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PMID: 23803765 Published · ppublish English Historical Article Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Recalibrating Equus evolution using the genome sequence of an early Middle Pleistocene horse.

Nature ·Vol. 499 ·No. 7456 ·2013-07-04 ·Pages 74-8

Orlando L, Ginolhac A, Zhang G, Froese D, Albrechtsen A, Stiller M, Schubert M, Cappellini E, Petersen B, Moltke I, Johnson PL, Fumagalli M, Vilstrup JT, Raghavan M, Korneliussen T, Malaspinas AS, Vogt J, Szklarczyk D, Kelstrup CD, Vinther J, Dolocan A, Stenderup J, Velazquez AM, Cahill J, Rasmussen M, Wang X, Min J, Zazula GD, Seguin-Orlando A, Mortensen C, Magnussen K, Thompson JF, Weinstock J, Gregersen K, Røed KH, Eisenmann V, Rubin CJ, Miller DC, Antczak DF, Bertelsen MF, Brunak S, Al-Rasheid KA, Ryder O, Andersson L, Mundy J, Krogh A, Gilbert MT, Kjær K, Sicheritz-Ponten T, Jensen LJ, Olsen JV, Hofreiter M, Nielsen R, Shapiro B, Wang J, Willerslev E

Abstract

The rich fossil record of equids has made them a model for evolutionary processes. Here we present a 1.12-times coverage draft genome from a horse bone recovered from permafrost dated to approximately 560-780 thousand years before present (kyr BP). Our data represent the oldest full genome sequence determined so far by almost an order of magnitude. For comparison, we sequenced the genome of a Late Pleistocene horse (43 kyr BP), and modern genomes of five domestic horse breeds (Equus ferus caballus), a Przewalski's horse (E. f. przewalskii) and a donkey (E. asinus). Our analyses suggest that the Equus lineage giving rise to all contemporary horses, zebras and donkeys originated 4.0-4.5 million years before present (Myr BP), twice the conventionally accepted time to the most recent common ancestor of the genus Equus. We also find that horse population size fluctuated multiple times over the past 2 Myr, particularly during periods of severe climatic changes. We estimate that the Przewalski's and domestic horse populations diverged 38-72 kyr BP, and find no evidence of recent admixture between the domestic horse breeds and the Przewalski's horse investigated. This supports the contention that Przewalski's horses represent the last surviving wild horse population. We find similar levels of genetic variation among Przewalski's and domestic populations, indicating that the former are genetically viable and worthy of conservation efforts. We also find evidence for continuous selection on the immune system and olfaction throughout horse evolution. Finally, we identify 29 genomic regions among horse breeds that deviate from neutrality and show low levels of genetic variation compared to the Przewalski's horse. Such regions could correspond to loci selected early during domestication.

MeSH Terms
Animals Conservation of Natural Resources DNA/analysis,genetics Endangered Species Equidae/classification,genetics Evolution, Molecular Fossils Genetic Variation/genetics Genome/genetics History, Ancient Horses/classification,genetics Phylogeny Proteins/analysis,chemistry,genetics Yukon Territory
Chemicals
Proteins DNA
Authors & Affiliations
56 authors, click to expand affiliations / ORCID
Orlando Ludovic
Centre for GeoGenetics, Natural History Museum of Denmark, University of Copenhagen, Øster Voldgade 5-7, 1350 Copenhagen K, Denmark. [email protected]
Ginolhac Aurélien
Zhang Guojie
Froese Duane
Albrechtsen Anders
Stiller Mathias
Schubert Mikkel
Cappellini Enrico
Petersen Bent
Moltke Ida
Johnson Philip L F
Fumagalli Matteo
Vilstrup Julia T
Raghavan Maanasa
Korneliussen Thorfinn
Malaspinas Anna-Sapfo
Vogt Josef
Szklarczyk Damian
Kelstrup Christian D
Vinther Jakob
Dolocan Andrei
Stenderup Jesper
Velazquez Amhed M V
Cahill James
Rasmussen Morten
Wang Xiaoli
Min Jiumeng
Zazula Grant D
Seguin-Orlando Andaine
Mortensen Cecilie
Magnussen Kim
Thompson John F
Weinstock Jacobo
Gregersen Kristian
Røed Knut H
Eisenmann Véra
Rubin Carl J
Miller Donald C
Antczak Douglas F
Bertelsen Mads F
Brunak Søren
Al-Rasheid Khaled A S
Ryder Oliver
Andersson Leif
Mundy John
Krogh Anders
Gilbert M Thomas P
Kjær Kurt
Sicheritz-Ponten Thomas
Jensen Lars Juhl
Olsen Jesper V
Hofreiter Michael
Nielsen Rasmus
Shapiro Beth
Wang Jun
Willerslev Eske
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Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2013-07-04
Epub
2013-00-26
Pages
74-8
Language
English
Region
England
NLM ID
0410462
Subset
IM
Grants
NHGRI NIH HHS · RC2 HG005598 · United States
Corrections
CommentIn
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