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1 - Molecular tools in palaeobiology: divergence and mechanisms

Published online by Cambridge University Press:  05 November 2012

Robert J. Asher
Affiliation:
University of Cambridge
Johannes Müller
Affiliation:
Museum für Naturkunde; Humboldt Universität zu Berlin
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Summary

In 1987, Cambridge University Press published a volume entitled Molecules and Morphology in Evolution: Conflict or Compromise? edited by the esteemed British palaeobiologist Colin Patterson. Since the 1980s, we have witnessed a great deal of incorporation of the tools and data of molecular biology into palaeontological hypothesis building and testing. The degree of integration is substantial enough so as to rule out the rather pejorative subtitle of the 1987 volume, ‘conflict or compromise’. We believe a new designation is appropriate: ‘synergy’. Stated differently, our ability to address major questions in biological history requires the integration of molecular methods and data into the palaeobiologist's toolkit. The antagonism implicit in the notion of ‘conflict or compromise’ is more an artefact of disciplinary boundaries and analytical traditions, and is not firmly rooted in the data of biology. Palaeobiologists today routinely consider data from molecular biology in their research on the shape and antiquity of the tree of life (‘divergence’), and in understanding the genetic and developmental mechanisms behind morphological change (‘mechanisms’).

This book documents aspects of this synergy, focusing on these two general categories: divergence and mechanisms. It derives from the symposium ‘molecular tools in palaeobiology’ that took place during the 2009 meetings of the Society of Vertebrate Paleontology in Bristol, UK. In retrospect, we realize that the ‘vertebrate’ orientation of that conference has resulted in a level of taxonomic focus in this book that excludes many important contributions regarding evolutionary divergence and mechanisms. Nevertheless, this is no small taxonomic category, and there has been much to say about it since 1987.

Type
Chapter
Information
From Clone to Bone
The Synergy of Morphological and Molecular Tools in Palaeobiology
, pp. 1 - 15
Publisher: Cambridge University Press
Print publication year: 2012

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References

Akam, M.Dawson, I.Tear, G. 1988 Homeotic genes and the control of segment diversityDevelopment 104 123Google Scholar
Andrews, P. 1987 Aspects of hominoid phylogenyMolecules and Morphology in Evolution: Conflict or Compromise?Patterson, C.Cambridge, UKCambridge University Press23Google Scholar
Arnason, U.Gullberg, A.Janke, A.Joss, J.Elmerot, C. 2004 Mitogenomic analyses of deep gnathostome divergences: a fish is a fishGene 333 61CrossRefGoogle ScholarPubMed
Asher, R. J.Bennett, N.Lehmann, T. 2009 The new framework for understanding placental mammal evolutionBioEssays 31 853CrossRefGoogle ScholarPubMed
Asher, R. J.Meng, J.Wible, J. R. 2005 Stem Lagomorpha and the antiquity of GliresScience 307 1091CrossRefGoogle ScholarPubMed
Benton, M. J.Donoghue, P. C. J.Asher, R. J. 2009 Calibrating and constraining molecular clocksThe Timetree of LifeHedges, S. B.Kumar, S.Oxford, UKOxford University Press,35Google Scholar
Bininda-Emonds, O. R.Cardillo, M. 2007 The delayed rise of present-day mammalsNature 446 507CrossRefGoogle ScholarPubMed
Bishop, M. J.Friday, A. E. 1987 Tetrapod relationships: the molecular evidenceMolecules and Morphology in Evolution: Conflict or Compromise?Patterson, C.Cambridge, UKCambridge University Press123Google Scholar
Burke, A. C.Feduccia, A. 1997 Developmental patterns and the identification of homologies in the avian handScience 278 666CrossRefGoogle Scholar
Cohn, M. J.Tickle, C. 1999 Developmental basis of limblessness and axial patterning in snakesNature 399 474CrossRefGoogle ScholarPubMed
Delsuc, F.Tsagkogeorga, G.Lartillot, N.Philippe, H. 2008 Additional molecular support for the new chordate phylogenyGenesis 46 592CrossRefGoogle ScholarPubMed
D'Erchia, A. M.Gissi, C.Pesole, G.Saccone, C.Arnason, U. 1996 The guinea-pig is not a rodentNature 381 597CrossRefGoogle Scholar
Donoghue, P. C. J.Purnell, M. A. 2009 Distinguishing heat from light in debate over controversial fossilsBioEssays 31 178CrossRefGoogle ScholarPubMed
Doolittle, W. F.Bapteste, E. 2007 Pattern pluralism and the Tree of Life hypothesisProceedings of the National Academy of Sciences of the United States of America 104 2043CrossRefGoogle ScholarPubMed
Dos Reis, M.Inoue, J.Hasegawa, M. 2012
Felsenstein, J. 1978 The number of evolutionary treesSystematic Zoology 27 27CrossRefGoogle Scholar
Fleischmann, A. 1901 Die DescendenztheorieLeipzig, GermanyArthur GeorgiGoogle Scholar
Foote, M.Hunter, J. P.Janis, C. M.Sepkoski, J. J. 1999 Evolutionary and preservational constraints on origins of biologic groups: divergence times of eutherian mammalsScience 283 1310CrossRefGoogle ScholarPubMed
Gardiner, B. G. 1993 Haematothermia – warm-blooded amniotesCladistics–the International Journal of the Willi Hennig Society 9 369CrossRefGoogle Scholar
Goodman, M.Miyamoto, M. M.Czelusniak, J. 1987 Pattern and process in vertebrate phylogeny revealed by coevolution of molecules and morphologiesMolecules and Morphology in Evolution: Conflict or Compromise?Patterson, C.Cambridge, UKCambridge University PressGoogle Scholar
Gill, T. 1872 Arrangement of the Families of FishesWashington, DCSmithsonian InstitutionGoogle Scholar
Graur, D.Martin, W. 2004 Reading the entrails of chickens: molecular timescales of evolution and the illusion of precisionTrends in Genetics 20 80CrossRefGoogle ScholarPubMed
Haeckel, E. 1874 Natürliche Schöpfungsgeschichte: Gemeinverständliche wissenschaftliche Vorträge über die Entwickelungslehre im Allgemeinen und diejenige von Darwin, Goethe und Lamarck im BesonderenBerlinG. ReimerGoogle Scholar
Hall, B. K. 2002 Palaeontology and evolutionary developmental biology: a science of the nineteenth and twenty-first centuriesPalaeontology 45 647CrossRefGoogle Scholar
Hallström, B. M.Janke, A. 2009 Gnathostome phylogenomics utilizing lungfish EST sequencesMolecular Biology and Evolution 26 463CrossRefGoogle ScholarPubMed
Hallström, B. M.Janke, A. 2010 Mammalian evolution may not be strictly bifurcatingMolecular Biology and Evolution 27 2804CrossRefGoogle Scholar
Hautier, L.Weisbecker, V.Sanchez-Villagra, M. R.Goswami, A.Asher, R. J. 2010 Skeletal development in sloths and the evolution of mammalian vertebral patterningProceedings of the National Academy of Sciences of the United States of America 107 18 903CrossRefGoogle ScholarPubMed
Hedges, S. B. 1994 Molecular evidence for the origin of birdsProceedings of the National Academy of Sciences of the United States of America 91 2621CrossRefGoogle Scholar
Hedges, S. B.Moberg, K. D.Maxson, L. R. 1990 Tetrapod phylogeny inferred from 18S and 28S ribosomal RNA sequences and a review of the evidence for amniote relationshipsMolecular Biology and Evolution 7 607Google Scholar
Hugall, A. F.Foster, R.Lee, M. S. 2007 Calibration choice, rate smoothing, and the pattern of tetrapod diversification according to the long nuclear gene RAG-1Systematic Biology 56 543CrossRefGoogle Scholar
Hunter, J. P.Janis, C. 2006 Spiny Norman in the Garden of Eden? Dispersal and early biogeography of PlacentaliaJournal of Mammalian Evolution 13 89CrossRefGoogle Scholar
Huxley, T. H. 1868 On the animals which are most nearly intermediate between birds and reptilesGeological Magazine 5 357Google Scholar
Keynes, R. J.Stern, C. D. 1988 Mechanisms of vertebrate segmentationDevelopment 103 413Google ScholarPubMed
Kielan-Jaworowska, Z. 1978 Evolution of the therian mammals in the Late Cretaceous of Asia. III. Postcranial skeleton in ZalambdalestidaePalaeontologia Polonica 38 3Google Scholar
Kitazoe, Y.Kishino, H.Waddell, P. J. 2007 Robust time estimation reconciles views of the antiquity of placental mammalsPLoS One 2CrossRefGoogle ScholarPubMed
Kumar, S.Hedges, S. B. 1998 A molecular timescale for vertebrate evolutionNature 392 917CrossRefGoogle ScholarPubMed
Larsson, H. C.Wagner, G. P. 2002 Pentadactyl ground state of the avian wingJournal of Experimental Zoology 294 146CrossRefGoogle ScholarPubMed
Li, C.Wu, X. C.Rieppel, O.Wang, L. T.Zhao, L. J. 2008 An ancestral turtle from the Late Triassic of southwestern ChinaNature 456 497CrossRefGoogle ScholarPubMed
Lockwood, C. A. 2007 The Human StoryLondonThe Natural History MuseumGoogle Scholar
Mayr, E. 1982 The Growth of Biological Thought: Diversity, Evolution, and InheritanceCambridge, MABelknap PressGoogle Scholar
McIntyre, D. C.Rakshit, S.Yallowitz, A. R. 2007 Hox patterning of the vertebrate rib cageDevelopment 134 2981CrossRefGoogle ScholarPubMed
Murphy, W. J.Eizirik, E.O’Brien, S. J. 2001 Resolution of the early placental mammal radiation using Bayesian phylogeneticsScience 294 2348CrossRefGoogle ScholarPubMed
Nagashima, H.Sugahara, F.Takechi, M. 2009 Evolution of the turtle body plan by the folding and creation of new muscle connectionsScience 325 193CrossRefGoogle ScholarPubMed
Noonan, J. P.Hofreiter, M.Smith, D. 2005 Genomic sequencing of Pleistocene cave bearsScience 309 597CrossRefGoogle ScholarPubMed
Organ, C. L.Janes, D. E.Meade, A.Pagel, M. 2009 Genotypic sex determination enabled adaptive radiations of extinct marine reptilesNature 461 389CrossRefGoogle ScholarPubMed
Organ, C. L.Schweitzer, M. H.Zheng, W. 2008 Molecular phylogenetics of mastodon and Science 320CrossRefGoogle Scholar
Organ, C. L.Shedlock, A. M.Meade, A.Pagel, M.Edwards, S. V. 2007 Origin of avian genome size and structure in non-avian dinosaursNature 446 180CrossRefGoogle ScholarPubMed
Paäbo, S. 1989 Ancient DNA: extraction, characterization, molecular cloning, and enzymatic amplificationProceedings of the National Academy of Sciences of the United States of America 86 1939CrossRefGoogle ScholarPubMed
Patterson, C. 1987 Molecules and Morphology in Evolution: Conflict or Compromise?Cambridge, UKCambridge University PressGoogle Scholar
Penny, D.Foulds, L. R.Hendy, M. D. 1982 Testing the theory of evolution by comparing phylogenetic trees constructed from five different protein sequencesNature 297 197CrossRefGoogle ScholarPubMed
Polly, P. D. 2001 On morphological clocks and paleophylogeography: towards a timescale for hybrid zonesGenetica 112 339CrossRefGoogle ScholarPubMed
Raup, D. M. 1978 Cohort analysis of generic survivorshipPaleobiology 4 1CrossRefGoogle Scholar
Reisz, R. R.Müller, J. 2004 Molecular timescales and the fossil record: a paleontological perspectiveTrends in Genetics 20 237CrossRefGoogle ScholarPubMed
Ricklefs, R. E.Losos, J. B.Townsend, T. M. 2007 Evolutionary diversification of clades of squamate reptilesJournal of Evolutionary Biology 20 1751CrossRefGoogle ScholarPubMed
Rieppel, O. 2009 How did the turtle get its shell?Science 325 154CrossRefGoogle ScholarPubMed
Sánchez-Villagra, M. R. 2010 Developmental palaeontology in synapsids: the fossil record of ontogeny in mammals and their closest relativesProceedings of the Royal Society B–Biological Sciences 277 1139CrossRefGoogle ScholarPubMed
Sánchez-Villagra, M. R.Smith, K. K. 1997 Diversity and evolution of the marsupial mandibular angular processJournal of Mammalian Evolution 4 119CrossRefGoogle Scholar
Schmid, L.Sánchez-Villagra, M. R. 2010 Potential genetic bases of morphological evolution in the triassic fish Journal of Experimental Zoology B–Molecular and Developmental Evolution 314B 519CrossRefGoogle Scholar
Sepkoski, J. J.Bambach, R. K.Raup, D. M.Valentine, J. W. 1981 Phanerozoic marine diversity and the fossil recordNature 293 435CrossRefGoogle Scholar
Shapiro, M. D.Hanken, J.Rosenthal, N. 2003 Developmental basis of evolutionary digit loss in the Australian lizard Journal of Experimental Zoology B–Molecular and Developmental Evolution 297B 48CrossRefGoogle Scholar
Shubin, N.Tabin, C.Carroll, S. 1997 Fossils, genes and the evolution of animal limbsNature 388 639CrossRefGoogle ScholarPubMed
Shubin, N.Tabin, C.Carroll, S. 2009 Deep homology and the origins of evolutionary noveltyNature 457 818CrossRefGoogle ScholarPubMed
Simons, E. L. 1972 Primate Evolution: An Introduction to Man's Place in NatureNew YorkMacmillanGoogle Scholar
Simpson, G. G. 1944 Tempo and Mode in EvolutionNew YorkColumbia University PressGoogle Scholar
Smith, M. M. 2003 Vertebrate dentitions at the origin of jaws: when and how pattern evolvedEvolution and Development 5 394CrossRefGoogle ScholarPubMed
Smith, M. M.Hall, B. K. 1990 Developmental and evolutionary origins of vertebrate skeletogenic and odontogenic tissuesBiological Reviews of the Cambridge Philosophical Society 65 277CrossRefGoogle ScholarPubMed
Takechi, M.Kuratani, S. 2010 History of studies on mammalian middle ear evolution: a comparative morphological and developmental biology perspectiveJournal of Experimental Zoology B–Molecular and Developmental Evolution 314 417CrossRefGoogle ScholarPubMed
Wagner, G. P.Gauthier, J. A. 1999 1,2,3 = 2,3,4: a solution to the problem of the homology of the digits in the avian handProceedings of the National Academy of Sciences of the United States of America 96 5111CrossRefGoogle ScholarPubMed
Wible, J. R.Rougier, G. W.Novacek, M. J.Asher, R. J. 2007 Cretaceous eutherians and Laurasian origin for placental mammals near the K/T boundaryNature 447 1003CrossRefGoogle ScholarPubMed
Wible, J. R.Rougier, G. W.Novacek, M. J.Asher, R. J. 2009 The eutherian mammal from the Late Cretaceous of Mongolia and the phylogeny of Cretaceous EutheriaBulletin of the American Museum of Natural History 327 1CrossRefGoogle Scholar
Woese, C. R. 1987 Macroevolution in the microscopic worldMolecules and Morphology in Evolution: Conflict or Compromise?Patterson, C.Cambridge, UKCambridge University PressGoogle Scholar
Zuckerkandl, E.Pauling, L. 1962 Molecular disease, evolution, and genetic heterogeneityHorizons in BiochemistryKasha, M.Pullman, B.New YorkAcademic PressGoogle Scholar

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