Literature DB >> 21177316

Estimation of population divergence times from non-overlapping genomic sequences: examples from dogs and wolves.

Pontus Skoglund1, Anders Götherström, Mattias Jakobsson.   

Abstract

Despite recent technological advances in DNA sequencing, incomplete coverage remains to be an issue in population genomics, in particular for studies that include ancient samples. Here, we describe an approach to estimate population divergence times for non-overlapping sequence data that is based on probabilities of different genealogical topologies under a structured coalescent model. We show that the approach can be adapted to accommodate common problems such as sequencing errors and postmortem nucleotide misincorporations, and we use simulations to investigate biases involved with estimating genealogical topologies from empirical data. The approach relies on three reference genomes and should be particularly useful for future analysis of genomic data that comprise of nonoverlapping sets of sequences, potentially from different points in time. We applied the method to shotgun sequence data from an ancient wolf together with extant dogs and wolves and found striking resemblance to previously described fine-scale population structure among dog breeds. When comparing modern dogs to four geographically distinct wolves, we find that the divergence time between dogs and an Indian wolf is smallest, followed by the divergence times to a Chinese wolf and a Spanish wolf, and a relatively long divergence time to an Alaskan wolf, suggesting that the origin of modern dogs is somewhere in Eurasia, potentially southern Asia. We find that less than two-thirds of all loci in the boxer and poodle genomes are more similar to each other than to a modern gray wolf and that--assuming complete isolation without gene flow--the divergence time between gray wolves and modern European dogs extends to 3,500 generations before the present, corresponding to approximately 10,000 years ago (95% confidence interval [CI]: 9,000-13,000). We explicitly study the effect of gene flow between dogs and wolves on our estimates and show that a low rate of gene flow is compatible with an even earlier domestication date ∼30,000 years ago (95% CI: 15,000-90,000). This observation is in agreement with recent archaeological findings and indicates that human behavior necessary for domestication of wild animals could have appeared much earlier than the development of agriculture.

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Year:  2010        PMID: 21177316     DOI: 10.1093/molbev/msq342

Source DB:  PubMed          Journal:  Mol Biol Evol        ISSN: 0737-4038            Impact factor:   16.240


  27 in total

1.  The genomic signature of dog domestication reveals adaptation to a starch-rich diet.

Authors:  Erik Axelsson; Abhirami Ratnakumar; Maja-Louise Arendt; Khurram Maqbool; Matthew T Webster; Michele Perloski; Olof Liberg; Jon M Arnemo; Ake Hedhammar; Kerstin Lindblad-Toh
Journal:  Nature       Date:  2013-01-23       Impact factor: 49.962

2.  Neuromorphological changes following selection for tameness and aggression in the Russian fox-farm experiment.

Authors:  Erin E Hecht; Anna V Kukekova; David A Gutman; Gregory M Acland; Todd M Preuss; Lyudmila N Trut
Journal:  J Neurosci       Date:  2021-06-14       Impact factor: 6.167

3.  Sequence comparison of prefrontal cortical brain transcriptome from a tame and an aggressive silver fox (Vulpes vulpes).

Authors:  Anna V Kukekova; Jennifer L Johnson; Clotilde Teiling; Lewyn Li; Irina N Oskina; Anastasiya V Kharlamova; Rimma G Gulevich; Ravee Padte; Michael M Dubreuil; Anastasiya V Vladimirova; Darya V Shepeleva; Svetlana G Shikhevich; Qi Sun; Lalit Ponnala; Svetlana V Temnykh; Lyudmila N Trut; Gregory M Acland
Journal:  BMC Genomics       Date:  2011-10-03       Impact factor: 3.969

4.  Origins of domestic dog in southern East Asia is supported by analysis of Y-chromosome DNA.

Authors:  Z-L Ding; M Oskarsson; A Ardalan; H Angleby; L-G Dahlgren; C Tepeli; E Kirkness; P Savolainen; Y-P Zhang
Journal:  Heredity (Edinb)       Date:  2011-11-23       Impact factor: 3.821

5.  The challenges of pedigree dog health: approaches to combating inherited disease.

Authors:  Lindsay L Farrell; Jeffrey J Schoenebeck; Pamela Wiener; Dylan N Clements; Kim M Summers
Journal:  Canine Genet Epidemiol       Date:  2015-02-11

6.  Ancient DNA analysis of the oldest canid species from the Siberian Arctic and genetic contribution to the domestic dog.

Authors:  Esther J Lee; D Andrew Merriwether; Alexei K Kasparov; Pavel A Nikolskiy; Marina V Sotnikova; Elena Yu Pavlova; Vladimir V Pitulko
Journal:  PLoS One       Date:  2015-05-27       Impact factor: 3.240

7.  Genome sequencing highlights the dynamic early history of dogs.

Authors:  Adam H Freedman; Ilan Gronau; Rena M Schweizer; Diego Ortega-Del Vecchyo; Eunjung Han; Pedro M Silva; Marco Galaverni; Zhenxin Fan; Peter Marx; Belen Lorente-Galdos; Holly Beale; Oscar Ramirez; Farhad Hormozdiari; Can Alkan; Carles Vilà; Kevin Squire; Eli Geffen; Josip Kusak; Adam R Boyko; Heidi G Parker; Clarence Lee; Vasisht Tadigotla; Alan Wilton; Adam Siepel; Carlos D Bustamante; Timothy T Harkins; Stanley F Nelson; Elaine A Ostrander; Tomas Marques-Bonet; Robert K Wayne; John Novembre
Journal:  PLoS Genet       Date:  2014-01-16       Impact factor: 5.917

8.  Origins and genetic legacy of prehistoric dogs.

Authors:  Anders Bergström; Laurent Frantz; Ryan Schmidt; Erik Ersmark; Ophelie Lebrasseur; Linus Girdland-Flink; Audrey T Lin; Jan Storå; Karl-Göran Sjögren; David Anthony; Ekaterina Antipina; Sarieh Amiri; Guy Bar-Oz; Vladimir I Bazaliiskii; Jelena Bulatović; Dorcas Brown; Alberto Carmagnini; Tom Davy; Sergey Fedorov; Ivana Fiore; Deirdre Fulton; Mietje Germonpré; James Haile; Evan K Irving-Pease; Alexandra Jamieson; Luc Janssens; Irina Kirillova; Liora Kolska Horwitz; Julka Kuzmanovic-Cvetković; Yaroslav Kuzmin; Robert J Losey; Daria Ložnjak Dizdar; Marjan Mashkour; Mario Novak; Vedat Onar; David Orton; Maja Pasarić; Miljana Radivojević; Dragana Rajković; Benjamin Roberts; Hannah Ryan; Mikhail Sablin; Fedor Shidlovskiy; Ivana Stojanović; Antonio Tagliacozzo; Katerina Trantalidou; Inga Ullén; Aritza Villaluenga; Paula Wapnish; Keith Dobney; Anders Götherström; Anna Linderholm; Love Dalén; Ron Pinhasi; Greger Larson; Pontus Skoglund
Journal:  Science       Date:  2020-10-29       Impact factor: 47.728

9.  Disorder predispositions and protections of Labrador Retrievers in the UK.

Authors:  Camilla Pegram; Charlotte Woolley; Dave C Brodbelt; David B Church; Dan G O'Neill
Journal:  Sci Rep       Date:  2021-07-14       Impact factor: 4.379

10.  An improved canine genome and a comprehensive catalogue of coding genes and non-coding transcripts.

Authors:  Marc P Hoeppner; Andrew Lundquist; Mono Pirun; Jennifer R S Meadows; Neda Zamani; Jeremy Johnson; Görel Sundström; April Cook; Michael G FitzGerald; Ross Swofford; Evan Mauceli; Behrooz Torabi Moghadam; Anna Greka; Jessica Alföldi; Amr Abouelleil; Lynne Aftuck; Daniel Bessette; Aaron Berlin; Adam Brown; Gary Gearin; Annie Lui; J Pendexter Macdonald; Margaret Priest; Terrance Shea; Jason Turner-Maier; Andrew Zimmer; Eric S Lander; Federica di Palma; Kerstin Lindblad-Toh; Manfred G Grabherr
Journal:  PLoS One       Date:  2014-03-13       Impact factor: 3.240

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