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Featured researches published by Greger Larson.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Ancient DNA, pig domestication, and the spread of the Neolithic into Europe

Greger Larson; Umberto Albarella; Keith Dobney; Peter Rowley-Conwy; J. Schibler; Anne Tresset; Jean-Denis Vigne; Ceiridwen J. Edwards; Angela Schlumbaum; A. Dinu; A. Balacsescu; Gaynor Dolman; A. Tagliacozzo; N. Manaseryan; Preston T. Miracle; L.H. van Wijngaarden-Bakker; Marco Masseti; Daniel G. Bradley; Alan Cooper

The Neolithic Revolution began 11,000 years ago in the Near East and preceded a westward migration into Europe of distinctive cultural groups and their agricultural economies, including domesticated animals and plants. Despite decades of research, no consensus has emerged about the extent of admixture between the indigenous and exotic populations or the degree to which the appearance of specific components of the “Neolithic cultural package” in Europe reflects truly independent development. Here, through the use of mitochondrial DNA from 323 modern and 221 ancient pig specimens sampled across western Eurasia, we demonstrate that domestic pigs of Near Eastern ancestry were definitely introduced into Europe during the Neolithic (potentially along two separate routes), reaching the Paris Basin by at least the early 4th millennium B.C. Local European wild boar were also domesticated by this time, possibly as a direct consequence of the introduction of Near Eastern domestic pigs. Once domesticated, European pigs rapidly replaced the introduced domestic pigs of Near Eastern origin throughout Europe. Domestic pigs formed a key component of the Neolithic Revolution, and this detailed genetic record of their origins reveals a complex set of interactions and processes during the spread of early farmers into Europe.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Phylogeny and ancient DNA of Sus provides insights into neolithic expansion in Island Southeast Asia and Oceania

Greger Larson; Thomas Cucchi; Masakatsu Fujita; Elizabeth Matisoo-Smith; Judith H. Robins; Atholl Anderson; Barry V. Rolett; Matthew Spriggs; Gaynor Dolman; Tae Hun Kim; Nguyen Thi Dieu Thuy; Ettore Randi; Moira Doherty; Rokus Awe Due; Robert Bollt; Tony Djubiantono; Bion Griffin; Michiko Intoh; Emile Keane; Patrick V. Kirch; Kuang-ti Li; Michael J Morwood; Lolita M. Pedriña; Philip Piper; Ryan Rabett; Peter Shooter; Gert D. van den Bergh; Eric West; Stephen Wickler; Jing Yuan

Human settlement of Oceania marked the culmination of a global colonization process that began when humans first left Africa at least 90,000 years ago. The precise origins and dispersal routes of the Austronesian peoples and the associated Lapita culture remain contentious, and numerous disparate models of dispersal (based primarily on linguistic, genetic, and archeological data) have been proposed. Here, through the use of mtDNA from 781 modern and ancient Sus specimens, we provide evidence for an early human-mediated translocation of the Sulawesi warty pig (Sus celebensis) to Flores and Timor and two later separate human-mediated dispersals of domestic pig (Sus scrofa) through Island Southeast Asia into Oceania. Of the later dispersal routes, one is unequivocally associated with the Neolithic (Lapita) and later Polynesian migrations and links modern and archeological Javan, Sumatran, Wallacean, and Oceanic pigs with mainland Southeast Asian S. scrofa. Archeological and genetic evidence shows these pigs were certainly introduced to islands east of the Wallace Line, including New Guinea, and that so-called “wild” pigs within this region are most likely feral descendants of domestic pigs introduced by early agriculturalists. The other later pig dispersal links mainland East Asian pigs to western Micronesia, Taiwan, and the Philippines. These results provide important data with which to test current models for human dispersal in the region.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Rethinking dog domestication by integrating genetics, archeology, and biogeography

Greger Larson; Elinor K. Karlsson; Angela R. Perri; Matthew T. Webster; Simon Y. W. Ho; Joris Peters; Peter W. Stahl; Philip Piper; Frode Lingaas; Merete Fredholm; Kenine E. Comstock; Jaime F. Modiano; C. Schelling; Alexander I. Agoulnik; P.A.J. Leegwater; Keith Dobney; Jean-Denis Vigne; Carles Vilà; Leif Andersson; Kerstin Lindblad-Toh

The dog was the first domesticated animal but it remains uncertain when the domestication process began and whether it occurred just once or multiple times across the Northern Hemisphere. To ascertain the value of modern genetic data to elucidate the origins of dog domestication, we analyzed 49,024 autosomal SNPs in 1,375 dogs (representing 35 breeds) and 19 wolves. After combining our data with previously published data, we contrasted the genetic signatures of 121 breeds with a worldwide archeological assessment of the earliest dog remains. Correlating the earliest archeological dogs with the geographic locations of 14 so-called “ancient” breeds (defined by their genetic differentiation) resulted in a counterintuitive pattern. First, none of the ancient breeds derive from regions where the oldest archeological remains have been found. Second, three of the ancient breeds (Basenjis, Dingoes, and New Guinea Singing Dogs) come from regions outside the natural range of Canis lupus (the dog’s wild ancestor) and where dogs were introduced more than 10,000 y after domestication. These results demonstrate that the unifying characteristic among all genetically distinct so-called ancient breeds is a lack of recent admixture with other breeds likely facilitated by geographic and cultural isolation. Furthermore, these genetically distinct ancient breeds only appear so because of their relative isolation, suggesting that studies of modern breeds have yet to shed light on dog origins. We conclude by assessing the limitations of past studies and how next-generation sequencing of modern and ancient individuals may unravel the history of dog domestication.


Proceedings of the Royal Society series B : biological sciences, 2007, Vol.274(1616), pp.1377-1385 [Peer Reviewed Journal] | 2007

Mitochondrial DNA analysis shows a Near Eastern Neolithic origin for domestic cattle and no indication of domestication of European aurochs.

Ceiridwen J. Edwards; Amelie Scheu; Andrew T. Chamberlain; Anne Tresset; Jean-Denis Vigne; Jillian F Baird; Greger Larson; Simon Y. W. Ho; Tim Hermanus Heupink; Beth Shapiro; Abigail R Freeman; Mark G. Thomas; Rose-Marie Arbogast; Betty Arndt; László Bartosiewicz; Norbert Benecke; Mihael Budja; Louis Chaix; Alice M. Choyke; Eric Coqueugniot; Hans-Jürgen Döhle; Holger Göldner; Sönke Hartz; Daniel Helmer; Barabara Herzig; Hitomi Hongo; Marjan Mashkour; Mehmet Özdoğan; Erich Pucher; Georg Roth

The extinct aurochs (Bos primigenius primigenius) was a large type of cattle that ranged over almost the whole Eurasian continent. The aurochs is the wild progenitor of modern cattle, but it is unclear whether European aurochs contributed to this process. To provide new insights into the demographic history of aurochs and domestic cattle, we have generated high-confidence mitochondrial DNA sequences from 59 archaeological skeletal finds, which were attributed to wild European cattle populations based on their chronological date and/or morphology. All pre-Neolithic aurochs belonged to the previously designated P haplogroup, indicating that this represents the Late Glacial Central European signature. We also report one new and highly divergent haplotype in a Neolithic aurochs sample from Germany, which points to greater variability during the Pleistocene. Furthermore, the Neolithic and Bronze Age samples that were classified with confidence as European aurochs using morphological criteria all carry P haplotype mitochondrial DNA, suggesting continuity of Late Glacial and Early Holocene aurochs populations in Europe. Bayesian analysis indicates that recent population growth gives a significantly better fit to our data than a constant-sized population, an observation consistent with a postglacial expansion scenario, possibly from a single European refugial population. Previous work has shown that most ancient and modern European domestic cattle carry haplotypes previously designated T. This, in combination with our new finding of a T haplotype in a very Early Neolithic site in Syria, lends persuasive support to a scenario whereby gracile Near Eastern domestic populations, carrying predominantly T haplotypes, replaced P haplotype-carrying robust autochthonous aurochs populations in Europe, from the Early Neolithic onward. During the period of coexistence, it appears that domestic cattle were kept separate from wild aurochs and introgression was extremely rare.


Proceedings of the National Academy of Sciences of the United States of America | 2014

Current perspectives and the future of domestication studies

Greger Larson; Dolores R. Piperno; Robin G. Allaby; Michael D. Purugganan; Leif Andersson; Manuel Arroyo-Kalin; Loukas Barton; Cynthia C. Vigueira; Tim Denham; Keith Dobney; Andrew N. Doust; Paul Gepts; M. Thomas P. Gilbert; Kristen J. Gremillion; Leilani Lucas; Lewis Lukens; Fiona Marshall; Kenneth M. Olsen; J. Chris Pires; Peter J. Richerson; Rafael Rubio de Casas; Oris I. Sanjur; Mark G. Thomas; Dorian Q. Fuller

It is difficult to overstate the cultural and biological impacts that the domestication of plants and animals has had on our species. Fundamental questions regarding where, when, and how many times domestication took place have been of primary interest within a wide range of academic disciplines. Within the last two decades, the advent of new archaeological and genetic techniques has revolutionized our understanding of the pattern and process of domestication and agricultural origins that led to our modern way of life. In the spring of 2011, 25 scholars with a central interest in domestication representing the fields of genetics, archaeobotany, zooarchaeology, geoarchaeology, and archaeology met at the National Evolutionary Synthesis Center to discuss recent domestication research progress and identify challenges for the future. In this introduction to the resulting Special Feature, we present the state of the art in the field by discussing what is known about the spatial and temporal patterns of domestication, and controversies surrounding the speed, intentionality, and evolutionary aspects of the domestication process. We then highlight three key challenges for future research. We conclude by arguing that although recent progress has been impressive, the next decade will yield even more substantial insights not only into how domestication took place, but also when and where it did, and where and why it did not.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Patterns of East Asian pig domestication, migration, and turnover revealed by modern and ancient DNA

Greger Larson; Ranran Liu; Xingbo Zhao; Jing Yuan; Dorian Q. Fuller; Loukas Barton; Keith Dobney; Qipeng Fan; Zhiliang Gu; Xiao-Hui Liu; Yunbing Luo; Peng Lv; Leif C. Andersson; Ning Li

The establishment of agricultural economies based upon domestic animals began independently in many parts of the world and led to both increases in human population size and the migration of people carrying domestic plants and animals. The precise circumstances of the earliest phases of these events remain mysterious given their antiquity and the fact that subsequent waves of migrants have often replaced the first. Through the use of more than 1,500 modern (including 151 previously uncharacterized specimens) and 18 ancient (representing six East Asian archeological sites) pig (Sus scrofa) DNA sequences sampled across East Asia, we provide evidence for the long-term genetic continuity between modern and ancient Chinese domestic pigs. Although the Chinese case for independent pig domestication is supported by both genetic and archaeological evidence, we discuss five additional (and possibly) independent domestications of indigenous wild boar populations: one in India, three in peninsular Southeast Asia, and one off the coast of Taiwan. Collectively, we refer to these instances as “cryptic domestication,” given the current lack of corroborating archaeological evidence. In addition, we demonstrate the existence of numerous populations of genetically distinct and widespread wild boar populations that have not contributed maternal genetic material to modern domestic stocks. The overall findings provide the most complete picture yet of pig evolution and domestication in East Asia, and generate testable hypotheses regarding the development and spread of early farmers in the Far East.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Ecological consequences of human niche construction: Examining long-term anthropogenic shaping of global species distributions

Nicole Boivin; Melinda A. Zeder; Dorian Q. Fuller; Alison Crowther; Greger Larson; Jon M. Erlandson; Tim Denham; Michael D. Petraglia

The exhibition of increasingly intensive and complex niche construction behaviors through time is a key feature of human evolution, culminating in the advanced capacity for ecosystem engineering exhibited by Homo sapiens. A crucial outcome of such behaviors has been the dramatic reshaping of the global biosphere, a transformation whose early origins are increasingly apparent from cumulative archaeological and paleoecological datasets. Such data suggest that, by the Late Pleistocene, humans had begun to engage in activities that have led to alterations in the distributions of a vast array of species across most, if not all, taxonomic groups. Changes to biodiversity have included extinctions, extirpations, and shifts in species composition, diversity, and community structure. We outline key examples of these changes, highlighting findings from the study of new datasets, like ancient DNA (aDNA), stable isotopes, and microfossils, as well as the application of new statistical and computational methods to datasets that have accumulated significantly in recent decades. We focus on four major phases that witnessed broad anthropogenic alterations to biodiversity—the Late Pleistocene global human expansion, the Neolithic spread of agriculture, the era of island colonization, and the emergence of early urbanized societies and commercial networks. Archaeological evidence documents millennia of anthropogenic transformations that have created novel ecosystems around the world. This record has implications for ecological and evolutionary research, conservation strategies, and the maintenance of ecosystem services, pointing to a significant need for broader cross-disciplinary engagement between archaeology and the biological and environmental sciences.


Molecular Biology and Evolution | 2013

Pig Domestication and Human-Mediated Dispersal in Western Eurasia Revealed through Ancient DNA and Geometric Morphometrics

Claudio Ottoni; Linus Girdland Flink; Allowen Evin; Christina Geörg; Bea De Cupere; Wim Van Neer; László Bartosiewicz; Anna Linderholm; Ross Barnett; Joris Peters; Ronny Decorte; Marc Waelkens; Nancy Vanderheyden; François-Xavier Ricaut; Canan Çakirlar; Özlem Çevik; A. Rus Hoelzel; Marjan Mashkour; Azadeh Fatemeh Mohaseb Karimlu; Shiva Sheikhi Seno; Julie Daujat; Fiona Brock; Ron Pinhasi; Hitomi Hongo; Miguel Pérez-Enciso; Morten Rasmussen; Laurent A. F. Frantz; Hendrik-Jan Megens; R.P.M.A. Crooijmans; M.A.M. Groenen

Zooarcheological evidence suggests that pigs were domesticated in Southwest Asia ∼8,500 BC. They then spread across the Middle and Near East and westward into Europe alongside early agriculturalists. European pigs were either domesticated independently or more likely appeared so as a result of admixture between introduced pigs and European wild boar. As a result, European wild boar mtDNA lineages replaced Near Eastern/Anatolian mtDNA signatures in Europe and subsequently replaced indigenous domestic pig lineages in Anatolia. The specific details of these processes, however, remain unknown. To address questions related to early pig domestication, dispersal, and turnover in the Near East, we analyzed ancient mitochondrial DNA and dental geometric morphometric variation in 393 ancient pig specimens representing 48 archeological sites (from the Pre-Pottery Neolithic to the Medieval period) from Armenia, Cyprus, Georgia, Iran, Syria, and Turkey. Our results reveal the first genetic signatures of early domestic pigs in the Near Eastern Neolithic core zone. We also demonstrate that these early pigs differed genetically from those in western Anatolia that were introduced to Europe during the Neolithic expansion. In addition, we present a significantly more refined chronology for the introduction of European domestic pigs into Asia Minor that took place during the Bronze Age, at least 900 years earlier than previously detected. By the 5th century AD, European signatures completely replaced the endemic lineages possibly coinciding with the widespread demographic and societal changes that occurred during the Anatolian Bronze and Iron Ages.


Trends in Genetics | 2013

A population genetics view of animal domestication

Greger Larson; Joachim Burger

The fundamental shift associated with the domestication of plants and animals allowed for a dramatic increase in human population sizes and the emergence of modern society. Despite its importance and the decades of research devoted to studying it, questions regarding the origins and processes of domestication remain. Here, we review recent theoretical advances and present a perspective that underscores the crucial role that population admixture has played in influencing the genomes of domestic animals over the past 10000 years. We then discuss novel approaches to generating and analysing genetic data, emphasising the importance of an explicit hypothesis-testing approach for the inference of the origins and subsequent evolution and demography of domestic animals. By applying next-generation sequencing technology alongside appropriate biostatistical methodologies, a substantially deeper understanding of domestication is on the horizon.


Genetics | 2005

Assessing the Fidelity of Ancient DNA Sequences Amplified From Nuclear Genes

Jonas Binladen; Carsten Wiuf; M. Thomas P. Gilbert; Michael Bunce; Ross Barnett; Greger Larson; Alex D. Greenwood; James Haile; Simon Y. W. Ho; Anders J. Hansen

To date, the field of ancient DNA has relied almost exclusively on mitochondrial DNA (mtDNA) sequences. However, a number of recent studies have reported the successful recovery of ancient nuclear DNA (nuDNA) sequences, thereby allowing the characterization of genetic loci directly involved in phenotypic traits of extinct taxa. It is well documented that postmortem damage in ancient mtDNA can lead to the generation of artifactual sequences. However, as yet no one has thoroughly investigated the damage spectrum in ancient nuDNA. By comparing clone sequences from 23 fossil specimens, recovered from environments ranging from permafrost to desert, we demonstrate the presence of miscoding lesion damage in both the mtDNA and nuDNA, resulting in insertion of erroneous bases during amplification. Interestingly, no significant differences in the frequency of miscoding lesion damage are recorded between mtDNA and nuDNA despite great differences in cellular copy numbers. For both mtDNA and nuDNA, we find significant positive correlations between total sequence heterogeneity and the rates of type 1 transitions (adenine → guanine and thymine → cytosine) and type 2 transitions (cytosine → thymine and guanine → adenine), respectively. Type 2 transitions are by far the most dominant and increase relative to those of type 1 with damage load. The results suggest that the deamination of cytosine (and 5-methyl cytosine) to uracil (and thymine) is the main cause of miscoding lesions in both ancient mtDNA and nuDNA sequences. We argue that the problems presented by postmortem damage, as well as problems with contamination from exogenous sources of conserved nuclear genes, allelic variation, and the reliance on single nucleotide polymorphisms, call for great caution in studies relying on ancient nuDNA sequences.

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Keith Dobney

University of Liverpool

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Thomas Cucchi

Centre national de la recherche scientifique

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M.A.M. Groenen

Wageningen University and Research Centre

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Allowen Evin

University of Montpellier

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