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Yaraloidea (Marsupialia, Peramelemorphia), a new superfamily of marsupial and a description and analysis of the cranium of the Miocene Yarala burchfieldi

Published online by Cambridge University Press:  14 July 2015

Jeanette Muirhead*
Affiliation:
School of Biological Science, University of New South Wales, NSW 2052 Australia

Abstract

The skull of the Miocene Yarala burchfieldi Muirhead and Filan, 1995, is described. Analysis of skull morphology supports phylogenetic conclusions based on dental morphology. Y. burchfieldi shares a number of synapomorphies with other peramelemorphians, some of which are unique and help to define this order of marsupials. Y. burchfieldi is the most plesiomorphic peramelemorphian known. Although sharing some derived characters with a number of extant taxa, Y. burchfieldi lacks synapomorphies that unite all other peramelemorphian taxa as the Superfamily Perameloidea. The Yaraloidea and Yaralidae, a new superfamily and family of peramelemorphians, is proposed and diagnosed on the basis of Y. burchfieldi. Fossil evidence supports the late divergence of perameloids, while peramelemorphian diversity in the Tertiary indicates an ancient derivation for the order.

Type
Research Article
Copyright
Copyright © The Paleontological Society 2000

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References

Aplin, K., and Archer, M. 1987. Recent advances in marsupial systematics with a new syncretic classification, p. xvlxxii. In Archer, M. (ed.), Possums and Opossums: Studies in Evolution. Surrey Beatty and Sons and the Royal Zoological Society of New South Wales, Sydney.Google Scholar
Aplin, K., Baverstock, P., and Donnellan, S. 1993. Albumen immunological evidence for the time and mode of origin of the New Guinea terrestrial mammalian fauna. Science in New Guinea, 19:131145.Google Scholar
Archer, M. 1976a. The basicranial region of marsupicarnivores (Marsupialia), interrelationships of carnivorous marsupials, and affinities of the insectivorous marsupial peramelids. Journal of the Linnean Society of London (Zoology), 59:217322.CrossRefGoogle Scholar
Archer, M. 1976b. The dasyurid dentition and its relationships to that of didelphids, thylacinids, borhyaenids (Marsupicarnivora) and Peramelids (Peramelina Marsupialia). Australian Journal of Zoology, Supplementary Series, 39:134.CrossRefGoogle Scholar
Archer, M. 1976c. The Bluff Downs Local Fauna, p. 383395. In Archer, M. and Wade, M. (eds.), The Allingham Formation and a New Pliocene Vertebrate Fauna from Northern Queensland. Memoirs of the Queensland Museum, 17.Google Scholar
Archer, M., and Kirsch, J. A. W. 1977. The case for the Thylacomyidae and Myrmecobiidae, Gill, 1872, or why are marsupial families so extended? Proceedings of the Linnean Society of New South Wales, 102:1825.Google Scholar
Archer, M., Godthelp, H., and Hand, S. J. 1993. Early Eocene marsupial from Australia. Kaupia, 3:193200.Google Scholar
Archer, M., Godthelp, H., Hand, S. J., and Megirian, D. 1989. Fossil mammals of Riversleigh, northwestern Queensland preliminary overview of biostratigraphy, correlation and environmental change. Australian Zoologist, 25:2965.CrossRefGoogle Scholar
Archer, M., Hand, S. J., Godthelp, H., and Creaser, P. 1997. Correlation of the Cainozoic sediments of the Riversleigh World Heritage Fossil Property, Queensland, Australia, p. 131152. In Aguilar, J.-P., Legendre, S., and Michaux, J. (eds.), Actes Du Congres BiochroM'97. Memoires et Travaux de l'E. P. H. E., Institut de Montpellicr, 21.Google Scholar
Baverstock, P. R., Birrell, J., and Krieg, M. 1987. Albumen immunological relationships among Australian possums: a progress report, p. 229234. In Archer, M. (ed.), Possums and Opossums: Studies in Evolution. Surrey Beatty and Sons and the Royal Zoological Society of New South Wales, Sydney.Google Scholar
Baverstock, P. R., Flannery, T., Aplin, K., Birrell, J., and Krieg, M. 1990a. Albumen immunologic relationships of the bandicoots (Perameloidea Marsupialia)—a preliminary report, p. 1318. In Seebeck, J. H., Brown, P. R., Wallis, R. L., and Kemper, C. M. (eds.), Bandicoots and Bilbies. Surrey Beatty and Sons, Sydney.Google Scholar
Baverstock, P. R., Krieg, M., and Birrell, J. 1990b. Evolutionary relationships of Australian marsupials as assessed by albumin immunology. Australian Journal of Zoology, 37:273287.CrossRefGoogle Scholar
Bensley, B. A. 1903. On the evolution of the Australian Marsupialia with remarks on the relationships of marsupials in general. Transactions of the Linnean Society of London (Zoology), 9:83217.CrossRefGoogle Scholar
Cifelli, R. L., and de Muizon, C. 1997 Dentition and jaw of Kokopellia juddi, a primitive marsupial or near-marsupial from the medial Cretaceous of Utah. Journal of Mammalian Evolution, 4:241258.CrossRefGoogle Scholar
Clemens, W. A. Jr. 1979. Marsupialia, p. 192220. In Lillegraven, J. A., Kielan-Jaworowska, Z., and Clemens, W. A. Jr. (eds.), In Mesozoic Mammals—The First Two-thirds of Mammalian History. University of California Press, Berkeley.Google Scholar
Clemens, W. A., and Lillegraven, J. A. 1986. New Late Cretaceous, North American advanced therian mammals that fit neither the marsupial or eutherian molds. Contributions to the Geological University of Wyoming Special Papers, 3:5585.Google Scholar
Cuvier, G. 1817. Le regne animal distribue d'apres son organisation, pour servir de base a l'histoire naturelle des animaux et d'introduction a l'anatomie comparee. Deterville, Paris, 1, 540 p.Google Scholar
Filan, S. L. 1990. Myology of the head and neck of the bandicoot (Marsupialia Peramelemorphia). Australian Journal of Zoology, 38:617634.CrossRefGoogle Scholar
Flower, W. H. 1867. On the development and succession of teeth in the Marsupialia. Philosophical Transactions of the Royal Society of London, 157:631641.Google Scholar
Fox, R. C. 1983. Notes on the North American Tertiary marsupials Herpetotherium and Peradectes . Canadian Journal of Earth Sciences, 20:15651578.CrossRefGoogle Scholar
Gaudin, T. J., Wible, J. R., Hopson, J. A., and Turnbull, W. D. 1996. Reexamination of the morphological evidence for the cohort Epitheria (Mammalia, Eutheria). Journal of Mammalian Evolution, 3:3179.CrossRefGoogle Scholar
Gray, J. E. 1825. Outline of an attempt at the disposition of the Mammalia into tribes and families with a list of the genera apparently appertaining to each tribe. Annals of Philosophy n.s., 10:336344.Google Scholar
Godthelp, H., Wroe, S., and Archer, M. 1999. A new marsupial from the early Eocene Tingamarra Local Fauna of Murgon, southeastern Queensland: a prototypical Australian marsupial? Journal of Mammalian Evolution, 6:289313.CrossRefGoogle Scholar
Godthelp, H., Archer, M., Cifelli, R., Hand, S. J., and Gilkeson, C. F. 1992. Earliest known Australian Tertiary mammal fauna. Nature, 256:514516.CrossRefGoogle Scholar
Groves, C. P., and Flannery, T. 1990. Revision of the families and genera of bandicoots, p. 111. In Seebeck, J. H., Brown, P. R., Wallis, R. L., and Kemper, C. M. (eds.), Bandicoots and Bilbies. Surrey Beatty and Sons, Sydney.Google Scholar
Illiger, C. 1811. Prodromus systematis mammalian et avium; additus terminus zoographicis utriusque classis. C. Salfeld, Berlin, 301 p.Google Scholar
Johanson, Z. 1996. Revision of the late Cretaceous North American marsupial genus Alphadon . Palaeontographica, 242:127184.Google Scholar
Kirsch, J. A. W. 1968. Prodromus of the comparative serology of Marsupialia. Nature, 217:418420.CrossRefGoogle ScholarPubMed
Kirsch, J. A. W. 1977. The comparative serology of Marsupialia, and a classification of marsupials. Australian Journal of Zoology, Supplementary Series, 52:1152.CrossRefGoogle Scholar
Kirsch, J. A. W., Lapointe, F. J., and Springer, M. S. 1997. DNA-hybridisation studies of marsupials and their implications for metatherian classification. Australian Journal of Zoology, 45:211280.CrossRefGoogle Scholar
Kirsch, J. A. W., Dickerman, A. W., Reig, O. A., and Springer, M. S. 1991. DNA hybridization evidence for the Australasian affinity of the American marsupial Dromiciops australis . Proceedings of the National Academy of Science USA, 88:1046510469.CrossRefGoogle ScholarPubMed
Kirsch, J. A. W., Springer, M. S., Krajewski, C., Archer, M., Aplin, K., and Dickerman, A. W. 1990. DNA/DNA hybridization studies of the carnivorous marsupials. I The intergeneric relationships of bandicoots (Marsupialia Perameloidea). Journal of Molecular Evolution, 30:434448.CrossRefGoogle Scholar
Krajewski, C., Buckley, L., and Westerman, M. 1997. DNA phylogeny of the marsupial wolf resolved. Proceedings of the Royal Society of London, B, 264:911917.CrossRefGoogle ScholarPubMed
Lowenstein, J. M., Sarich, V. M., and Richardson, B. J. Albumen systematics of the extinct mammoth and Tasmanian wolf. Nature 291:409411.CrossRefGoogle Scholar
Luckett, W. P. 1993. An ontogenetic assessment of dental homologies in therian mammals, p. 182204. In Szalay, F. S., Novacek, M. J., and McKenna, M. C. (eds.), Mammal Phylogeny, Volume 1. Springer-Verlag, New York.CrossRefGoogle Scholar
Luckett, W. P. 1994. Suprafamilial relationships within Marsupialia resolution and discordance from multidisciplinary data. Journal of Mammalian Evolution, 2:255283.CrossRefGoogle Scholar
Mackness, B., Archer, M., and Muirhead, J. 1993. An enigmatic family of marsupials from the Early Pliocene Bluff Downs Local Fauna of northeastern Queensland. Abstracts Conference on Australasian Vertebrate Evolution, Palaeontology and Systematics, 17.Google Scholar
Marshall, L. G. 1972. Evolution of the peramelid tarsus. Proceedings of the Royal Society of Victoria, 85:5160.Google Scholar
Marshall, L. G., and de Muison, C. 1988. The dawn of the age of mammals in South America. National Geographic Research, 4:2355.Google Scholar
Marshall, L. G., and de Muison, C. 1995. Part II, the skull, p. 2190. In De Muizon, C. (ed.), Pucadelphys andinus (Marsupialia, Mammalia) from the early Paleocene of Bolivia. Memoires du Museum national d'Histoire naturelle, 165.Google Scholar
Marshall, L. G., Case, J. A., and Woodburne, M. O. 1990. Phylogenetic relationships of the families of marsupials, p. 433505. In Genoways, H. H. (ed.), Current Mammalogy. Plenum Press, New York.Google Scholar
Muirhead, J. 1992. A specialised thylacinid, Thylacinus macknessi, (Marsupialia: Thylacinidae) from Miocene deposits of Riversleigh, northwestern Queensland. Australian Mammalogy, 15:6776.Google Scholar
Muirhead, J. 1994. Systematics, evolution and paleobiology of Recent and fossil bandicoots (Peramelemorphia, Marsupialia). Unpublished Ph.D. dissertation, University of New South Wales, Sydney, 463 p.Google Scholar
Muirhead, J. 1997. Two new early Miocene thylacines from Riversleigh, northwestern Queensland. Memoirs of the Queensland Museum, 41:367377.Google Scholar
Muirhead, J., and Filan, S. 1995. Yarala burchfieldi, a plesiomorphic bandicoot (Marsupialia, Peramelemorphia) from Oligo-Miocene deposits of Riversleigh, northwestern Queensland. Journal of Paleontology, 69:127134.CrossRefGoogle Scholar
Muirhead, J., and Wroe, S. 1998. A new genus and species, Badjcinus turnbulli (Thylacinidae Marsupialia), from the late Oligocene of Riversleigh, northern Australia, and an investigation of thylacinid phylogeny. Journal of Vertebrate Paleontology, 18:612626.CrossRefGoogle Scholar
Muirhead, J., Dawson, L., and Archer, M. 1997. Perameles bowensis, a new species of Perameles (Peramelemorphia, Marsupialia) from the Pliocene Faunas of Bow and Wellington Caves, New South Wales. Proceedings of the Linnean Society of New South Wales, 117:163173.Google Scholar
Murray, P., Wells, R., and Plane, M. 1987. The cranium of the Miocene Thylacoleonid, Wakaleo vanderleuri click go the shears—a fresh bite at thylacoleonid systematics, p. 433466. In Archer, M. (ed.), Possums and Opossums: Studies in Evolution. Surrey Beatty and Sons and the Royal Zoological Society of New South Wales, Sydney.Google Scholar
Novacek, M. J. 1986. The skull of leptictid insectivores and the higher-level classification of eutherian mammals. Bulletin of the American Museum of Natural History, 183:1112.Google Scholar
Reig, O. A., Kirsch, J. A. W., and Marshall, L. G. 1987. Systematic relationships of the living and neocenozoic American ‘opossum-like’ marsupials (suborder Didelphimorphia), with comments on the classification of these and of the Cretaceous and Paleogene New World and European metatherians, p. 189. In Archer, M. (ed.), Possums and Opossums: Studies in Evolution. Surrey Beatty and Sons and the Royal Zoological Society of New South Wales, Sydney.Google Scholar
Retief, J. D., Krajewski, C., Westerman, M., Winfein, R. H., and Dixon, G. H. 1995. Molecular phylogeny and evolution of marsupial protamine P1 genes. Proceedings of the Royal Society of London (B), 259:714.Google ScholarPubMed
Rich, T. H., Archer, M., Hand, S. J., Godthelp, H., Muirhead, J., Pledge, N. S., Lundelius, E. L. Jr., Flannery, T. F., Rich, L. S. V., Woodburne, M. O., Case, J. A., Whitelaw, M. J., Tedford, R. H., Kemp, A., Turnbull, W. D., and Rich, P. V. 1991. Australian Mesozoic and Tertiary terrestrial mammal localities, Appendix 1, p. 10051058. In Vickers-Rich, P., Monaghan, J. M., Baird, R. F. and Rich, T. H. (eds.), Vertebrate Palaeontology of Australia. Pioneer Design Studio and Monash University Publications Committee, Melbourne.Google Scholar
Segall, W. 1969. The middle ear region of Dromiciops . Acta anatomica, 72:489501.CrossRefGoogle ScholarPubMed
Springer, M. S., Westerman, M., and Kirsch, J. A. W. 1994. Relationships among orders and families of marsupials based on 12S ribosomal DNA sequences and the timing of the marsupial radiation. Journal of Mammalian Evolution, 2:85114.CrossRefGoogle Scholar
Stirton, R. A. 1955. Late Tertiary marsupials from South Australia. Records of the South Australian Museum, 11:247268.Google Scholar
Szalay, F. S. 1982. A new appraisal of marsupial phylogeny and classification, p. 621640. In Archer, M. (ed.), Carnivorous Marsupials. Royal Zoological Society of New South Wales, Sydney.Google Scholar
Szalay, F. S. 1994. Evolutionary History of the Marsupialia and an Analysis of Osteological Characters. Cambridge University Press, New York, 455 p.Google Scholar
Waterhouse, G. R. 1838. Catalogue of the mammalia preserved in the museum of the Zoological Society (second edition). Richard and John E. Taylor, London.Google Scholar
Westerman, M., and Edwards, D. 1991. The relationships of Dromiciops australis to other marsupials data from DNA-DNA hybridisation studies. Australian Journal of Zoology, 39:123130.CrossRefGoogle Scholar
Woodburne, M. O., and Case, J. A. 1996. Dispersal, vicariance, and the Late Cretaceous to Early Tertiary land mammal biogeography from South America to Australia. Journal of Mammalian Evolution, 3:121161.CrossRefGoogle Scholar
Wright, W., Sanson, G. D., and McArthur, C. 1991. The diet of the extinct bandicoot Chaeropus ecaudatus , p. 229245. In Vickers-Rich, P., Monaghan, J. M., Baird, R. F., and Rich, T. H. (eds.), Vertebrate Palaeontology of Australasia. Pioneer Design Studio, Lilydale, Victoria.Google Scholar
Wroe, S. 1997a. A reexamination of proposed morphology-based synapomorphies for the families of Dasyuromorphia (Marsupialia) I. Dasyuridae. Journal of Mammalian Evolution, 4:1952.CrossRefGoogle Scholar
Wroe, S. 1997b. Mayigriphus orbus gen. et sp. nov., a Miocene dasyuromorphian from Riversleigh, northwestern Queensland. Memoirs of the Queensland Museum, 41:439448.Google Scholar
Wroe, S. 1999. The geologically oldest dasyurid, from the Miocene of Riversleigh, northwestern Queensland. Palaeontology, 42:501527.CrossRefGoogle Scholar