Crétacé

Intervalle géologique

185 image(s) · 46 Actualités

Voir la fiche

Galerie d'images

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

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

Albien Aptien Crétacé Crétacé supérieur +7
Clidastes propython, a mosasaur from the Late Cretaceous of Kansas, digital.

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

Crétacé Crétacé supérieur Clidastes Spinops
A map showing the distribution of paraves in Late Cretaceous with the respective paleogeographic setting.

A map showing the distribution of paraves in Late Cretaceous with the respective paleogeographic setting.

Crétacé Crétacé supérieur Paraves
A map showing the distribution of paraves in Early Cretaceous with respective paleogeographic setting.

A map showing the distribution of paraves in Early Cretaceous with respective paleogeographic setting.

Crétacé Crétacé inférieur Paraves
Diuqin is an unenlagiine dinosaur from the Late Cretaceous of what is now Argentina. Unenlagiines, known exclusively from South America, are usually classified as dromaeosaurs though this is sometimes debated. Like dromaeosaurs, they were covered in feathers, carnivorous, and had the large sickle-like claw on the inner toe of each foot. Unique to unenlagiines is their elongated snout, suggesting a piscivorous diet. Diuqin was a medium-sized unenlagiine, at about 4 m in length.

Diuqin is an unenlagiine dinosaur from the Late Cretaceous of what is now Argentina. Unenlagiines, known exclusively from South America, are usually classified as dromaeosaurs though this is sometimes debated. Like dromaeosaurs, they were covered in feathers, carnivorous, and had the large sickle-like claw on the inner toe of each foot. Unique to unenlagiines is their elongated snout, suggesting a piscivorous diet. Diuqin was a medium-sized unenlagiine, at about 4 m in length.

griffe plume Argentine Crétacé +5
Figure 1. Evolution of macroecological traits in Dinosauria. Large scale event in dinosaur evolution (a); the origin of dinosaurs (star), hyperthermals (volcano), the earliest fossil Avialae (bird), the earliest fossil angiosperm (flower), the Cretaceous/Palaeogene mass extinction (asteroid). Phylogeny of dinosaurs (b) redrawn from Sereno and adapted to the current consensus and upon which an ancestral state reconstruction of temperature niche (mean annual temperature) after Chiarenza et al. is plotted; Mesozoic palaeogeographies (c) for Triassic (T), Jurassic (J) and Cretaceous (K). Silhouette colours symbolize body mass for each of the taxa represented; information on dietary habits are plotted after Barrett and Zanno & Makovicky; numbers represent clades discussed through this study: 1, Ornithischia; 2, Thyreophora; 3, Ornithopoda; 4, Hadrosauroidea; 5, Marginocephalia; 6, Ceratopsia; 7, Saurischia; 8, Sauropodomorpha; 9, Sauropoda; 10, Theropoda; 11, Ceratosauria; 12, Tetanurae; 13, Coelurosauria; 14, Maniraptoriformes; 15, Maniraptora; 16, Deinonychosauria; 17, Avialae; 18, Ornithothoraces. Palaeogeographies modified from original plots via R package ‘mapast’ using plate models by Scotese.

Figure 1. Evolution of macroecological traits in Dinosauria. Large scale event in dinosaur evolution (a); the origin of dinosaurs (star), hyperthermals (volcano), the earliest fossil Avialae (bird), the earliest fossil angiosperm (flower), the Cretaceous/Palaeogene mass extinction (asteroid). Phylogeny of dinosaurs (b) redrawn from Sereno and adapted to the current consensus and upon which an ancestral state reconstruction of temperature niche (mean annual temperature) after Chiarenza et al. is plotted; Mesozoic palaeogeographies (c) for Triassic (T), Jurassic (J) and Cretaceous (K). Silhouette colours symbolize body mass for each of the taxa represented; information on dietary habits are plotted after Barrett and Zanno & Makovicky; numbers represent clades discussed through this study: 1, Ornithischia; 2, Thyreophora; 3, Ornithopoda; 4, Hadrosauroidea; 5, Marginocephalia; 6, Ceratopsia; 7, Saurischia; 8, Sauropodomorpha; 9, Sauropoda; 10, Theropoda; 11, Ceratosauria; 12, Tetanurae; 13, Coelurosauria; 14, Maniraptoriformes; 15, Maniraptora; 16, Deinonychosauria; 17, Avialae; 18, Ornithothoraces. Palaeogeographies modified from original plots via R package ‘mapast’ using plate models by Scotese.

écaille Crétacé Jurassique Mésozoïque +23
A photograph of partial specimen American Museum of Natural History (AMNH) 22555, skull without mandible, of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in right lateral view.

A photograph of partial specimen American Museum of Natural History (AMNH) 22555, skull without mandible, of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in right lateral view.

musée Brésil Conway Romualdo +7
A photograph of partial specimen American Museum of Natural History (AMNH) 22555, anterior dorsal vertebrae, dorsal ribs and partial shoulder girdle (at least right scapula) of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in dorsal view.

A photograph of partial specimen American Museum of Natural History (AMNH) 22555, anterior dorsal vertebrae, dorsal ribs and partial shoulder girdle (at least right scapula) of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in dorsal view.

musée Brésil Conway Romualdo +6
A photograph of partial specimen American Museum of Natural History (AMNH) 22555, posterior dorsal vertebrae, and the sacrum and pelvis (both iliae, and right ischium and pubis) of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in dorsal view.

A photograph of partial specimen American Museum of Natural History (AMNH) 22555, posterior dorsal vertebrae, and the sacrum and pelvis (both iliae, and right ischium and pubis) of Anhanguera sp. (formerly often assigned to Anhanguera santanae),[1] from the Early Cretaceous Romualdo Formation (former Romualdo Member of the Santana Formation) of NE Brazil in dorsal view.

bassin musée Brésil Conway +7
Reconstitution d'un Tylosaurus rex dans la voie maritime intérieure occidentale de l'Amérique du Nord, datant de l'époque du Crétacé.

Reconstitution d'un Tylosaurus rex dans la voie maritime intérieure occidentale de l'Amérique du Nord, datant de l'époque du Crétacé.

jeu reconstitution Crétacé Tylosaurus
Elasmosaurus platyurus, plesiosaurian from Late Cretaceous (Campanian) of North America

Elasmosaurus platyurus, plesiosaurian from Late Cretaceous (Campanian) of North America

Campanien Crétacé Crétacé supérieur Elasmosaurus +1
Elasmosaurus platyurus, plesiosaurian from Late Cretaceous (Campanian) of North America

Elasmosaurus platyurus, plesiosaurian from Late Cretaceous (Campanian) of North America

Campanien Crétacé Crétacé supérieur Elasmosaurus +1
Dorsal vertebra of platecarpus, a cretaceous. Mosasaur from the Niobrara Chalk of Kansas etc.

General Collections
Keywords: prehistoric archaeology; Paleopathology; Moodie, Roy Lee
Taxons Platecarpus

Dorsal vertebra of platecarpus, a cretaceous. Mosasaur from the Niobrara Chalk of Kansas etc. General Collections Keywords: prehistoric archaeology; Paleopathology; Moodie, Roy Lee

vertèbre Niobrara Crétacé Platecarpus
Holotype of Alcione elainus.
Fig. 6 of:
Longrich, N. R., Martill, D. M., & Andres, B. (2018). Late Maastrichtian pterosaurs from North Africa and mass extinction of Pterosauria at the Cretaceous-Paleogene boundary. PLoS biology, 16(3), e2001663.
---
Original figure legend:
A. elainus FSAC-OB 2, holotype partial skeleton and FSAC-OB 217, metacarpal IV.

(A) Holotype right humerus in anterior view, (B) holotype right ulna and radius in anterior view, respectively, (C) holotype sternum in left lateral view, (D) referred metacarpal IV, (E) holotype, distal end of left metacarpal IV and left scapulocoracoid, and (F) holotype right femur in posterior view. Abbreviations: co, coracoid; cr, cristospine; dc, distal condyle; dpc, deltopectoral crest; ect, ectepicondyle; fh, femoral head; gl, glenoid; gt, greater trochanter; hh, humeral head; hum, humerus; mcIV, metacarpal IV, pc, proximal cotyle; pf, pneumatic foramen; rad, radius; scpr, supracondylar process; ste, sternum; uln, ulna.

Holotype of Alcione elainus. Fig. 6 of: Longrich, N. R., Martill, D. M., & Andres, B. (2018). Late Maastrichtian pterosaurs from North Africa and mass extinction of Pterosauria at the Cretaceous-Paleogene boundary. PLoS biology, 16(3), e2001663. --- Original figure legend: A. elainus FSAC-OB 2, holotype partial skeleton and FSAC-OB 217, metacarpal IV. (A) Holotype right humerus in anterior view, (B) holotype right ulna and radius in anterior view, respectively, (C) holotype sternum in left lateral view, (D) referred metacarpal IV, (E) holotype, distal end of left metacarpal IV and left scapulocoracoid, and (F) holotype right femur in posterior view. Abbreviations: co, coracoid; cr, cristospine; dc, distal condyle; dpc, deltopectoral crest; ect, ectepicondyle; fh, femoral head; gl, glenoid; gt, greater trochanter; hh, humeral head; hum, humerus; mcIV, metacarpal IV, pc, proximal cotyle; pf, pneumatic foramen; rad, radius; scpr, supracondylar process; ste, sternum; uln, ulna.

crête humérus Crétacé Maastrichtien +7
Holotype of Alcione elainus.
Fig. 6 of:
Longrich, N. R., Martill, D. M., & Andres, B. (2018). Late Maastrichtian pterosaurs from North Africa and mass extinction of Pterosauria at the Cretaceous-Paleogene boundary. PLoS biology, 16(3), e2001663.
---
Original figure legend:
A. elainus FSAC-OB 2, holotype partial skeleton and FSAC-OB 217, metacarpal IV.

(A) Holotype right humerus in anterior view, (B) holotype right ulna and radius in anterior view, respectively, (C) holotype sternum in left lateral view, (D) referred metacarpal IV, (E) holotype, distal end of left metacarpal IV and left scapulocoracoid, and (F) holotype right femur in posterior view. Abbreviations: co, coracoid; cr, cristospine; dc, distal condyle; dpc, deltopectoral crest; ect, ectepicondyle; fh, femoral head; gl, glenoid; gt, greater trochanter; hh, humeral head; hum, humerus; mcIV, metacarpal IV, pc, proximal cotyle; pf, pneumatic foramen; rad, radius; scpr, supracondylar process; ste, sternum; uln, ulna.

Holotype of Alcione elainus. Fig. 6 of: Longrich, N. R., Martill, D. M., & Andres, B. (2018). Late Maastrichtian pterosaurs from North Africa and mass extinction of Pterosauria at the Cretaceous-Paleogene boundary. PLoS biology, 16(3), e2001663. --- Original figure legend: A. elainus FSAC-OB 2, holotype partial skeleton and FSAC-OB 217, metacarpal IV. (A) Holotype right humerus in anterior view, (B) holotype right ulna and radius in anterior view, respectively, (C) holotype sternum in left lateral view, (D) referred metacarpal IV, (E) holotype, distal end of left metacarpal IV and left scapulocoracoid, and (F) holotype right femur in posterior view. Abbreviations: co, coracoid; cr, cristospine; dc, distal condyle; dpc, deltopectoral crest; ect, ectepicondyle; fh, femoral head; gl, glenoid; gt, greater trochanter; hh, humeral head; hum, humerus; mcIV, metacarpal IV, pc, proximal cotyle; pf, pneumatic foramen; rad, radius; scpr, supracondylar process; ste, sternum; uln, ulna.

crête humérus Crétacé Maastrichtien +7
Illustration of a juvenile Tyrannosaurus rex.
Most of this restoration is mostly inspired from the models of 1-year old Tyrannosaurus from the exhibition "T.rex: The Ultimate Predator" at American Museum of Natural History, New York (2019-2021).[1]
[2] and the juvenile Tarbosaurus MPC-D 107/7 (2-3 years old at death).[3]

References

↑ [1]

↑ [2]

↑ Tsuihiji T et.al (2011). "Cranial osteology of a juvenile specimen of Tarbosaurus bataar (Theropoda, Tyrannosauridae) from the Nemegt Formation (Upper Cretaceous) of Bugin Tsav, Mongolia". Journal of Vertebrate Paleontology 31(3): p. 497-517

Illustration of a juvenile Tyrannosaurus rex. Most of this restoration is mostly inspired from the models of 1-year old Tyrannosaurus from the exhibition "T.rex: The Ultimate Predator" at American Museum of Natural History, New York (2019-2021).[1] [2] and the juvenile Tarbosaurus MPC-D 107/7 (2-3 years old at death).[3] References ↑ [1] ↑ [2] ↑ Tsuihiji T et.al (2011). "Cranial osteology of a juvenile specimen of Tarbosaurus bataar (Theropoda, Tyrannosauridae) from the Nemegt Formation (Upper Cretaceous) of Bugin Tsav, Mongolia". Journal of Vertebrate Paleontology 31(3): p. 497-517

prédateur musée Mongolie Crétacé +8
1 2 3 4 5 6 7 8 9 10 11 12

Actualités

Giant New Dinosaur Species Discovered in Thailand Reveals Hidden Diversity of Asian Titans
Une nouvelle espèce de dinosaure géant découverte en Thaïlande révèle la diversité cachée des titans asiatiques
os Thaïlande Crétacé Crétacé inférieur Dinosauria Somphospondyli Titanosauriformes découverte nouvelle espèce
Les paléontologues ont identifié un nouveau genre et une nouvelle espèce de dinosaure titanosauriforme somphospondylan - le plus grand jamais découvert en Asie du Sud-Est - à partir d'ossements fossilisés trouvés en Thaïlande, offrant ainsi une nouvelle preuve que la région abritait un groupe étonnamment diversifié d'énormes herbivores au début du Crétacé. L'article Une nouvelle espèce de dinosaure géant découverte en Thaïlande révèle la diversité cachée des titans asiatiques apparaît en premier sur Sci.News : Breaking Science News.
14/05/2026 sci-news ⚙ Traduction automatique
Duplicated Genomes Helped Flowering Plants Survive End-Cretaceous Mass Extinction
Des génomes dupliqués ont aidé les plantes à fleurs à survivre à l'extinction massive de la fin du Crétacé
Crétacé extinction
Une nouvelle analyse de 470 espèces de plantes à fleurs révèle que la duplication du génome entier a augmenté précisément pendant les crises environnementales de la Terre, ce qui suggère que la nature garde un plan de secours caché à la vue de tous. L'article Des génomes dupliqués ont aidé les plantes à fleurs à survivre à l'extinction massive de la fin du Crétacé est apparu en premier sur Sci.News : Breaking Science News.
12/05/2026 sci-news ⚙ Traduction automatique
Gongshuilong: Beast of the Week
Gongshuilong : Bête de la semaine
os Chine Crétacé Crétacé supérieur Gongshuilong Hadrosauria
 Aujourd'hui, nous examinons un hadrosaure récemment décrit avec un look unique, Gongshuilong fanwei ! Gongshuilong vivait dans ce qui est aujourd'hui l'est de la Chine, à la fin du Crétacé, il y a entre 68 et 66 millions d'années.  Du bec à la queue, il mesurait environ 7 m de long et aurait été un herbivore de son vivant.  Le nom du genre se traduit du mandarin par "Dragon de la rivière Gong" en référence à la rivière Gong près de l'endroit où ses os ont été découverts. Reconstruction de la vie de Gongshuilong à l'aquarelle b
10/05/2026 prehistoricbeastoftheweek ⚙ Traduction automatique
Mexidracon: Beast of the Week
Mexidracon : Bête de la semaine
Mexique Crétacé Crétacé supérieur Dinosauria
 Cette semaine, nous allons nous intéresser à un théropode inhabituel.  Découvrez Mexidracon longimanus !Mexidracon était un dinosaure théropode qui vivait dans ce qui est aujourd'hui Coahuila, au Mexique, à la fin du Crétacé, il y a environ 72 millions d'années.  Du bec à la queue, il mesurait environ 3 mètres de long.  Son nom de genre se traduit par « Dragon mexicain » et son nom d'espèce par « longue main ».  Il se peut qu'il ait mangé des plantes de son vivant ou qu'il ait peut-être mangé un mélange de plantes et de viande.  Reconstruction de la vie du Mexidracon dans
03/05/2026 prehistoricbeastoftheweek ⚙ Traduction automatique
In Cretaceous Oceans, Giant ‘Kraken-Like’ Octopuses May Have Been Top Predators
Dans les océans du Crétacé, les poulpes géants « ressemblant à un Kraken » pourraient avoir été les principaux prédateurs
prédateur Crétacé
D'énormes céphalopodes au corps mou, mesurant jusqu'à 19 m de long, rivalisaient - et peut-être chassaient - avec les reptiles les plus féroces de l'océan au Crétacé, selon une nouvelle recherche menée par des paléontologues de l'Université d'Hokkaido. L'article Dans les océans du Crétacé, les poulpes géants « ressemblant à un Kraken » pourraient avoir été les principaux prédateurs est apparu en premier sur Sci.News : Breaking Science News.
27/04/2026 sci-news ⚙ Traduction automatique
1 2 3 4 5 6 7 8 9 10