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Avian-like attributes of a virtual brain model of the oviraptorid theropod Conchoraptor gracilis

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Abstract

An almost complete adult endoneurocranium of Conchoraptor gracilis Barsbold 1986 (Oviraptoridae; ZPAL MgD-I/95), discovered at the Hermiin Tsav locality (the Upper Cretaceous) in Mongolia, is analyzed. A virtual model of the endoneurocranial cavity was derived from CT scans and represents the most complete maniraptoran endocast to date. It displays reduced olfactory bulbs, large cerebral hemispheres in contact with the expanded cerebellum, an epiphysial projection, optic lobes displaced latero-ventrally, presumptive cerebellar folia, enlarged cerebellar auricles, and a deep medulla oblongata with a prominent ventral flexure. Contrary to Archaeopteryx, the shortened olfactory tract and cerebellum overtopping cerebral hemispheres of Conchoraptor resemble conditions in modern birds. Calculating brain mass relative to body mass indicates that Conchoraptor falls within the range of extant birds, whereas Archaeopteryx occupies a marginal position. Most of the endoneurocranial attributes, however, have a less birdlike appearance in Conchoraptor than do corresponding structures in Archaeopteryx and modern birds in which 1) postero-laterally expanded hemispheral domains broadly overlap the optic lobes, 2) the epiphysis projects to the posterior cerebrum, 3) lateral extension of the optic lobes substantially decreases a brain length-to-width ratio, 4) optic lobe and anterior hindbrain are superposed in lateral view, and 5) cerebellar and midbrain compartments are in distinct superposition. The endoneurocranial characteristics of Conchoraptor, taken together, suggest that the animal had a keen sense of vision, balance, and coordination. The data presented in this study do not allow an unambiguous assessment whether the avian-like endoneurocranial characteristics of the flightless Conchoraptor evolved convergently to those of avian theropods, or indicate a derivation of oviraptorosaurs from volant ancestors.

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References

  • Alonso PD, Milner AC, Ketcham RA, Cookson MJ, Rowe TB (2004) The avian nature of the brain and inner ear of Archaeopteryx. Nature 430:666–669

    Article  PubMed  CAS  Google Scholar 

  • Barsbold R (1986) Raubdinosaurier Oviraptoren. In: Vorobeva EI (ed) Gerpetologicheskie issledovaniya v mongolskoi narodnoi respublike. Acad Sci USSR, Moscow, pp 210–223

    Google Scholar 

  • Barsbold R, Osmólska H, Watabe M, Currie PJ, Tsogtbaatar K (2000) New oviraptorosaur (Dinosauria, Theropoda) from Mongolia: the first dinosaur with a pygostyle. Acta Palaeontol Pol 45:97–106

    Google Scholar 

  • Breazile JE, Hartwig H-G (1989) Central nervous system. In: King AS, McLelland J (eds) Form and function in birds. Academic, London, pp 485–566

    Google Scholar 

  • Brochu CA (2000) A digitally-rendered endocast for Tyrannosaurus rex. J Vertebr Paleontol 20:1–6

    Article  Google Scholar 

  • Campbell KE, Marcus L (1992) The relationship of hindlimb bone dimensions to body weight in birds. Nat. Hist Mus Los Angeles Co Sci Ser 36:395–412

    Google Scholar 

  • Currie PJ, Russell DA (1988) Osteology and relationships of Chirostenotes pergracilis (Saurischia, Theropoda) from the Judith River (Oldman) Formation of Alberta, Canada. Can J Earth Sci 25:972–986

    Google Scholar 

  • Currie PJ, Zhao X-J (1993) A new troodontid (Dinosauria, Theropoda) braincase from the Dinosaur Park Formation (Campanian) of Alberta. In: Currie PJ (ed) Results from the Sino–Canadian dinosaur project. Can J Earth Sci 30:2231–2247

  • Dubbeldam JL (1998) Birds. In: Nieuwenhuys R, Ten Donkelaar HJ, Nicholson C (eds) The central nervous system of vertebrates. Springer, Berlin Heidelberg New York, pp 1525–1636

    Google Scholar 

  • Elzanowski A (1999) A comparison of the jaw skeleton in theropods and birds, with a description of the palate in Oviraptoridae. Smithson Contrib Paleobiol 89:311–323

    Google Scholar 

  • Elzanowski A, Galton PM (1991) Braincase of Enaliornis, an early Cretaceous bird from England. J Vertebr Paleontol 11:90–107

    Article  Google Scholar 

  • Franzosa J, Rowe T (2005) Cranial endocast of the Cretaceous theropod dinosaur Acrocanthosaurus atokensis. J Vertebr Paleontol 25:859–864

    Article  Google Scholar 

  • Jerison HJ (1973) Evolution of the brain and intelligence. Academic, New York

    Google Scholar 

  • Larsell O (1948) The development and subdivisions of the cerebellum of birds. J Comp Neurol 89:123–189

    Article  CAS  PubMed  Google Scholar 

  • Larsson HCE, Sereno PC, Wilson JA (2000) Forebrain enlargement among nonavian theropod dinosaurs. J Vertebr Paleontol 20:615–618

    Article  Google Scholar 

  • Maryańska T, Osmólska H, Wolsan M (2002) Avialan status for Oviraptorosauria. Acta Palaeontol Pol 47:97–116

    Google Scholar 

  • Osmólska H (1976) New light on the skull anatomy and systematic position of Oviraptor philoceratops. Nature 262:683–684

    Article  Google Scholar 

  • Osmólska H (2004) Evidence on relation of brain to endocranial cavity in oviraptorid dinosaurs. Acta Palaeontol Pol 49:321–324

    Google Scholar 

  • Rogers SW (1999) Allosaurus, crocodiles, and birds: evolutionary clues from spiral computed tomography of an endocast. Anat Rec 257:162–173

    Article  PubMed  CAS  Google Scholar 

  • Russell DA (1972) Ostrich dinosaurs from the Late Cretaceous of western Canada. Can J Earth Sci 9:375–402

    Article  Google Scholar 

  • Schommer M (1999) “Rhea americana” (On-line), Animal Diversity Web. Accessed December 18, 2006 at http://animaldiversity.ummz.umich.edu/site/accounts/information/Rhea_americana.html

  • Xu X, Cheng Y-N, Wang X-L, Chang C-H (2002) An unusual oviraptorosaurian dinosaur from China. Nature 419:291–293

    Article  PubMed  CAS  Google Scholar 

Download references

Acknowledgment

I am grateful to Anthony P. Russell for his edit of the final version of the manuscript, to Gerald Mayr for his valuable editor’s comments, Halszka Osmólska and Teresa Maryańska for their access to the fossil specimen, Jiří Janáček for his assistance with 3D modeling and volumetric analysis, and Zdeněk Seidl and Vladimír Smékal for providing access to CT facility.

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Correspondence to Martin Kundrát.

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Communicated by G. Mayr

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Kundrát, M. Avian-like attributes of a virtual brain model of the oviraptorid theropod Conchoraptor gracilis . Naturwissenschaften 94, 499–504 (2007). https://doi.org/10.1007/s00114-007-0219-1

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  • DOI: https://doi.org/10.1007/s00114-007-0219-1

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