.2021.1910818. S2CID 234822940.
  91. ^ Joyce, W. G.; Rollot, Y.; Evers, S. W.; Lyson, T. R.; Rahantarisoa, L. J.; Krause, D. W. (2021). "A new pelomedusoid turtle, Sahonachelys mailakavava, from the Late Cretaceous of Madagascar provides evidence for convergent evolution of specialized suction feeding among pleurodires". Royal Society Open Science. 8 (5): Article ID 210098. Bibcode:2021RSOS....810098J. doi:10.1098/rsos.210098. PMC 8097199. PMID 34035950.
  92. ^ de Lapparent de Broin, F.; Métais, G.; Bartolini, A.; Brohi, I. A.; Lashari, R. A.; Marivaux, L.; Merle, D.; Warar, M. A.; Solangi, S. H. (2021). "First report of a bothremydid turtle, Sindhochelys ragei n. gen., n. sp., from the early Paleocene of Pakistan, systematic and palaeobiogeographic implications". Geodiversitas. 43 (25): 1341–1363. doi:10.5252/geodiversitas2021v43a25. S2CID 245220767.
  93. ^ Tong, Haiyan; Chanthasit, Phornphen; Naksri, Wilailuck; Ditbanjong, Pitaksit; Suteethorn, Suravech; Buffetaut, Eric; Suteethorn, Varavudh; Wongko, Kamonlak; Deesri, Uthumporn; Claude, Julien (December 2021). "Yakemys multiporcata n. g. n. sp., a Large Macrobaenid Turtle from the Basal Cretaceous of Thailand, with a Review of the Turtle Fauna from the Phu Kradung Formation and Its Stratigraphical Implications". Diversity. 13 (12): 630. doi:10.3390/d13120630.
  94. ^ Cordero, G. A.; Vlachos, E. (2021). "Reduction, reorganization and stasis in the evolution of turtle shell elements". Biological Journal of the Linnean Society. 134 (4): 892–911. doi:10.1093/biolinnean/blab122.
  95. ^ Dudgeon, T. W.; Livius, M. C. H.; Alfonso, N.; Tessier, S.; Mallon, J. C. (2021). "A new model of forelimb ecomorphology for predicting the ancient habitats of fossil turtles". Ecology and Evolution. 11 (23): 17071–17079. Bibcode:2021EcoEv..1117071D. doi:10.1002/ece3.8345. PMC 8668755. PMID 34938493.
  96. ^ Lichtig, A. J.; Lucas, S. G. (2021). "Chinlechelys from the Upper Triassic of New Mexico, USA, and the origin of turtles". Palaeontologia Electronica. 24 (1): Article number 24.1.a13. doi:10.26879/886.
  97. ^ Sena, M. V. A.; Bantim, R. A. M.; Saraiva, A. A. F.; Sayão, J. M.; Oliveira, G. R. (2021). "Shell and long-bone histology, skeletochronology, and lifestyle of Araripemys barretoi (Testudines: Pleurodira), a side-necked turtle of the Lower Cretaceous from Brazil". Anais da Academia Brasileira de Ciências. 93 (Suppl. 2): e20201606. doi:10.1590/0001-3765202120201606. PMID 34378648. S2CID 236979010.
  98. ^ Pérez-García, A.; Ortega, F.; Murelaga, X. (2021). "Iberoccitanemys atlanticum (Lapparent de Broin & Murelaga, 1996) n. comb.: new data on the diversity and paleobiogeographic distributions of the Campanian-Maastrichtian bothremydid turtles of Europe". Comptes Rendus Palevol. 20 (32): 667–676. doi:10.5852/cr-palevol2021v20a32. S2CID 238704135.
  99. ^ Martín-Jiménez, M.; Pérez-García, A. (2021). "Neuroanatomical Study and Three-Dimensional Reconstruction of the Skull of a Bothremydid Turtle (Pleurodira) Based on the European Eocene Tartaruscola teodorii". Diversity. 13 (7): Article 298. doi:10.3390/d13070298.
  100. ^ Cadena, E.-A.; Link, A.; Cooke, S. B.; Stroik, L. K.; Vanegas, A. F.; Tallman, M. (2021). "New insights on the anatomy and ontogeny of the largest extinct freshwater turtles". Heliyon. 7 (12): e08591. Bibcode:2021Heliy...708591C. doi:10.1016/j.heliyon.2021.e08591. PMC 8717240. PMID 35005268.
  101. ^ Rollot, Y.; Evers, S. W.; Joyce, W. G. (2021). "A redescription of the Late Jurassic (Tithonian) turtle Uluops uluops and a new phylogenetic hypothesis of Paracryptodira". Swiss Journal of Palaeontology. 140 (1): Article 23. Bibcode:2021SwJP..140...23R. doi:10.1186/s13358-021-00234-y. PMC 8550081. PMID 34721284.
  102. ^ Evers, S. W.; Rollot, Y.; Joyce, W. G. (2021). "New interpretation of the cranial osteology of the Early Cretaceous turtle Arundelemys dardeni (Paracryptodira) based on a CT-based re-evaluation of the holotype". PeerJ. 9: e11495. doi:10.7717/peerj.11495. PMC 8174147. PMID 34131522.
  103. ^ Guerrero, A.; Pérez-García, A. (2021). "Morphological variability and shell characterization of the European uppermost Jurassic to lowermost Cretaceous stem turtle Pleurosternon bullockii (Paracryptodira, Pleurosternidae)". Cretaceous Research. 125: Article 104872. Bibcode:2021CrRes.12504872G. doi:10.1016/j.cretres.2021.104872.
  104. ^ Guerrero, A.; Pérez-García, A. (2021). "Ontogenetic development of the European basal aquatic turtle Pleurosternon bullockii (Paracryptodira, Pleurosternidae)". Fossil Record. 24 (2): 357–377. Bibcode:2021FossR..24..357G. doi:10.5194/fr-24-357-2021.
  105. ^ Pérez-García, A.; Ortega, F. (2021). "New finds of the turtle Plesiochelys in the Upper Jurassic of Portugal and evaluation of its diversity in the Iberian Peninsula". Historical Biology: An International Journal of Paleobiology. 34: 121–129. doi:10.1080/08912963.2021.1903000. S2CID 234877934.
  106. ^ Joyce, W. G.; Mäuser, M.; Evers, S. W. (2021). "Two turtles with soft tissue preservation from the platy limestones of Germany provide evidence for marine flipper adaptations in Late Jurassic thalassochelydians". PLOS ONE. 16 (6): e0252355. Bibcode:2021PLoSO..1652355J. doi:10.1371/journal.pone.0252355. PMC 8174742. PMID 34081728.
  107. ^ Li, L.; Zhou, C.-F.; Rabi, M. (2021). "The skeletal anatomy of Manchurochelys manchoukuoensis (Pan-Cryptodira: Sinemydidae) from the Lower Cretaceous Yixian Formation". Historical Biology: An International Journal of Paleobiology. 34 (3): 538–554. doi:10.1080/08912963.2021.1934834. S2CID 238780262.
  108. ^ Ke, Y.; Wu, R.; Zelenitsky, D. K.; Brinkman, D.; Hu, J.; Zhang, S.; Jiang, H.; Han, F. (2021). "A large and unusually thick-shelled turtle egg with embryonic remains from the Upper Cretaceous of China". Proceedings of the Royal Society B: Biological Sciences. 288 (1957): Article ID 20211239. doi:10.1098/rspb.2021.1239. PMC 8370798. PMID 34403631.
  109. ^ Rule, J. P.; Kool, L.; Parker, W. M. G.; Fitzgerald, E. M. G. (2021). "Turtles all the way down: Neogene pig-nosed turtle fossil from southern Australia reveals cryptic freshwater turtle invasions and extinctions". Papers in Palaeontology. 8. doi:10.1002/spp2.1414. S2CID 245107305.
  110. ^ Georgalis, G. L. (2021). "First pan-trionychid turtle (Testudines, Pan-Trionychidae) from the Palaeogene of Africa". Papers in Palaeontology. 7 (4): 1919–1926. Bibcode:2021PPal....7.1919G. doi:10.1002/spp2.1372. S2CID 237910547.
  111. ^ Lichtig, A. J.; Lucas, S. G.; Jasinski, S. E. (2021). "Complete specimens of the Eocene testudinoid turtles Echmatemys and Hadrianus and the North American origin of tortoises". New Mexico Museum of Natural History and Science Bulletin. 82: 161–174.
  112. ^ Ascarrunz, E.; Claude, J.; Joyce, W. G. (2021). "The phylogenetic relationships of geoemydid turtles from the Eocene Messel Pit Quarry: a first assessment using methods for continuous and discrete characters". PeerJ. 9: e11805. doi:10.7717/peerj.11805. PMC 8349520. PMID 34430073.
  113. ^ Adrian, B.; Smith, H. F.; Hutchison, J. H.; Townsend, K. E. B. (2021). "Geometric morphometrics and anatomical network analyses reveal ecospace partitioning among geoemydid turtles from the Uinta Formation, Utah". The Anatomical Record. 305 (6): 1359–1393. doi:10.1002/ar.24792. PMID 34605614. S2CID 238257931.
  114. ^ Kehlmaier, C.; Albury, N. A.; Steadman, D. W.; Graciá, E.; Franz, R.; Fritz, U. (2021). "Ancient mitogenomics elucidates diversity of extinct West Indian tortoises". Scientific Reports. 11 (1): Article number 3224. Bibcode:2021NatSR..11.3224K. doi:10.1038/s41598-021-82299-w. PMC 7873039. PMID 33564028.
  115. ^ Kehlmaier, C.; López-Jurado, L. F.; Hernández-Acosta, N.; Mateo-Miras, A.; Fritz, U. (2021). ""Ancient DNA" reveals that the scientific name for an extinct tortoise from Cape Verde refers to an extant South American species". Scientific Reports. 11 (1): Article number 17537. Bibcode:2021NatSR..1117537K. doi:10.1038/s41598-021-97064-2. PMC 8413269. PMID 34475454.
  116. ^ Abu El-Kheir, G.A.-M.; AbdelGawad, M. K.; Kassab, O. (2021). "First known gigantic sea turtle from the Maastrichtian deposits in Egypt". Acta Palaeontologica Polonica. 66 (2): 349–355. doi:10.4202/app.00849.2020.
  117. ^ Ullmann, S. G.; Carr, E. (2021). "Catapleura Cope, 1870 is Euclastes Cope, 1867 (Testudines: Pan-Cheloniidae): synonymy revealed by a new specimen from New Jersey". Journal of Systematic Palaeontology. 19 (7): 491–517. Bibcode:2021JSPal..19..491U. doi:10.1080/14772019.2021.1928306. S2CID 236504236.
  118. ^ De La Garza, R. G.; Madsen, H.; Eriksson, M. E.; Lindgren, J. (2021). "A fossil sea turtle (Reptilia, Pan-Cheloniidae) with preserved soft tissues from the Eocene Fur Formation of Denmark". Journal of Vertebrate Paleontology. 41 (3): e1938590. Bibcode:2021JVPal..41E8590G. doi:10.1080/02724634.2021.1938590.
  119. ^ Ezcurra, M. D.; Bandyopadhyay, S.; Gower, D. J. (2021). "A new erythrosuchid archosauriform from the Middle Triassic Yerrapalli Formation of south-central India". Ameghiniana. 58 (2): 132–168. doi:10.5710/AMGH.18.01.2021.3416. S2CID 234217303.
  120. ^ Dalla Vecchia, F. M. (2021). "Heteropelta boboi n. gen., n. sp. an armored archosauriform (Reptilia: Archosauromorpha) from the Middle Triassic of Italy". PeerJ. 9: e12468. doi:10.7717/peerj.12468. PMC 8601055. PMID 34820195.
  121. ^ Yáñez, I.; Pol, D.; Leardi, J. M.; Alcober, O. A.; Martínez, R. N. (2021). "An enigmatic new archosauriform from the Carnian– Norian, Upper Triassic, Ischigualasto Formation of northwestern Argentina". Acta Palaeontologica Polonica. 66 (3): 509–533. doi:10.4202/app.00806.2020. S2CID 239239894.
  122. ^ Nesbitt, S. J.; Stocker, M. R.; Chatterjee, S.; Horner, J. R.; Goodwin, M. B. (2021). "A remarkable group of thick-headed Triassic Period archosauromorphs with a wide, possibly Pangean distribution". Journal of Anatomy. 239 (1): 184–206. doi:10.1111/joa.13414. PMC 8197959. PMID 33660262. S2CID 232114890.
  123. ^ Heckert, A. B.; Nesbitt, S. J.; Stocker, M. R.; Schneider, V. P.; Hoffman, D. K.; Zimmer, B. W. (2021). "A new short-faced archosauriform from the Upper Triassic Placerias/Downs' quarry complex, Arizona, USA, expands the morphological diversity of the Triassic archosauriform radiation". The Science of Nature. 108 (4): Article 32. Bibcode:2021SciNa.108...32H. doi:10.1007/s00114-021-01733-1. PMC 8253714. PMID 34213630.
  124. ^ Pintore, R.; Houssaye, A.; Nesbitt, S. J.; Hutchinson, J. R. (2021). "Femoral specializations to locomotor habits in early archosauriforms". Journal of Anatomy. 240 (5): 867–892. doi:10.1111/joa.13598. PMC 9005686. PMID 34841511. S2CID 244752006.
  125. ^ Parker, W. G.; Nesbitt, S. J.; Marsh, A. D.; Kligman, B. T.; Bader, K. (2021). "First occurrence of Doswellia cf. D. kaltenbachi (Archosauriformes) from the Late Triassic (middle Norian) Chinle Formation of Arizona and its implications on proposed biostratigraphic correlations across North America during the Late Triassic". Journal of Vertebrate Paleontology. 41 (3): e1976196. Bibcode:2021JVPal..41E6196P. doi:10.1080/02724634.2021.1976196. S2CID 243474578.
  126. ^ Ponce, S.; Trotteyn, M. J.; Cerda, I. A.; Fiorelli, L. E.; Desojo, J. B. (2021). "Osteohistology and paleobiological inferences of proterochampsids (Eucrocopoda: Proterochampsia) from the Chañares Formation (late Ladinian–early Carnian), La Rioja, Argentina". Journal of Vertebrate Paleontology. 41 (2): e1926273. Bibcode:2021JVPal..41E6273P. doi:10.1080/02724634.2021.1926273. ISSN 0272-4634. S2CID 237518073.
  127. ^ Heckert, A. B.; Viner, T. C.; Carrano, M. T. (2021). "A large, pathological skeleton of Smilosuchus gregorii (Archosauriformes: Phytosauria) from the Upper Triassic of Arizona, U.S.A., with discussion of the paleobiological implications of paleopathology in fossil archosauromorphs". Palaeontologia Electronica. 24 (2): Article number 24.2.a21. doi:10.26879/1123.
  128. ^ Hoffman, D. K.; Miller-Camp, J. A.; Heckert, A. B. (2021). "Tooth enamel microstructure in North American Phytosauria (Diapsida:Archosauriformes): Implications for biogeography and ecology of a Late Triassic clade of crocodylian-like predators". Palaeontologia Electronica. 24 (3): Article number 24.3.a32. doi:10.26879/1162.
  129. ^ Matamales-Andreu, R.; Roig-Munar, F. X.; Oms, O.; Galobart, À.; Fortuny, J. (2021). "A captorhinid-dominated assemblage from the palaeoequatorial Permian of Menorca (Balearic Islands, western Mediterranean)". Earth and Environmental Science Transactions of the Royal Society of Edinburgh. 112 (2): 125–145. Bibcode:2021EESTR.112..125M. doi:10.1017/S1755691021000268. S2CID 237576541.
  130. ^ Rowe, D. C. T.; Scott, D. M.; Bevitt, J. J.; Reisz, R. R. (2021). "Multiple Tooth-Rowed Parareptile From the Early Permian of Oklahoma". Frontiers in Earth Science. 9: Article 709497. Bibcode:2021FrEaS...9..740R. doi:10.3389/feart.2021.709497.
  131. ^ Ezcurra, M. D.; Fiorelli, L. E.; Trotteyn, M. J.; Martinelli, A. G.; Desojo, J. B. (2021). "The rhynchosaur record, including a new stenaulorhynchine taxon, from the Chañares Formation (upper Ladinian–?lowermost Carnian levels) of La Rioja Province, north-western Argentina". Journal of Systematic Palaeontology. 18 (23): 1907–1938. doi:10.1080/14772019.2020.1856205. S2CID 231741583.
  132. ^ Cisneros, J. C.; Kammerer, C. F.; Angielczyk, K. D.; Fröbisch, J.; Marsicano, C.; Smith, R. M. H.; Richter, M. (2021). "A new reptile from the lower Permian of Brazil (Karutia fortunata gen. et sp. nov.) and the interrelationships of Parareptilia". Journal of Systematic Palaeontology. 18 (23): 1939–1959. doi:10.1080/14772019.2020.1863487. S2CID 231741612.
  133. ^ 袁 梦, 李大庆; YUAN Meng, LI Da-Qing (2021). "A juvenile skull of the longirostrine choristodere (Diapsida:Choristodera), Mengshanosaurus minimus gen. et sp. nov., with comments on neochoristodere ontogeny". Vertebrata PalAsiatica. 59 (3): 213–228. doi:10.19615/j.cnki.2096-9899.210607. ISSN 2096-9899.
  134. ^ Chambi-Trowell, S. A. V.; Martinelli, A. G.; Whiteside, D. I.; Romo de Vivar, P. R.; Soares, M. B.; Schultz, C. L.; Gill, P. G.; Benton, M. J.; Rayfield, E. J. (2021). "The diversity of Triassic South American sphenodontians: a new basal form, clevosaurs, and a revision of rhynchocephalian phylogeny". Journal of Systematic Palaeontology. 19 (11): 787–820. Bibcode:2021JSPal..19..787C. doi:10.1080/14772019.2021.1976292. hdl:1983/af14affc-a26e-426b-83ca-e1833e355882. S2CID 240487298.
  135. ^ Pinheiro, F. L.; Silva-Neves, E.; Da-Rosa, A. A. (2021). "An early-diverging procolophonid from the lowermost Triassic of South America and the origins of herbivory in Procolophonoidea". Papers in Palaeontology. 7 (3): 1601–1612. Bibcode:2021PPal....7.1601P. doi:10.1002/spp2.1355. S2CID 233797716.
  136. ^ Albright, G. M.; Sumida, S. S.; Jung, J. P. (2021). "A New Genus of Captorhinid Reptile (Amniota: Eureptilia) from the Lower Permian Hennessey Formation of Central Oklahoma, and a Consideration of Homoplasy in the Family Captorhinidae". Annals of Carnegie Museum. 87 (2): 89–116. doi:10.2992/007.087.0201. S2CID 237402336.
  137. ^ Villa, A.; Montie, R.; Röper, M.; Rothgaenger, M.; Rauhut, O. W. M. (2021). "Sphenofontis velserae gen. et sp. nov., a new rhynchocephalian from the Late Jurassic of Brunn (Solnhofen Archipelago, southern Germany)". PeerJ. 9: e11363. doi:10.7717/peerj.11363. PMC 8101455. PMID 33987027.
  138. ^ Sobral, S.; Sues, H.-D.; Schoch, R. (2021). "A new diapsid with a unique tooth structure from the Middle Triassic (Ladinian) of Germany". Journal of Vertebrate Paleontology. 41 (2): e1929268. Bibcode:2021JVPal..41E9268S. doi:10.1080/02724634.2021.1929268. S2CID 237518053.
  139. ^ Martínez, R. N.; Simões, T. R.; Sobral, G.; Apesteguía, S. (2021). "A Triassic stem lepidosaur illuminates the origin of lizard-like reptiles". Nature. 597 (7875): 235–238. Bibcode:2021Natur.597..235M. doi:10.1038/s41586-021-03834-3. PMID 34433961. S2CID 237307957.
  140. ^ Apesteguía, S.; Garberoglio, F. F.; Gómez, R. O. (2021). "Earliest tuatara (Lepidosauria: Sphenodontinae) from southern continents". Ameghiniana. 58 (5): 416–441. doi:10.5710/AMGH.13.07.2021.3442. S2CID 239053594.
  141. ^ Kligman, B. T.; McClure, W. C.; Korbitz, M.; Schumacher, B. A. (2021). "New sphenodontian (Reptilia: Lepidosauria) from a novel Late Triassic paleobiota in western North America sheds light on the earliest radiation of herbivorous lepidosaurs". Journal of Paleontology. 95 (4): 827–844. Bibcode:2021JPal...95..827K. doi:10.1017/jpa.2021.22. hdl:10919/106674. S2CID 233518270.
  142. ^ Sues, H.-D.; Kligman, B. T. (2021). "A new lizard-like reptile from the Upper Triassic (Carnian) of Virginia and the Triassic record of Lepidosauromorpha (Diapsida, Sauria)". Journal of Vertebrate Paleontology. 40 (6): e1879102. doi:10.1080/02724634.2021.1879102. S2CID 233805788.
  143. ^ Marchetti, L.; Voigt, S.; Buchwitz, M.; MacDougall, M. J.; Lucas, S. G.; Fillmore, D. L.; Stimson, M. R.; King, O. A.; Calder, J. H.; Fröbisch, J. (2021). "Tracking the Origin and Early Evolution of Reptiles". Frontiers in Ecology and Evolution. 9: Article 696511. doi:10.3389/fevo.2021.696511.
  144. ^ Marchetti, L.; Werneburg, R.; Saber, H.; Voight, S. (2021). "The German record of Notalacerta BUTTS, 1890 –footprints of the earliest Reptiles". Semana. Naturwissenschaftliche Veröffentlichungen des Naturhistorischen Museums Schloss Bertholdsburg Schleusingen. 36: 87–93.
  145. ^ Piñeiro, G.; Ferigolo, J.; Mones, A.; Núñez Demarco, P. (2021). "Mesosaur taxonomy reappraisal: are Stereosternum and Brazilosaurus valid taxa?". Revista Brasileira de Paleontologia. 24 (3): 205–235. doi:10.4072/rbp.2021.3.04. hdl:11336/175571. ISSN 1519-7530. S2CID 244188443.
  146. ^ Berman, D. S.; Sumida, S. S.; Henrici, A. C.; Scott, D.; Reisz, R. R.; Martens, T. (2021). "The Early Permian Bolosaurid Eudibamus cursoris: Earliest Reptile to Combine Parasagittal Stride and Digitigrade Posture During Quadrupedal and Bipedal Locomotion". Frontiers in Ecology and Evolution. 9: Article 674173. doi:10.3389/fevo.2021.674173.
  147. ^ Van den Brandt, M. J.; Rubidge, B. S.; Benoit, J.; Abdala, F. (2021). "Cranial morphology of the middle Permian pareiasaur Nochelesaurus alexanderi from the Karoo Basin of South Africa". Earth and Environmental Science Transactions of the Royal Society of Edinburgh. 112 (1): 29–49. Bibcode:2021EESTR.112...29V. doi:10.1017/S1755691021000049.
  148. ^ van den Brandt, M. J.; Benoit, J.; Abdala, F.; Rubidge, B. S. (2021). "Postcranial morphology of the South African middle Permian pareiasaurs from the Karoo Basin of South Africa". Palaeontologia Africana. 55: 1–91. hdl:10539/31290.
  149. ^ Cisneros, J. C.; Dentzien-Dias, P.; Francischini, H. (2021). "The Brazilian Pareiasaur Revisited". Frontiers in Ecology and Evolution. 9: Article 758802. doi:10.3389/fevo.2021.758802.
  150. ^ Romano, M.; Manucci, F.; Rubidge, B.; Van den Brandt, M. J. (2021). "Volumetric Body Mass Estimate and in vivo Reconstruction of the Russian Pareiasaur Scutosaurus karpinskii". Frontiers in Ecology and Evolution. 9: Article 692035. doi:10.3389/fevo.2021.692035. hdl:11573/1634310.
  151. ^ Logghe, A. J.; Mujal, E.; Marchetti, L.; Nel, A.; Pouillon, J.-M.; Giner, S.; Garrouste, R.; Steyer, J.-S. (2021). "Hyloidichnus trackways with digit and tail drag traces from the Permian of Gonfaron (Var, France): New insights on the locomotion of captorhinomorph eureptiles". Palaeogeography, Palaeoclimatology, Palaeoecology. 573: Article 110436. Bibcode:2021PPP...57310436L. doi:10.1016/j.palaeo.2021.110436. S2CID 235530937.
  152. ^ Mann, A.; Dudgeon, T. W.; Henrici, A. C.; Berman, D. S.; Pierce, S. E. (2021). "Digit and Ungual Morphology Suggest Adaptations for Scansoriality in the Late Carboniferous Eureptile Anthracodromeus longipes". Frontiers in Earth Science. 9: Article 675337. Bibcode:2021FrEaS...9..440M. doi:10.3389/feart.2021.675337.
  153. ^ Ezcurra, M. D.; Bandyopadhyay, S.; Sen, K. (2021). "A new faunistic component of the Lower Triassic Panchet Formation of India increases the continental non-archosauromorph neodiapsid record in the aftermath of the end-Permian mass extinction". Journal of Paleontology. 96 (2): 428–438. doi:10.1017/jpa.2021.100. S2CID 244517695.
  154. ^ Pritchard, A. C.; Sues, H.-D.; Scott, D.; Reisz, R. R. (2021). "Osteology, relationships and functional morphology of Weigeltisaurus jaekeli (Diapsida, Weigeltisauridae) based on a complete skeleton from the Upper Permian Kupferschiefer of Germany". PeerJ. 9: e11413. doi:10.7717/peerj.11413. PMC 8141288. PMID 34055483.
  155. ^ Buffa, V.; Frey, E.; Steyer, J.-S.; Laurin, M. (2021). "A new cranial reconstruction of Coelurosauravus elivensis Piveteau, 1926 (Diapsida, Weigeltisauridae) and its implications on the paleoecology of the first gliding vertebrates" (PDF). Journal of Vertebrate Paleontology. 41 (2): e1930020. Bibcode:2021JVPal..41E0020B. doi:10.1080/02724634.2021.1930020. S2CID 237517962.
  156. ^ Ford, D. P.; Evans, S. E.; Choiniere, J. N.; Fernandez, V.; Benson, R. B. J. (2021). "A reassessment of the enigmatic diapsid Paliguana whitei and the early history of Lepidosauromorpha". Proceedings of the Royal Society B: Biological Sciences. 288 (1957): Article ID 20211084. doi:10.1098/rspb.2021.1084. PMC 8385343. PMID 34428965.
  157. ^ Griffiths, E. F.; Ford, D. P.; Benson, R. B. J.; Evans, S. E. (2021). "New information on the Jurassic lepidosauromorph Marmoretta oxoniensis" (PDF). Papers in Palaeontology. 7 (4): 2255–2278. Bibcode:2021PPal....7.2255G. doi:10.1002/spp2.1400. S2CID 239140732.
  158. ^ Skutschas, P. P.; Sennikov, A. G.; Syromyatnikova, E. V.; Vitenko, D. D.; Parakhin, I. A.; Bapinaev, R. A.; Evans, S. E. (2021). "A lepidosauromorph specimen from the Middle Jurassic (Bathonian) Moskvoretskaya Formation of the Moscow Region, Russia". Historical Biology: An International Journal of Paleobiology. 34 (3): 566–570. doi:10.1080/08912963.2021.1935921. S2CID 236282947.
  159. ^ Matsumoto, R.; Hirayama, R.; Miyata, S.; Yoshida, M.; Mitsuzuka, S.; Takisawa, T.; Evans, S. E. (2021). "The first choristoderan record from the Upper Cretaceous of Asia, Tamagawa Formation, Kuji Group, Japan". Cretaceous Research. 129: Article 104999. doi:10.1016/j.cretres.2021.104999. ISSN 0195-6671. S2CID 238680387.
  160. ^ Dudgeon, T. W.; Landry, Z.; Callahan, W. R.; Mehling, C. M.; Ballwanz, S. (2021). "An Appalachian population of neochoristoderes (Diapsida, Choristodera) elucidated using fossil evidence and ecological niche modelling". Palaeontology. 64 (5): 629–643. Bibcode:2021Palgy..64..629D. doi:10.1111/pala.12545. S2CID 237761128.
  161. ^ Matsumoto, R.; Fujiwara, S.; Evans, S. E. (2021). "Feeding behaviour and functional morphology of the neck in the long-snouted aquatic fossil reptile Champsosaurus (Reptilia: Diapsida) in comparison with the modern crocodilian Gavialis gangeticus". Journal of Anatomy. 240 (5): 893–913. doi:10.1111/joa.13600. PMC 9005684. PMID 34865223. S2CID 244917425.
  162. ^ Spiekman, S. N. F.; Fraser, N. C.; Scheyer, T. M. (2021). "A new phylogenetic hypothesis of Tanystropheidae (Diapsida, Archosauromorpha) and other "protorosaurs", and its implications for the early evolution of stem archosaurs". PeerJ. 9: e11143. doi:10.7717/peerj.11143. PMC 8101476. PMID 33986981.
  163. ^ Foth, C.; Sookias, R. B.; Ezcurra, M. D. (2021). "Rapid Initial Morphospace Expansion and Delayed Morphological Disparity Peak in the First 100 Million Years of the Archosauromorph Evolutionary Radiation". Frontiers in Earth Science. 9: Article 723973. Bibcode:2021FrEaS...9..763F. doi:10.3389/feart.2021.723973.
  164. ^ Pradelli, L. A.; Leardi, J. M.; Ezcurra, M. D. (2021). "Body size disparity of the archosauromorph reptiles during the first 90 million years of their evolution". Ameghiniana. 59 (1): 47–77. doi:10.5710/AMGH.16.09.2021.3441. S2CID 240547822.
  165. ^ Nesbitt, S. J.; Stocker, M. R.; Ezcurra, M. D.; Fraser, M. C.; Heckert, A. B.; Parker, W. G.; Mueller, B.; Sengupta, S.; Bandyopadhyay, S.; Pritchard, A. C.; Marsh, A. D. (2021). "Widespread azendohsaurids (Archosauromorpha, Allokotosauria) from the Late Triassic of western USA and India". Papers in Palaeontology. 8. doi:10.1002/spp2.1413. S2CID 245049571.
  166. ^ Sues, H.-D.; Ezcurra, M. D.; Schoch, R. R. (2021). "Eifelosaurus triadicus Jaekel, 1904, a "forgotten" reptile from the Upper Buntsandstein (Triassic: Anisian) of the Eifel region, Germany". PalZ. 96 (2): 275–287. doi:10.1007/s12542-021-00584-5. S2CID 244803393.
  167. ^ Heinrich, C.; Paes Neto, V. D.; Lacerda, M. B.; Martinelli, A. G.; Fiedler, M. S.; Schultz, C. L. (2021). "The ontogenetic pattern of neurocentral suture closure in the axial skeleton of Hyperodapedontinae (Archosauromorpha, Rhynchosauria) and its evolutionary implications". Palaeontology. 64 (3): 409–427. Bibcode:2021Palgy..64..409H. doi:10.1111/pala.12528. S2CID 233691896.
  168. ^ Gentil, A. R.; Ezcurra, M. D. (2021). "Skull osteology of the holotype of the rhynchosaur Hyperodapedon sanjuanensis (Sill, 1970) from the Upper Triassic Ischigualasto Formation of Argentina". The Anatomical Record. 305 (5): 1168–1200. doi:10.1002/ar.24771. PMID 34496139. S2CID 237454269.
  169. ^ Brocklehurst, N. (2021). "The First Age of Reptiles? Comparing Reptile and Synapsid Diversity, and the Influence of Lagerstätten, During the Carboniferous and Early Permian". Frontiers in Ecology and Evolution. 9: Article 669765. doi:10.3389/fevo.2021.669765.
  170. ^ Brocklehurst, N.; Benson, R. J. (2021). "Multiple paths to morphological diversification during the origin of amniotes". Nature Ecology & Evolution. 5 (9): 1243–1249. Bibcode:2021NatEE...5.1243B. doi:10.1038/s41559-021-01516-x. PMID 34312521. S2CID 236451229.
  171. ^ Benoit, J.; Ford, D. P.; Miyamae, J. A.; Ruf, I. (2021). "Can maxillary canal morphology inform varanopid phylogenetic affinities?". Acta Palaeontologica Polonica. 66 (2): 389–393. doi:10.4202/app.00816.2020.
  172. ^ Fischer, V.; Weis, R.; Thuy, B. (2021). "Refining the marine reptile turnover at the Early–Middle Jurassic transition". PeerJ. 9: e10647. doi:10.7717/peerj.10647. PMC 7906043. PMID 33665003.
  173. ^ Herrera-Flores, J. A.; Elsler, A.; Stubbs, T. L.; Benton, M. J. (2021). "Slow and fast evolutionary rates in the history of lepidosaurs". Palaeontology. 65. doi:10.1111/pala.12579.