Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 220
Filter
Add more filters

Publication year range
1.
Cell ; 187(5): 1047-1058, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38367615

ABSTRACT

Modern human ancestors diverged from the ancestors of Neandertals and Denisovans about 600,000 years ago. Until about 40,000 years ago, these three groups existed in parallel, occasionally met, and exchanged genes. A critical question is why modern humans, and not the other two groups, survived, became numerous, and developed complex cultures. Here, we discuss genetic differences among the groups and some of their functional consequences. As more present-day genome sequences become available from diverse groups, we predict that very few, if any, differences will distinguish all modern humans from all Neandertals and Denisovans. We propose that the genetic basis of what constitutes a modern human is best thought of as a combination of genetic features, where perhaps none of them is present in each and every present-day individual.


Subject(s)
Hominidae , Neanderthals , Animals , Humans , Neanderthals/genetics , Research , Hominidae/genetics , Human Genetics
2.
Cell ; 173(1): 6-7, 2018 03 22.
Article in English | MEDLINE | ID: mdl-29570998

ABSTRACT

By examining the genomes of present-day people from Asia, researchers show that modern humans met and interbred with Denisovans, distant relatives to Neanderthals, on at least two occasions. As a result, people today carry DNA from two different Denisovan populations.


Subject(s)
Family , Asia , Humans
3.
Cell ; 171(1): 59-71.e21, 2017 Sep 21.
Article in English | MEDLINE | ID: mdl-28938123

ABSTRACT

We assembled genome-wide data from 16 prehistoric Africans. We show that the anciently divergent lineage that comprises the primary ancestry of the southern African San had a wider distribution in the past, contributing approximately two-thirds of the ancestry of Malawi hunter-gatherers ∼8,100-2,500 years ago and approximately one-third of the ancestry of Tanzanian hunter-gatherers ∼1,400 years ago. We document how the spread of farmers from western Africa involved complete replacement of local hunter-gatherers in some regions, and we track the spread of herders by showing that the population of a ∼3,100-year-old pastoralist from Tanzania contributed ancestry to people from northeastern to southern Africa, including a ∼1,200-year-old southern African pastoralist. The deepest diversifications of African lineages were complex, involving either repeated gene flow among geographically disparate groups or a lineage more deeply diverging than that of the San contributing more to some western African populations than to others. We finally leverage ancient genomes to document episodes of natural selection in southern African populations. PAPERCLIP.


Subject(s)
Black People/genetics , Genome, Human , Africa , Bone and Bones/chemistry , DNA, Ancient/analysis , Female , Fossils , Genetics, Medical , Genetics, Population , Genome-Wide Association Study , Humans , Life Style , Male
4.
Cell ; 157(1): 216-26, 2014 Mar 27.
Article in English | MEDLINE | ID: mdl-24679537

ABSTRACT

Research into when and where modern humans originated and how they differ from, and interacted with, other now-extinct forms of human has so far been the realm of archaeologists and paleoanthropologists. However, over the past decade, molecular geneticists have begun to study genomes of extinct humans. Here, I discuss where we stand today with respect to understanding how modern humans came to differ from Neandertals and other human forms that existed until about 30,000 years ago.


Subject(s)
Biological Evolution , Genome, Human , Hominidae/genetics , Animals , Culture , Genome , Humans , Sequence Analysis, DNA
5.
Nature ; 613(7943): 308-316, 2023 01.
Article in English | MEDLINE | ID: mdl-36544022

ABSTRACT

The testis produces gametes through spermatogenesis and evolves rapidly at both the morphological and molecular level in mammals1-6, probably owing to the evolutionary pressure on males to be reproductively successful7. However, the molecular evolution of individual spermatogenic cell types across mammals remains largely uncharacterized. Here we report evolutionary analyses of single-nucleus transcriptome data for testes from 11 species that cover the three main mammalian lineages (eutherians, marsupials and monotremes) and birds (the evolutionary outgroup), and include seven primates. We find that the rapid evolution of the testis was driven by accelerated fixation rates of gene expression changes, amino acid substitutions and new genes in late spermatogenic stages, probably facilitated by reduced pleiotropic constraints, haploid selection and transcriptionally permissive chromatin. We identify temporal expression changes of individual genes across species and conserved expression programs controlling ancestral spermatogenic processes. Genes predominantly expressed in spermatogonia (germ cells fuelling spermatogenesis) and Sertoli (somatic support) cells accumulated on X chromosomes during evolution, presumably owing to male-beneficial selective forces. Further work identified transcriptomal differences between X- and Y-bearing spermatids and uncovered that meiotic sex-chromosome inactivation (MSCI) also occurs in monotremes and hence is common to mammalian sex-chromosome systems. Thus, the mechanism of meiotic silencing of unsynapsed chromatin, which underlies MSCI, is an ancestral mammalian feature. Our study illuminates the molecular evolution of spermatogenesis and associated selective forces, and provides a resource for investigating the biology of the testis across mammals.


Subject(s)
Evolution, Molecular , Mammals , Spermatogenesis , Testis , Animals , Male , Chromatin/genetics , Mammals/genetics , Meiosis/genetics , Spermatogenesis/genetics , Testis/cytology , Transcriptome , Single-Cell Analysis , Birds/genetics , Primates/genetics , Gene Expression Regulation , Spermatogonia/cytology , Sertoli Cells/cytology , X Chromosome/genetics , Y Chromosome/genetics , Dosage Compensation, Genetic , Gene Silencing
6.
Nature ; 618(7964): 328-332, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37138083

ABSTRACT

Artefacts made from stones, bones and teeth are fundamental to our understanding of human subsistence strategies, behaviour and culture in the Pleistocene. Although these resources are plentiful, it is impossible to associate artefacts to specific human individuals1 who can be morphologically or genetically characterized, unless they are found within burials, which are rare in this time period. Thus, our ability to discern the societal roles of Pleistocene individuals based on their biological sex or genetic ancestry is limited2-5. Here we report the development of a non-destructive method for the gradual release of DNA trapped in ancient bone and tooth artefacts. Application of the method to an Upper Palaeolithic deer tooth pendant from Denisova Cave, Russia, resulted in the recovery of ancient human and deer mitochondrial genomes, which allowed us to estimate the age of the pendant at approximately 19,000-25,000 years. Nuclear DNA analysis identifies the presumed maker or wearer of the pendant as a female individual with strong genetic affinities to a group of Ancient North Eurasian individuals who lived around the same time but were previously found only further east in Siberia. Our work redefines how cultural and genetic records can be linked in prehistoric archaeology.


Subject(s)
Bone and Bones , DNA, Ancient , Tooth , Animals , Female , Humans , Archaeology/methods , Bone and Bones/chemistry , Deer/genetics , DNA, Ancient/analysis , DNA, Ancient/isolation & purification , DNA, Mitochondrial/analysis , DNA, Mitochondrial/isolation & purification , History, Ancient , Siberia , Tooth/chemistry , Caves , Russia
7.
Nature ; 610(7932): 519-525, 2022 10.
Article in English | MEDLINE | ID: mdl-36261548

ABSTRACT

Genomic analyses of Neanderthals have previously provided insights into their population history and relationship to modern humans1-8, but the social organization of Neanderthal communities remains poorly understood. Here we present genetic data for 13 Neanderthals from two Middle Palaeolithic sites in the Altai Mountains of southern Siberia: 11 from Chagyrskaya Cave9,10 and 2 from Okladnikov Cave11-making this one of the largest genetic studies of a Neanderthal population to date. We used hybridization capture to obtain genome-wide nuclear data, as well as mitochondrial and Y-chromosome sequences. Some Chagyrskaya individuals were closely related, including a father-daughter pair and a pair of second-degree relatives, indicating that at least some of the individuals lived at the same time. Up to one-third of these individuals' genomes had long segments of homozygosity, suggesting that the Chagyrskaya Neanderthals were part of a small community. In addition, the Y-chromosome diversity is an order of magnitude lower than the mitochondrial diversity, a pattern that we found is best explained by female migration between communities. Thus, the genetic data presented here provide a detailed documentation of the social organization of an isolated Neanderthal community at the easternmost extent of their known range.


Subject(s)
Neanderthals , Animals , Female , Humans , Caves , Genome/genetics , Hybridization, Genetic , Neanderthals/genetics , Siberia , DNA, Mitochondrial/genetics , Y Chromosome/genetics , Male , Family , Homozygote
8.
Nature ; 595(7867): 399-403, 2021 07.
Article in English | MEDLINE | ID: mdl-34163072

ABSTRACT

Denisova Cave in southern Siberia is the type locality of the Denisovans, an archaic hominin group who were related to Neanderthals1-4. The dozen hominin remains recovered from the deposits also include Neanderthals5,6 and the child of a Neanderthal and a Denisovan7, which suggests that Denisova Cave was a contact zone between these archaic hominins. However, uncertainties persist about the order in which these groups appeared at the site, the timing and environmental context of hominin occupation, and the association of particular hominin groups with archaeological assemblages5,8-11. Here we report the analysis of DNA from 728 sediment samples that were collected in a grid-like manner from layers dating to the Pleistocene epoch. We retrieved ancient faunal and hominin mitochondrial (mt)DNA from 685 and 175 samples, respectively. The earliest evidence for hominin mtDNA is of Denisovans, and is associated with early Middle Palaeolithic stone tools that were deposited approximately 250,000 to 170,000 years ago; Neanderthal mtDNA first appears towards the end of this period. We detect a turnover in the mtDNA of Denisovans that coincides with changes in the composition of faunal mtDNA, and evidence that Denisovans and Neanderthals occupied the site repeatedly-possibly until, or after, the onset of the Initial Upper Palaeolithic at least 45,000 years ago, when modern human mtDNA is first recorded in the sediments.


Subject(s)
Caves , DNA, Ancient/analysis , Geologic Sediments/chemistry , Hominidae/genetics , Animals , Archaeology , DNA, Mitochondrial/analysis , DNA, Mitochondrial/genetics , Fossils , History, Ancient , Neanderthals/genetics , Siberia
9.
Nature ; 592(7853): 253-257, 2021 04.
Article in English | MEDLINE | ID: mdl-33828320

ABSTRACT

Modern humans appeared in Europe by at least 45,000 years ago1-5, but the extent of their interactions with Neanderthals, who disappeared by about 40,000 years ago6, and their relationship to the broader expansion of modern humans outside Africa are poorly understood. Here we present genome-wide data from three individuals dated to between 45,930 and 42,580 years ago from Bacho Kiro Cave, Bulgaria1,2. They are the earliest Late Pleistocene modern humans known to have been recovered in Europe so far, and were found in association with an Initial Upper Palaeolithic artefact assemblage. Unlike two previously studied individuals of similar ages from Romania7 and Siberia8 who did not contribute detectably to later populations, these individuals are more closely related to present-day and ancient populations in East Asia and the Americas than to later west Eurasian populations. This indicates that they belonged to a modern human migration into Europe that was not previously known from the genetic record, and provides evidence that there was at least some continuity between the earliest modern humans in Europe and later people in Eurasia. Moreover, we find that all three individuals had Neanderthal ancestors a few generations back in their family history, confirming that the first European modern humans mixed with Neanderthals and suggesting that such mixing could have been common.


Subject(s)
DNA, Ancient/analysis , Genome, Human/genetics , Neanderthals/genetics , Alleles , Americas/ethnology , Animals , Archaeology , Bulgaria/ethnology , Caves , Asia, Eastern/ethnology , Female , History, Ancient , Humans , Male , Phylogeny
10.
Proc Natl Acad Sci U S A ; 121(22): e2402159121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38739836

ABSTRACT

The aryl hydrocarbon receptor (AHR) is a transcription factor that has many functions in mammals. Its best known function is that it binds aromatic hydrocarbons and induces the expression of cytochrome P450 genes, which encode enzymes that metabolize aromatic hydrocarbons and other substrates. All present-day humans carry an amino acid substitution at position 381 in the AHR that occurred after the divergence of modern humans from Neandertals and Denisovans. Previous studies that have expressed the ancestral and modern versions of AHR from expression vectors have yielded conflicting results with regard to their activities. Here, we use genome editing to modify the endogenous AHR gene so that it encodes to the ancestral, Neandertal-like AHR protein in human cells. In the absence of exogenous ligands, the expression of AHR target genes is higher in cells expressing the ancestral AHR than in cells expressing the modern AHR, and similar to the expression in chimpanzee cells. Furthermore, the modern human AHR needs higher doses of three ligands than the ancestral AHR to induce the expression of target genes. Thus, the ability of AHR to induce the expression of many of its target genes is reduced in modern humans.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors , Gene Editing , Receptors, Aryl Hydrocarbon , Receptors, Aryl Hydrocarbon/genetics , Receptors, Aryl Hydrocarbon/metabolism , Humans , Gene Editing/methods , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Evolution, Molecular , Pan troglodytes/genetics , Neanderthals/genetics , Ligands
11.
Nat Methods ; 20(9): 1388-1399, 2023 09.
Article in English | MEDLINE | ID: mdl-37474806

ABSTRACT

Homology-directed repair (HDR), a method for repair of DNA double-stranded breaks can be leveraged for the precise introduction of mutations supplied by synthetic DNA donors, but remains limited by low efficiency and off-target effects. In this study, we report HDRobust, a high-precision method that, via the combined transient inhibition of nonhomologous end joining and microhomology-mediated end joining, resulted in the induction of point mutations by HDR in up to 93% (median 60%, s.e.m. 3) of chromosomes in populations of cells. We found that, using this method, insertions, deletions and rearrangements at the target site, as well as unintended changes at other genomic sites, were largely abolished. We validated this approach for 58 different target sites and showed that it allows efficient correction of pathogenic mutations in cells derived from patients suffering from anemia, sickle cell disease and thrombophilia.


Subject(s)
CRISPR-Cas Systems , Gene Editing , Humans , Gene Editing/methods , CRISPR-Cas Systems/genetics , Recombinational DNA Repair , DNA Breaks, Double-Stranded , DNA End-Joining Repair , DNA
12.
Nature ; 587(7835): 610-612, 2020 11.
Article in English | MEDLINE | ID: mdl-32998156

ABSTRACT

A recent genetic association study1 identified a gene cluster on chromosome 3 as a risk locus for respiratory failure after infection with severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). A separate study (COVID-19 Host Genetics Initiative)2 comprising 3,199 hospitalized patients with coronavirus disease 2019 (COVID-19) and control individuals showed that this cluster is the major genetic risk factor for severe symptoms after SARS-CoV-2 infection and hospitalization. Here we show that the risk is conferred by a genomic segment of around 50 kilobases in size that is inherited from Neanderthals and is carried by around 50% of people in south Asia and around 16% of people in Europe.


Subject(s)
COVID-19/genetics , COVID-19/physiopathology , Genetic Predisposition to Disease , Neanderthals/genetics , Animals , Asia/ethnology , COVID-19/complications , Case-Control Studies , Chromosomes, Human, Pair 3/genetics , Europe/ethnology , Genetic Variation/genetics , Genome-Wide Association Study , Haplotypes/genetics , Hospitalization , Humans , Linkage Disequilibrium/genetics , Multigene Family/genetics , Phylogeny , Severe Acute Respiratory Syndrome/complications , Severe Acute Respiratory Syndrome/genetics , Severe Acute Respiratory Syndrome/physiopathology
13.
Nature ; 581(7808): 299-302, 2020 05.
Article in English | MEDLINE | ID: mdl-32433609

ABSTRACT

The Middle to Upper Palaeolithic transition in Europe witnessed the replacement and partial absorption of local Neanderthal populations by Homo sapiens populations of African origin1. However, this process probably varied across regions and its details remain largely unknown. In particular, the duration of chronological overlap between the two groups is much debated, as are the implications of this overlap for the nature of the biological and cultural interactions between Neanderthals and H. sapiens. Here we report the discovery and direct dating of human remains found in association with Initial Upper Palaeolithic artefacts2, from excavations at Bacho Kiro Cave (Bulgaria). Morphological analysis of a tooth and mitochondrial DNA from several hominin bone fragments, identified through proteomic screening, assign these finds to H. sapiens and link the expansion of Initial Upper Palaeolithic technologies with the spread of H. sapiens into the mid-latitudes of Eurasia before 45 thousand years ago3. The excavations yielded a wealth of bone artefacts, including pendants manufactured from cave bear teeth that are reminiscent of those later produced by the last Neanderthals of western Europe4-6. These finds are consistent with models based on the arrival of multiple waves of H. sapiens into Europe coming into contact with declining Neanderthal populations7,8.


Subject(s)
Fossils , Human Migration/history , Animals , Asia , Bone and Bones/metabolism , Bulgaria , Caves , DNA, Ancient/isolation & purification , DNA, Mitochondrial/genetics , DNA, Mitochondrial/isolation & purification , Europe , History, Ancient , Humans , Neanderthals/genetics , Phylogeny , Tool Use Behavior , Tooth/anatomy & histology , Tooth/metabolism
14.
Nature ; 565(7741): 640-644, 2019 01.
Article in English | MEDLINE | ID: mdl-30700871

ABSTRACT

Denisova Cave in the Siberian Altai (Russia) is a key site for understanding the complex relationships between hominin groups that inhabited Eurasia in the Middle and Late Pleistocene epoch. DNA sequenced from human remains found at this site has revealed the presence of a hitherto unknown hominin group, the Denisovans1,2, and high-coverage genomes from both Neanderthal and Denisovan fossils provide evidence for admixture between these two populations3. Determining the age of these fossils is important if we are to understand the nature of hominin interaction, and aspects of their cultural and subsistence adaptations. Here we present 50 radiocarbon determinations from the late Middle and Upper Palaeolithic layers of the site. We also report three direct dates for hominin fragments and obtain a mitochondrial DNA sequence for one of them. We apply a Bayesian age modelling approach that combines chronometric (radiocarbon, uranium series and optical ages), stratigraphic and genetic data to calculate probabilistically the age of the human fossils at the site. Our modelled estimate for the age of the oldest Denisovan fossil suggests that this group was present at the site as early as 195,000 years ago (at 95.4% probability). All Neanderthal fossils-as well as Denisova 11, the daughter of a Neanderthal and a Denisovan4-date to between 80,000 and 140,000 years ago. The youngest Denisovan dates to 52,000-76,000 years ago. Direct radiocarbon dating of Upper Palaeolithic tooth pendants and bone points yielded the earliest evidence for the production of these artefacts in northern Eurasia, between 43,000 and 49,000 calibrated years before present (taken as AD 1950). On the basis of current archaeological evidence, it may be assumed that these artefacts are associated with the Denisovan population. It is not currently possible to determine whether anatomically modern humans were involved in their production, as modern-human fossil and genetic evidence of such antiquity has not yet been identified in the Altai region.


Subject(s)
Caves , Fossils , Hominidae , Radiometric Dating , Animals , Bayes Theorem , DNA, Mitochondrial/genetics , Deer , Femur/chemistry , Geologic Sediments/chemistry , History, Ancient , Hominidae/genetics , Humans , Neanderthals/genetics , Oxygen Isotopes , Siberia , Time Factors , Tooth/chemistry
15.
Nature ; 574(7778): 418-422, 2019 10.
Article in English | MEDLINE | ID: mdl-31619793

ABSTRACT

The human brain has undergone substantial change since humans diverged from chimpanzees and the other great apes1,2. However, the genetic and developmental programs that underlie this divergence are not fully understood. Here we have analysed stem cell-derived cerebral organoids using single-cell transcriptomics and accessible chromatin profiling to investigate gene-regulatory changes that are specific to humans. We first analysed cell composition and reconstructed differentiation trajectories over the entire course of human cerebral organoid development from pluripotency, through neuroectoderm and neuroepithelial stages, followed by divergence into neuronal fates within the dorsal and ventral forebrain, midbrain and hindbrain regions. Brain-region composition varied in organoids from different iPSC lines, but regional gene-expression patterns remained largely reproducible across individuals. We analysed chimpanzee and macaque cerebral organoids and found that human neuronal development occurs at a slower pace relative to the other two primates. Using pseudotemporal alignment of differentiation paths, we found that human-specific gene expression resolved to distinct cell states along progenitor-to-neuron lineages in the cortex. Chromatin accessibility was dynamic during cortex development, and we identified divergence in accessibility between human and chimpanzee that correlated with human-specific gene expression and genetic change. Finally, we mapped human-specific expression in adult prefrontal cortex using single-nucleus RNA sequencing analysis and identified developmental differences that persist into adulthood, as well as cell-state-specific changes that occur exclusively in the adult brain. Our data provide a temporal cell atlas of great ape forebrain development, and illuminate dynamic gene-regulatory features that are unique to humans.


Subject(s)
Brain , Genomics , Organoids/cytology , Pluripotent Stem Cells/cytology , Pluripotent Stem Cells/physiology , Animals , Biological Evolution , Brain/cytology , Brain/embryology , Brain/physiology , Humans , Macaca , Pan troglodytes , Single-Cell Analysis , Species Specificity
16.
Nucleic Acids Res ; 51(5): e26, 2023 03 21.
Article in English | MEDLINE | ID: mdl-36620901

ABSTRACT

CRISPR nucleases can introduce double-stranded DNA breaks in genomes at positions specified by guide RNAs. When repaired by the cell, this may result in the introduction of insertions and deletions or nucleotide substitutions provided by exogenous DNA donors. However, cellular repair can also result in unintended on-target effects, primarily larger deletions and loss of heterozygosity due to gene conversion. Here we present a strategy that allows easy and reliable detection of unintended on-target effects as well as the generation of control cells that carry wild-type alleles but have demonstratively undergone genome editing at the target site. Our 'sequence-ascertained favorable editing' (SAFE) donor approach relies on the use of DNA donor mixtures containing the desired nucleotide substitutions or the wild-type alleles together with combinations of additional 'diagnostic' substitutions unlikely to have any effects. Sequencing of the target sites then results in that two different sequences are seen when both chromosomes are edited with 'SAFE' donors containing different sets of substitutions, while a single sequence indicates unintended effects such as deletions or gene conversion. We analyzed more than 850 human embryonic stem cell clones edited with 'SAFE' donors and detect all copy number changes and almost all clones with gene conversion.


Subject(s)
CRISPR-Cas Systems , DNA Mutational Analysis , Gene Editing , Humans , Clustered Regularly Interspaced Short Palindromic Repeats , CRISPR-Cas Systems/genetics , DNA/genetics , Gene Editing/methods , Nucleotides , Embryonic Stem Cells
17.
Proc Natl Acad Sci U S A ; 119(1)2022 01 04.
Article in English | MEDLINE | ID: mdl-34969841

ABSTRACT

Ancient DNA recovered from Pleistocene sediments represents a rich resource for the study of past hominin and environmental diversity. However, little is known about how DNA is preserved in sediments and the extent to which it may be translocated between archaeological strata. Here, we investigate DNA preservation in 47 blocks of resin-impregnated archaeological sediment collected over the last four decades for micromorphological analyses at 13 prehistoric sites in Europe, Asia, Africa, and North America and show that such blocks can preserve DNA of hominins and other mammals. Extensive microsampling of sediment blocks from Denisova Cave in the Altai Mountains reveals that the taxonomic composition of mammalian DNA differs drastically at the millimeter-scale and that DNA is concentrated in small particles, especially in fragments of bone and feces (coprolites), suggesting that these are substantial sources of DNA in sediments. Three microsamples taken in close proximity in one of the blocks yielded Neanderthal DNA from at least two male individuals closely related to Denisova 5, a Neanderthal toe bone previously recovered from the same layer. Our work indicates that DNA can remain stably localized in sediments over time and provides a means of linking genetic information to the archaeological and ecological records on a microstratigraphic scale.


Subject(s)
Caves , DNA, Ancient , Fossils , Hominidae/genetics , Neanderthals/genetics , Animals
18.
Mol Biol Evol ; 40(6)2023 06 01.
Article in English | MEDLINE | ID: mdl-37315093

ABSTRACT

Dupuytren's disease is characterized by fingers becoming permanently bent in a flexed position. Whereas people of African ancestry are rarely afflicted by Dupuytren's disease, up to ∼30% of men over 60 years suffer from this condition in northern Europe. Here, we meta-analyze 3 biobanks comprising 7,871 cases and 645,880 controls and find 61 genome-wide significant variants associated with Dupuytren's disease. We show that 3 of the 61 loci harbor alleles of Neandertal origin, including the second and third most strongly associated ones (P = 6.4 × 10-132 and P = 9.2 × 10-69, respectively). For the most strongly associated Neandertal variant, we identify EPDR1 as the causal gene. Dupuytren's disease is an example of how admixture with Neandertals has shaped regional differences in disease prevalence.


Subject(s)
Dupuytren Contracture , Neanderthals , Animals , Humans , Male , Alleles , Dupuytren Contracture/genetics , Neanderthals/genetics , Risk Factors
19.
Nature ; 561(7721): 113-116, 2018 09.
Article in English | MEDLINE | ID: mdl-30135579

ABSTRACT

Neanderthals and Denisovans are extinct groups of hominins that separated from each other more than 390,000 years ago1,2. Here we present the genome of 'Denisova 11', a bone fragment from Denisova Cave (Russia)3 and show that it comes from an individual who had a Neanderthal mother and a Denisovan father. The father, whose genome bears traces of Neanderthal ancestry, came from a population related to a later Denisovan found in the cave4-6. The mother came from a population more closely related to Neanderthals who lived later in Europe2,7 than to an earlier Neanderthal found in Denisova Cave8, suggesting that migrations of Neanderthals between eastern and western Eurasia occurred sometime after 120,000 years ago. The finding of a first-generation Neanderthal-Denisovan offspring among the small number of archaic specimens sequenced to date suggests that mixing between Late Pleistocene hominin groups was common when they met.


Subject(s)
Hominidae/genetics , Hybridization, Genetic/genetics , Neanderthals/genetics , Alleles , Animals , Fathers , Female , Gene Flow/genetics , Genome , Genomics , History, Ancient , Humans , Male , Mothers , Time Factors
20.
Nature ; 555(7698): 652-656, 2018 03 29.
Article in English | MEDLINE | ID: mdl-29562232

ABSTRACT

Although it has previously been shown that Neanderthals contributed DNA to modern humans, not much is known about the genetic diversity of Neanderthals or the relationship between late Neanderthal populations at the time at which their last interactions with early modern humans occurred and before they eventually disappeared. Our ability to retrieve DNA from a larger number of Neanderthal individuals has been limited by poor preservation of endogenous DNA and contamination of Neanderthal skeletal remains by large amounts of microbial and present-day human DNA. Here we use hypochlorite treatment of as little as 9 mg of bone or tooth powder to generate between 1- and 2.7-fold genomic coverage of five Neanderthals who lived around 39,000 to 47,000 years ago (that is, late Neanderthals), thereby doubling the number of Neanderthals for which genome sequences are available. Genetic similarity among late Neanderthals is well predicted by their geographical location, and comparison to the genome of an older Neanderthal from the Caucasus indicates that a population turnover is likely to have occurred, either in the Caucasus or throughout Europe, towards the end of Neanderthal history. We find that the bulk of Neanderthal gene flow into early modern humans originated from one or more source populations that diverged from the Neanderthals that were studied here at least 70,000 years ago, but after they split from a previously sequenced Neanderthal from Siberia around 150,000 years ago. Although four of the Neanderthals studied here post-date the putative arrival of early modern humans into Europe, we do not detect any recent gene flow from early modern humans in their ancestry.


Subject(s)
Genome/genetics , Neanderthals/classification , Neanderthals/genetics , Phylogeny , Africa/ethnology , Animals , Bone and Bones , DNA, Ancient/analysis , Europe/ethnology , Female , Gene Flow , Genetics, Population , Genomics , Humans , Hypochlorous Acid , Male , Siberia/ethnology , Tooth
SELECTION OF CITATIONS
SEARCH DETAIL