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Dive into the research topics where Jennifer F. Hughes is active.

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Featured researches published by Jennifer F. Hughes.


Nature | 2010

Chimpanzee and human Y chromosomes are remarkably divergent in structure and gene content

Jennifer F. Hughes; Helen Skaletsky; Tina Graves; Saskia K.M. van Daalen; Patrick Minx; Robert S. Fulton; Sean McGrath; Devin P. Locke; Cynthia Friedman; Barbara J. Trask; Elaine R. Mardis; Wesley C. Warren; Sjoerd Repping; Steve Rozen; Richard Wilson; David C. Page

The human Y chromosome began to evolve from an autosome hundreds of millions of years ago, acquiring a sex-determining function and undergoing a series of inversions that suppressed crossing over with the X chromosome. Little is known about the recent evolution of the Y chromosome because only the human Y chromosome has been fully sequenced. Prevailing theories hold that Y chromosomes evolve by gene loss, the pace of which slows over time, eventually leading to a paucity of genes, and stasis. These theories have been buttressed by partial sequence data from newly emergent plant and animal Y chromosomes, but they have not been tested in older, highly evolved Y chromosomes such as that of humans. Here we finished sequencing of the male-specific region of the Y chromosome (MSY) in our closest living relative, the chimpanzee, achieving levels of accuracy and completion previously reached for the human MSY. By comparing the MSYs of the two species we show that they differ radically in sequence structure and gene content, indicating rapid evolution during the past 6 million years. The chimpanzee MSY contains twice as many massive palindromes as the human MSY, yet it has lost large fractions of the MSY protein-coding genes and gene families present in the last common ancestor. We suggest that the extraordinary divergence of the chimpanzee and human MSYs was driven by four synergistic factors: the prominent role of the MSY in sperm production, ‘genetic hitchhiking’ effects in the absence of meiotic crossing over, frequent ectopic recombination within the MSY, and species differences in mating behaviour. Although genetic decay may be the principal dynamic in the evolution of newly emergent Y chromosomes, wholesale renovation is the paramount theme in the continuing evolution of chimpanzee, human and perhaps other older MSYs.


Nature | 2014

Mammalian Y chromosomes retain widely expressed dosage-sensitive regulators

Daniel W. Bellott; Jennifer F. Hughes; Helen Skaletsky; Laura G. Brown; Ting-Jan Cho; Natalia Koutseva; Sara Zaghlul; Tina Graves; Susie Rock; Colin Kremitzki; Robert S. Fulton; Shannon Dugan; Yan Ding; Donna Morton; Ziad Khan; Lora Lewis; Christian Buhay; Qiaoyan Wang; Jennifer Watt; Michael Holder; Sandy Lee; Lynne V. Nazareth; Jessica Alföldi; Steve Rozen; Donna M. Muzny; Wesley C. Warren; Richard A. Gibbs; Richard Wilson; David C. Page

The human X and Y chromosomes evolved from an ordinary pair of autosomes, but millions of years ago genetic decay ravaged the Y chromosome, and only three per cent of its ancestral genes survived. We reconstructed the evolution of the Y chromosome across eight mammals to identify biases in gene content and the selective pressures that preserved the surviving ancestral genes. Our findings indicate that survival was nonrandom, and in two cases, convergent across placental and marsupial mammals. We conclude that the gene content of the Y chromosome became specialized through selection to maintain the ancestral dosage of homologous X–Y gene pairs that function as broadly expressed regulators of transcription, translation and protein stability. We propose that beyond its roles in testis determination and spermatogenesis, the Y chromosome is essential for male viability, and has unappreciated roles in Turner’s syndrome and in phenotypic differences between the sexes in health and disease.


Nature Genetics | 2001

Evidence for genomic rearrangements mediated by human endogenous retroviruses during primate evolution

Jennifer F. Hughes; John M. Coffin

Human endogenous retroviruses (HERVs), which are remnants of past retroviral infections of the germline cells of our ancestors, make up as much as 8% of the human genome and may even outnumber genes. Most HERVs seem to have entered the genome between 10 and 50 million years ago, and they comprise over 200 distinct groups and subgroups. Although repeated sequence elements such as HERVs have the potential to lead to chromosomal rearrangement through homologous recombination between distant loci, evidence for the generality of this process is lacking. To gain insight into the expansion of these elements in the genome during the course of primate evolution, we have identified 23 new members of the HERV-K (HML-2) group, which is thought to contain the most recently active members. Here we show, by phylogenetic and sequence analysis, that at least 16% of these elements have undergone apparent rearrangements that may have resulted in large-scale deletions, duplications and chromosome reshuffling during the evolution of the human genome.


Nature | 2005

Conservation of Y-linked genes during human evolution revealed by comparative sequencing in chimpanzee.

Jennifer F. Hughes; Helen Skaletsky; Patrick Minx; Tina Graves; Steve Rozen; Richard Wilson; David C. Page

The human Y chromosome, transmitted clonally through males, contains far fewer genes than the sexually recombining autosome from which it evolved. The enormity of this evolutionary decline has led to predictions that the Y chromosome will be completely bereft of functional genes within ten million years. Although recent evidence of gene conversion within massive Y-linked palindromes runs counter to this hypothesis, most unique Y-linked genes are not situated in palindromes and have no gene conversion partners. The ‘impending demise’ hypothesis thus rests on understanding the degree of conservation of these genes. Here we find, by systematically comparing the DNA sequences of unique, Y-linked genes in chimpanzee and human, which diverged about six million years ago, evidence that in the human lineage, all such genes were conserved through purifying selection. In the chimpanzee lineage, by contrast, several genes have sustained inactivating mutations. Gene decay in the chimpanzee lineage might be a consequence of positive selection focused elsewhere on the Y chromosome and driven by sperm competition.


Nature | 2012

Strict evolutionary conservation followed rapid gene loss on human and rhesus Y chromosomes

Jennifer F. Hughes; Helen Skaletsky; Laura G. Brown; Tina Graves; Robert S. Fulton; Shannon Dugan; Yan Ding; Christian Buhay; Colin Kremitzki; Qiaoyan Wang; Hua Shen; Michael Holder; Donna Villasana; Lynne V. Nazareth; Andrew Cree; Laura Courtney; Joelle Veizer; Holland Kotkiewicz; Ting-Jan Cho; Natalia Koutseva; Steve Rozen; Donna M. Muzny; Wesley C. Warren; Richard A. Gibbs; Richard Wilson; David C. Page

The human X and Y chromosomes evolved from an ordinary pair of autosomes during the past 200–300 million years. The human MSY (male-specific region of Y chromosome) retains only three percent of the ancestral autosomes’ genes owing to genetic decay. This evolutionary decay was driven by a series of five ‘stratification’ events. Each event suppressed X–Y crossing over within a chromosome segment or ‘stratum’, incorporated that segment into the MSY and subjected its genes to the erosive forces that attend the absence of crossing over. The last of these events occurred 30 million years ago, 5 million years before the human and Old World monkey lineages diverged. Although speculation abounds regarding ongoing decay and looming extinction of the human Y chromosome, remarkably little is known about how many MSY genes were lost in the human lineage in the 25 million years that have followed its separation from the Old World monkey lineage. To investigate this question, we sequenced the MSY of the rhesus macaque, an Old World monkey, and compared it to the human MSY. We discovered that during the last 25 million years MSY gene loss in the human lineage was limited to the youngest stratum (stratum 5), which comprises three percent of the human MSY. In the older strata, which collectively comprise the bulk of the human MSY, gene loss evidently ceased more than 25 million years ago. Likewise, the rhesus MSY has not lost any older genes (from strata 1–4) during the past 25 million years, despite its major structural differences to the human MSY. The rhesus MSY is simpler, with few amplified gene families or palindromes that might enable intrachromosomal recombination and repair. We present an empirical reconstruction of human MSY evolution in which each stratum transitioned from rapid, exponential loss of ancestral genes to strict conservation through purifying selection.


Cell | 2014

Sequencing the Mouse Y Chromosome Reveals Convergent Gene Acquisition and Amplification on Both Sex Chromosomes

Y. Q. Shirleen Soh; Jessica Alföldi; Laura G. Brown; Tina Graves; Patrick Minx; Robert S. Fulton; Colin Kremitzki; Natalia Koutseva; Jacob L. Mueller; Steve Rozen; Jennifer F. Hughes; Elaine Owens; James E. Womack; William J. Murphy; Qing Cao; Pieter J. de Jong; Wesley C. Warren; Richard Wilson; Helen Skaletsky; David C. Page

We sequenced the MSY (male-specific region of the Y chromosome) of the C57BL/6J strain of the laboratory mouse Mus musculus. In contrast to theories that Y chromosomes are heterochromatic and gene poor, the mouse MSY is 99.9% euchromatic and contains about 700 protein-coding genes. Only 2% of the MSY derives from the ancestral autosomes that gave rise to the mammalian sex chromosomes. Instead, all but 45 of the MSYs genes belong to three acquired, massively amplified gene families that have no homologs on primate MSYs but do have acquired, amplified homologs on the mouse X chromosome. The complete mouse MSY sequence brings to light dramatic forces in sex chromosome evolution: lineage-specific convergent acquisition and amplification of X-Y gene families, possibly fueled by antagonism between acquired X-Y homologs. The mouse MSY sequence presents opportunities for experimental studies of a sex-specific chromosome in its entirety, in a genetically tractable model organism.


Genetics | 2005

Human endogenous retroviral elements as indicators of ectopic recombination events in the primate genome.

Jennifer F. Hughes; John M. Coffin

HERV elements make up a significant fraction of the human genome and, as interspersed repetitive elements, have the capacity to provide substrates for ectopic recombination and gene conversion events. To understand the extent to which these events occur and gain further insight into the complex evolutionary history of these elements in our genome, we undertook a phylogenetic study of the long terminal repeat sequences of 15 HERV-K(HML-2) elements in various primate species. This family of human endogenous retroviruses first entered the primate genome between 35 and 45 million years ago. Throughout primate evolution, these elements have undergone bursts of amplification. From this analysis, which is the largest-scale study of HERV sequence dynamics during primate evolution to date, we were able to detect intraelement gene conversion and recombination at five HERV-K loci. We also found evidence for replacement of an ancient element by another HERV-K provirus, apparently reflecting an occurrence of retroviral integration by homologous recombination. The high frequency of these events casts doubt on the accuracy of integration time estimates based only on divergence between retroelement LTRs.


Annual Review of Genomics and Human Genetics | 2012

Genomics and Genetics of Human and Primate Y Chromosomes

Jennifer F. Hughes; Steve Rozen

In mammals, the Y chromosome plays the pivotal role in male sex determination and is essential for normal sperm production. Yet only three Y chromosomes have been completely sequenced to date--those of human, chimpanzee, and rhesus macaque. While Y chromosomes are notoriously difficult to sequence owing to their highly repetitive genomic landscapes, these dedicated sequencing efforts have generated tremendous yields in medical, biological, and evolutionary insight. Knowledge of the complex structural organization of the human Y chromosome and a complete catalog of its gene content have provided a deeper understanding of the mechanisms that generate disease-causing mutations and large-scale rearrangements. Variation among human Y-chromosome sequences has been an invaluable tool for understanding relationships among human populations. Comprehensive comparisons of the human Y-chromosome sequence with those of other primates have illuminated aspects of Y-chromosome evolutionary dynamics over much longer timescales (>25 million years compared with 100,000 years). The future sequencing of additional Y chromosomes will provide a basis for a more comprehensive understanding of the evolution of Y chromosomes and their roles in reproductive biology.


Annual Review of Genetics | 2015

The Biology and Evolution of Mammalian Y Chromosomes.

Jennifer F. Hughes; David C. Page

Mammals have the oldest sex chromosome system known: the mammalian X and Y chromosomes evolved from ordinary autosomes beginning at least 180 million years ago. Despite their shared ancestry, mammalian Y chromosomes display enormous variation among species in size, gene content, and structural complexity. Several unique features of the Y chromosome--its lack of a homologous partner for crossing over, its functional specialization for spermatogenesis, and its high degree of sequence amplification--contribute to this extreme variation. However, amid this evolutionary turmoil many commonalities have been revealed that have contributed to our understanding of the selective pressures driving the evolution and biology of the Y chromosome. Two biological themes have defined Y-chromosome research over the past six decades: testis determination and spermatogenesis. A third biological theme begins to emerge from recent insights into the Y chromosomes roles beyond the reproductive tract--a theme that promises to broaden the reach of Y-chromosome research by shedding light on fundamental sex differences in human health and disease.


Genome Research | 2015

The genome of the vervet (Chlorocebus aethiops sabaeus)

Wesley C. Warren; Anna J. Jasinska; Raquel García-Pérez; Hannes Svardal; Chad Tomlinson; Mariano Rocchi; Nicoletta Archidiacono; Patrick Minx; Michael J. Montague; Kim Kyung; LaDeana W. Hillier; Milinn Kremitzki; Tina Graves; Colby Chiang; Jennifer F. Hughes; Nam Tran; Yu Huang; Vasily Ramensky; Oi Wa Choi; Yoon Jung; Christopher A. Schmitt; Nikoleta Juretic; Jessica Wasserscheid; Trudy R. Turner; Roger W. Wiseman; Jennifer J. Tuscher; Julie A. Karl; Jörn E. Schmitz; Roland Zahn; David H. O'Connor

We describe a genome reference of the African green monkey or vervet (Chlorocebus aethiops). This member of the Old World monkey (OWM) superfamily is uniquely valuable for genetic investigations of simian immunodeficiency virus (SIV), for which it is the most abundant natural host species, and of a wide range of health-related phenotypes assessed in Caribbean vervets (C. a. sabaeus), whose numbers have expanded dramatically since Europeans introduced small numbers of their ancestors from West Africa during the colonial era. We use the reference to characterize the genomic relationship between vervets and other primates, the intra-generic phylogeny of vervet subspecies, and genome-wide structural variations of a pedigreed C. a. sabaeus population. Through comparative analyses with human and rhesus macaque, we characterize at high resolution the unique chromosomal fission events that differentiate the vervets and their close relatives from most other catarrhine primates, in whom karyotype is highly conserved. We also provide a summary of transposable elements and contrast these with the rhesus macaque and human. Analysis of sequenced genomes representing each of the main vervet subspecies supports previously hypothesized relationships between these populations, which range across most of sub-Saharan Africa, while uncovering high levels of genetic diversity within each. Sequence-based analyses of major histocompatibility complex (MHC) polymorphisms reveal extremely low diversity in Caribbean C. a. sabaeus vervets, compared to vervets from putatively ancestral West African regions. In the C. a. sabaeus research population, we discover the first structural variations that are, in some cases, predicted to have a deleterious effect; future studies will determine the phenotypic impact of these variations.

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David C. Page

University of Wisconsin-Madison

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Helen Skaletsky

Massachusetts Institute of Technology

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Richard Wilson

Washington University in St. Louis

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Steve Rozen

National University of Singapore

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Tina Graves

Washington University in St. Louis

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Wesley C. Warren

Washington University in St. Louis

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Patrick Minx

Washington University in St. Louis

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Natalia Koutseva

Massachusetts Institute of Technology

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Richard A. Gibbs

Baylor College of Medicine

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