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Featured researches published by Kasper Munch.


Nature | 2012

Insights into hominid evolution from the gorilla genome sequence.

Aylwyn Scally; Julien Y. Dutheil; LaDeana W. Hillier; Gregory Jordan; Ian Goodhead; Javier Herrero; Asger Hobolth; Tuuli Lappalainen; Thomas Mailund; Tomas Marques-Bonet; Shane McCarthy; Stephen H. Montgomery; Petra C. Schwalie; Y. Amy Tang; Michelle C. Ward; Yali Xue; Bryndis Yngvadottir; Can Alkan; Lars Nørvang Andersen; Qasim Ayub; Edward V. Ball; Kathryn Beal; Brenda J. Bradley; Yuan Chen; Chris Clee; Stephen Fitzgerald; Tina Graves; Yong Gu; Paul Heath; Andreas Heger

Gorillas are humans’ closest living relatives after chimpanzees, and are of comparable importance for the study of human origins and evolution. Here we present the assembly and analysis of a genome sequence for the western lowland gorilla, and compare the whole genomes of all extant great ape genera. We propose a synthesis of genetic and fossil evidence consistent with placing the human–chimpanzee and human–chimpanzee–gorilla speciation events at approximately 6 and 10 million years ago. In 30% of the genome, gorilla is closer to human or chimpanzee than the latter are to each other; this is rarer around coding genes, indicating pervasive selection throughout great ape evolution, and has functional consequences in gene expression. A comparison of protein coding genes reveals approximately 500 genes showing accelerated evolution on each of the gorilla, human and chimpanzee lineages, and evidence for parallel acceleration, particularly of genes involved in hearing. We also compare the western and eastern gorilla species, estimating an average sequence divergence time 1.75 million years ago, but with evidence for more recent genetic exchange and a population bottleneck in the eastern species. The use of the genome sequence in these and future analyses will promote a deeper understanding of great ape biology and evolution.


Nature | 2013

Great ape genetic diversity and population history

Javier Prado-Martinez; Peter H. Sudmant; Jeffrey M. Kidd; Heng Li; Joanna L. Kelley; Belen Lorente-Galdos; Krishna R. Veeramah; August E. Woerner; Timothy D. O’Connor; Gabriel Santpere; Alexander Cagan; Christoph Theunert; Ferran Casals; Hafid Laayouni; Kasper Munch; Asger Hobolth; Anders E. Halager; Maika Malig; Jessica Hernandez-Rodriguez; Irene Hernando-Herraez; Kay Prüfer; Marc Pybus; Laurel Johnstone; Michael Lachmann; Can Alkan; Dorina Twigg; Natalia Petit; Carl Baker; Fereydoun Hormozdiari; Marcos Fernandez-Callejo

Most great ape genetic variation remains uncharacterized; however, its study is critical for understanding population history, recombination, selection and susceptibility to disease. Here we sequence to high coverage a total of 79 wild- and captive-born individuals representing all six great ape species and seven subspecies and report 88.8 million single nucleotide polymorphisms. Our analysis provides support for genetically distinct populations within each species, signals of gene flow, and the split of common chimpanzees into two distinct groups: Nigeria–Cameroon/western and central/eastern populations. We find extensive inbreeding in almost all wild populations, with eastern gorillas being the most extreme. Inferred effective population sizes have varied radically over time in different lineages and this appears to have a profound effect on the genetic diversity at, or close to, genes in almost all species. We discover and assign 1,982 loss-of-function variants throughout the human and great ape lineages, determining that the rate of gene loss has not been different in the human branch compared to other internal branches in the great ape phylogeny. This comprehensive catalogue of great ape genome diversity provides a framework for understanding evolution and a resource for more effective management of wild and captive great ape populations.


Nature | 2011

Species-specific responses of Late Quaternary megafauna to climate and humans

Eline D. Lorenzen; David Nogués-Bravo; Ludovic Orlando; Jaco Weinstock; Jonas Binladen; Katharine A. Marske; Andrew Ugan; Michael K. Borregaard; M. Thomas P. Gilbert; Rasmus Nielsen; Simon Y. W. Ho; Ted Goebel; Kelly E. Graf; David A. Byers; Jesper Stenderup; Morten Rasmussen; Paula F. Campos; Jennifer A. Leonard; Klaus-Peter Koepfli; Duane G. Froese; Grant D. Zazula; Thomas W. Stafford; Kim Aaris-Sørensen; Persaram Batra; Alan M. Haywood; Joy S. Singarayer; Paul J. Valdes; G. G. Boeskorov; James A. Burns; Sergey P. Davydov

Despite decades of research, the roles of climate and humans in driving the dramatic extinctions of large-bodied mammals during the Late Quaternary period remain contentious. Here we use ancient DNA, species distribution models and the human fossil record to elucidate how climate and humans shaped the demographic history of woolly rhinoceros, woolly mammoth, wild horse, reindeer, bison and musk ox. We show that climate has been a major driver of population change over the past 50,000 years. However, each species responds differently to the effects of climatic shifts, habitat redistribution and human encroachment. Although climate change alone can explain the extinction of some species, such as Eurasian musk ox and woolly rhinoceros, a combination of climatic and anthropogenic effects appears to be responsible for the extinction of others, including Eurasian steppe bison and wild horse. We find no genetic signature or any distinctive range dynamics distinguishing extinct from surviving species, emphasizing the challenges associated with predicting future responses of extant mammals to climate and human-mediated habitat change.


Nature | 2012

The bonobo genome compared with the chimpanzee and human genomes

Kay Prüfer; Kasper Munch; Ines Hellmann; Keiko Akagi; Jason R. Miller; Brian Walenz; Sergey Koren; Granger Sutton; Chinnappa D. Kodira; Roger Winer; James Knight; James C. Mullikin; Stephen Meader; Chris P. Ponting; Gerton Lunter; Saneyuki Higashino; Asger Hobolth; Julien Y. Dutheil; Emre Karakoc; Can Alkan; Saba Sajjadian; Claudia Rita Catacchio; Mario Ventura; Tomas Marques-Bonet; Evan E. Eichler; Claudine André; Rebeca Atencia; Lawrence Mugisha; Jörg Junhold; Nick Patterson

Two African apes are the closest living relatives of humans: the chimpanzee (Pan troglodytes) and the bonobo (Pan paniscus). Although they are similar in many respects, bonobos and chimpanzees differ strikingly in key social and sexual behaviours, and for some of these traits they show more similarity with humans than with each other. Here we report the sequencing and assembly of the bonobo genome to study its evolutionary relationship with the chimpanzee and human genomes. We find that more than three per cent of the human genome is more closely related to either the bonobo or the chimpanzee genome than these are to each other. These regions allow various aspects of the ancestry of the two ape species to be reconstructed. In addition, many of the regions that overlap genes may eventually help us understand the genetic basis of phenotypes that humans share with one of the two apes to the exclusion of the other.


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

Ancient bacteria show evidence of DNA repair

Sarah Stewart Johnson; Martin B. Hebsgaard; Torben R. Christensen; Mikhail Mastepanov; Rasmus Nielsen; Kasper Munch; Tina B. Brand; Mark G. Thomas; P. Gilbert; Maria T. Zuber; Michael Bunce; Regin Rønn; David A. Gilichinsky; Duane G. Froese

Recent claims of cultivable ancient bacteria within sealed environments highlight our limited understanding of the mechanisms behind long-term cell survival. It remains unclear how dormancy, a favored explanation for extended cellular persistence, can cope with spontaneous genomic decay over geological timescales. There has been no direct evidence in ancient microbes for the most likely mechanism, active DNA repair, or for the metabolic activity necessary to sustain it. In this paper, we couple PCR and enzymatic treatment of DNA with direct respiration measurements to investigate long-term survival of bacteria sealed in frozen conditions for up to one million years. Our results show evidence of bacterial survival in samples up to half a million years in age, making this the oldest independently authenticated DNA to date obtained from viable cells. Additionally, we find strong evidence that this long-term survival is closely tied to cellular metabolic activity and DNA repair that over time proves to be superior to dormancy as a mechanism in sustaining bacteria viability.


Systematic Biology | 2008

Statistical Assignment of DNA Sequences Using Bayesian Phylogenetics

Kasper Munch; Wouter Boomsma; John P. Huelsenbeck; Rasmus Nielsen

We provide a new automated statistical method for DNA barcoding based on a Bayesian phylogenetic analysis. The method is based on automated database sequence retrieval, alignment, and phylogenetic analysis using a custom-built program for Bayesian phylogenetic analysis. We show on real data that the method outperforms Blast searches as a measure of confidence and can help eliminate 80% of all false assignment based on best Blast hit. However, the most important advance of the method is that it provides statistically meaningful measures of confidence. We apply the method to a re-analysis of previously published ancient DNA data and show that, with high statistical confidence, most of the published sequences are in fact of Neanderthal origin. However, there are several cases of chimeric sequences that are comprised of a combination of both Neanderthal and modern human DNA.


Proceedings of the National Academy of Sciences of the United States of America | 2009

Ancient DNA reveals late survival of mammoth and horse in interior Alaska

James Haile; Duane G. Froese; Ross D. E. MacPhee; Richard G. Roberts; Lee J. Arnold; Alberto V. Reyes; Morten Rasmussen; Rasmus Nielsen; Barry W. Brook; Simon Robinson; Martina Demuro; M. Thomas P. Gilbert; Kasper Munch; Jeremy J. Austin; Alan Cooper; Ian Barnes; Per Möller

Causes of late Quaternary extinctions of large mammals (“megafauna”) continue to be debated, especially for continental losses, because spatial and temporal patterns of extinction are poorly known. Accurate latest appearance dates (LADs) for such taxa are critical for interpreting the process of extinction. The extinction of woolly mammoth and horse in northwestern North America is currently placed at 15,000–13,000 calendar years before present (yr BP), based on LADs from dating surveys of macrofossils (bones and teeth). Advantages of using macrofossils to estimate when a species became extinct are offset, however, by the improbability of finding and dating the remains of the last-surviving members of populations that were restricted in numbers or confined to refugia. Here we report an alternative approach to detect ‘ghost ranges’ of dwindling populations, based on recovery of ancient DNA from perennially frozen and securely dated sediments (sedaDNA). In such contexts, sedaDNA can reveal the molecular presence of species that appear absent in the macrofossil record. We show that woolly mammoth and horse persisted in interior Alaska until at least 10,500 yr BP, several thousands of years later than indicated from macrofossil surveys. These results contradict claims that Holocene survival of mammoths in Beringia was restricted to ecologically isolated high-latitude islands. More importantly, our finding that mammoth and horse overlapped with humans for several millennia in the region where people initially entered the Americas challenges theories that megafaunal extinction occurred within centuries of human arrival or were due to an extraterrestrial impact in the late Pleistocene.


PLOS Genetics | 2012

A new isolation with migration model along complete genomes infers very different divergence processes among closely related great ape species

Thomas Mailund; Anders E. Halager; Michael Westergaard; Julien Y. Dutheil; Kasper Munch; Lars Nørvang Andersen; Gerton Lunter; Kay Prüfer; Aylwyn Scally; Asger Hobolth; Mikkel H. Schierup

We present a hidden Markov model (HMM) for inferring gradual isolation between two populations during speciation, modelled as a time interval with restricted gene flow. The HMM describes the history of adjacent nucleotides in two genomic sequences, such that the nucleotides can be separated by recombination, can migrate between populations, or can coalesce at variable time points, all dependent on the parameters of the model, which are the effective population sizes, splitting times, recombination rate, and migration rate. We show by extensive simulations that the HMM can accurately infer all parameters except the recombination rate, which is biased downwards. Inference is robust to variation in the mutation rate and the recombination rate over the sequence and also robust to unknown phase of genomes unless they are very closely related. We provide a test for whether divergence is gradual or instantaneous, and we apply the model to three key divergence processes in great apes: (a) the bonobo and common chimpanzee, (b) the eastern and western gorilla, and (c) the Sumatran and Bornean orang-utan. We find that the bonobo and chimpanzee appear to have undergone a clear split, whereas the divergence processes of the gorilla and orang-utan species occurred over several hundred thousands years with gene flow stopping quite recently. We also apply the model to the Homo/Pan speciation event and find that the most likely scenario involves an extended period of gene flow during speciation.


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

Extensive X-linked adaptive evolution in central chimpanzees

Christina Hvilsom; Yu Qian; Thomas Bataillon; Yingrui Li; Thomas Mailund; Bettina Sallé; Frands Carlsen; Ruiqiang Li; Hancheng Zheng; Tao Jiang; Hui Jiang; Xin Jin; Kasper Munch; Asger Hobolth; Hans R. Siegismund; Jun Wang; Mikkel H. Schierup

Surveying genome-wide coding variation within and among species gives unprecedented power to study the genetics of adaptation, in particular the proportion of amino acid substitutions fixed by positive selection. Additionally, contrasting the autosomes and the X chromosome holds information on the dominance of beneficial (adaptive) and deleterious mutations. Here we capture and sequence the complete exomes of 12 chimpanzees and present the largest set of protein-coding polymorphism to date. We report extensive adaptive evolution specifically targeting the X chromosome of chimpanzees with as much as 30% of all amino acid replacements being adaptive. Adaptive evolution is barely detectable on the autosomes except for a few striking cases of recent selective sweeps associated with immunity gene clusters. We also find much stronger purifying selection than observed in humans, and in contrast to humans, we find that purifying selection is stronger on the X chromosome than on the autosomes in chimpanzees. We therefore conclude that most adaptive mutations are recessive. We also document dramatically reduced synonymous diversity in the chimpanzee X chromosome relative to autosomes and stronger purifying selection than for the human X chromosome. If similar processes were operating in the human–chimpanzee ancestor as in central chimpanzees today, our results therefore provide an explanation for the much-discussed reduction in the human–chimpanzee divergence at the X chromosome.


PLOS ONE | 2009

Non-Destructive Sampling of Ancient Insect DNA

Philip Francis Thomsen; Scott A. Elias; M. Thomas P. Gilbert; James Haile; Kasper Munch; Svetlana Kuzmina; Duane G. Froese; Andrei Sher; Richard N. Holdaway

Background A major challenge for ancient DNA (aDNA) studies on insect remains is that sampling procedures involve at least partial destruction of the specimens. A recent extraction protocol reveals the possibility of obtaining DNA from past insect remains without causing visual morphological damage. We test the applicability of this protocol on historic museum beetle specimens dating back to AD 1820 and on ancient beetle chitin remains from permafrost (permanently frozen soil) dating back more than 47,000 years. Finally, we test the possibility of obtaining ancient insect DNA directly from non-frozen sediments deposited 3280-1800 years ago - an alternative approach that also does not involve destruction of valuable material. Methodology/Principal Findings The success of the methodological approaches are tested by PCR and sequencing of COI and 16S mitochondrial DNA (mtDNA) fragments of 77–204 base pairs (-bp) in size using species-specific and general insect primers. Conclusion/Significance The applied non-destructive DNA extraction method shows promising potential on insect museum specimens of historical age as far back as AD 1820, but less so on the ancient permafrost-preserved insect fossil remains tested, where DNA was obtained from samples up to ca. 26,000 years old. The non-frozen sediment DNA approach appears to have great potential for recording the former presence of insect taxa not normally preserved as macrofossils and opens new frontiers in research on ancient biodiversity.

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Rasmus Nielsen

University of California

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