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Cretaceous

Geological interval

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Eonatator sternbergi, a mosasaur from the Late Cretaceous of Kansas. Digital.
Taxa Eonatator

Eonatator sternbergi, a mosasaur from the Late Cretaceous of Kansas. Digital.

Cretaceous Late Cretaceous Eonatator Spinops
Phylogenetic relationships, chronostratigraphic, and paleoecological implications of M. intrepidus. a Graphic illustrating temporal range of North American tyrannosauroids including species-level range prior to the discovery of M. intrepidus, extension of current range, and hypothesized range based on isolated teeth12. The current gap in the North American tyrannosauroid record spans from the Tithonian to the Aptian. Faunal composition of Late Cretaceous ecosystems was established between the Albian and Turonian, as recognized by the stratigraphic appearance of major clades (see refs. 7,12 and references therein). b generalized phylogenetic relationships of Tyrannosauroidea, showing the appearance of select traits related to cursoriality in tyrannosaurs that are newly optimized as a result of the discovery of M. intrepidus. Tree topology follows this study using the modified dataset of Carr and colleagues27. Coelurus and Tanycolagreus are grafted as basal tyrannosauroids following Brusatte and colleagues5. c Stratigraphic distribution of Allosauria in North America (incl. Megaraptora but see ref. 70 for alternative hypotheses regarding this clade) documents overlap with M. intrepidus in early Late Cretaceous ecosystems leading to (d) refined calibration on the origin of late diverging tyrannosauroids and clade-level faunal turnover within apex predator roles throughout the Late Jurassic–Late Cretaceous of North America. Colored polygons are stylized call-outs and are not intended to reflect two-dimensional data. Temporal data corresponding to this figure are available in Supplementary Table 5
Taxa Coelurus

Phylogenetic relationships, chronostratigraphic, and paleoecological implications of M. intrepidus. a Graphic illustrating temporal range of North American tyrannosauroids including species-level range prior to the discovery of M. intrepidus, extension of current range, and hypothesized range based on isolated teeth12. The current gap in the North American tyrannosauroid record spans from the Tithonian to the Aptian. Faunal composition of Late Cretaceous ecosystems was established between the Albian and Turonian, as recognized by the stratigraphic appearance of major clades (see refs. 7,12 and references therein). b generalized phylogenetic relationships of Tyrannosauroidea, showing the appearance of select traits related to cursoriality in tyrannosaurs that are newly optimized as a result of the discovery of M. intrepidus. Tree topology follows this study using the modified dataset of Carr and colleagues27. Coelurus and Tanycolagreus are grafted as basal tyrannosauroids following Brusatte and colleagues5. c Stratigraphic distribution of Allosauria in North America (incl. Megaraptora but see ref. 70 for alternative hypotheses regarding this clade) documents overlap with M. intrepidus in early Late Cretaceous ecosystems leading to (d) refined calibration on the origin of late diverging tyrannosauroids and clade-level faunal turnover within apex predator roles throughout the Late Jurassic–Late Cretaceous of North America. Colored polygons are stylized call-outs and are not intended to reflect two-dimensional data. Temporal data corresponding to this figure are available in Supplementary Table 5

predator Albian Aptian Cretaceous +12
Clidastes propython, a mosasaur from the Late Cretaceous of Kansas, digital.
Taxa Clidastes

Clidastes propython, a mosasaur from the Late Cretaceous of Kansas, digital.

Cretaceous Late Cretaceous Clidastes Spinops
Reconstruction of Agustinia ligabuei from the Early Cretaceous of Argentina as a rebbachisaurid following Bellardini et al. 2022

Reconstruction of Agustinia ligabuei from the Early Cretaceous of Argentina as a rebbachisaurid following Bellardini et al. 2022

Argentina Cretaceous Early Cretaceous Agustinia +2
Agustinia ligabuei, a sauropod from the Early Cretaceous of Argentina. Digital.

Agustinia ligabuei, a sauropod from the Early Cretaceous of Argentina. Digital.

Argentina Cretaceous Early Cretaceous Agustinia +2
Pliosaurus (Luskhan itilensis) lived on the territory of the Volga region in the Hauterivian age of the Early Cretaceous period. Discovered in 2002 by G.N. Uspensky on the banks of the Volga near the village of Slantsevy Rudnik. This is the most complete pliosaurus skeleton found in Russia. This pliosaurus was not a predator and preferred to feed on fish and cephalopods.

Pliosaurus (Luskhan itilensis) lived on the territory of the Volga region in the Hauterivian age of the Early Cretaceous period. Discovered in 2002 by G.N. Uspensky on the banks of the Volga near the village of Slantsevy Rudnik. This is the most complete pliosaurus skeleton found in Russia. This pliosaurus was not a predator and preferred to feed on fish and cephalopods.

predator Russia Cretaceous Early Cretaceous +5
Reconstruction of brachauchenin pliosaurid Luskhan itilensis. Early Cretaceous of Ulyanovsk region. 2017.

Reconstruction of brachauchenin pliosaurid Luskhan itilensis. Early Cretaceous of Ulyanovsk region. 2017.

Cretaceous Early Cretaceous Brachaucheninae Luskhan +1
A new plesiosaur, Leurospondylus, from the Edmonton Cretaceous of Alberta

A new plesiosaur, Leurospondylus, from the Edmonton Cretaceous of Alberta

Cretaceous Edmontonia Leurospondylus Plesiosauria
Ancient landscape across the Cretaceous/Paleogene time interval in central Patagonia. Main floristic types from the Danian: Podocarps, Cheirolepidiaceae, palms.
doi:10.1371/journal.pone.0052455.g007

Ancient landscape across the Cretaceous/Paleogene time interval in central Patagonia. Main floristic types from the Danian: Podocarps, Cheirolepidiaceae, palms. doi:10.1371/journal.pone.0052455.g007

Cretaceous Danian Paleogene
Iron trapped in Cretaceous limestone, forming tables

Iron trapped in Cretaceous limestone, forming tables

Cretaceous
Limestone cliff with the stratigraphic stage of Cretaceous Coniacian near the eponym town of Cognac, Charente, Poitou-Charentes, France.

Limestone cliff with the stratigraphic stage of Cretaceous Coniacian near the eponym town of Cognac, Charente, Poitou-Charentes, France.

France Coniacian Cretaceous
crétacé limestone at Cognac, Charente, SW France

crétacé limestone at Cognac, Charente, SW France

France Cretaceous
Cretaceous limestone at Cognac, Charente, SW France

Cretaceous limestone at Cognac, Charente, SW France

France Cretaceous
Ivy and limestone cliff of Cretaceous Coniacian, Cognac, Charente, France.

Ivy and limestone cliff of Cretaceous Coniacian, Cognac, Charente, France.

France Coniacian Cretaceous
Limestone Cretaceous cornices (Coniacian type), valley of the river Voultron; Blanzaguet-Saint-Cybard, Charente, France.

Limestone Cretaceous cornices (Coniacian type), valley of the river Voultron; Blanzaguet-Saint-Cybard, Charente, France.

France Coniacian Cretaceous
Quarry called “Ratssteinbruch” at Plauenscher Grund (gorge-like valley of the river Weißeritz nearby/in the city of Dresden, Saxony, Germany), Upper Carboniferous Monzonite (historically identified as Syenite) of the Meißen Massif (Paleozoic basement) unconformably overlain by Upper Cenomanian beds of the Dölzschen Formation, yellowish basal conglomerate and overlying bluish silty clay-marlstone (“plenus-Pläner”) of the Saxo-Bohemian Cretaceous Basin (Mesozoic platform).[1]

Quarry called “Ratssteinbruch” at Plauenscher Grund (gorge-like valley of the river Weißeritz nearby/in the city of Dresden, Saxony, Germany), Upper Carboniferous Monzonite (historically identified as Syenite) of the Meißen Massif (Paleozoic basement) unconformably overlain by Upper Cenomanian beds of the Dölzschen Formation, yellowish basal conglomerate and overlying bluish silty clay-marlstone (“plenus-Pläner”) of the Saxo-Bohemian Cretaceous Basin (Mesozoic platform).[1]

Germany Carboniferous Cenomanian Cretaceous +3
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scale reconstitution Cretaceous Early Cretaceous Early Jurassic Jurassic Dinosauria
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