Duncan T. Odom
University of Cambridge
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Featured researches published by Duncan T. Odom.
Cell | 2006
Tong Ihn Lee; Richard G. Jenner; Laurie A. Boyer; Matthew G. Guenther; Stuart S. Levine; Roshan M. Kumar; Brett Chevalier; Sarah E. Johnstone; Megan F. Cole; Kyoichi Isono; Haruhiko Koseki; Takuya Fuchikami; Kuniya Abe; Heather L. Murray; Jacob P. Zucker; Bingbing Yuan; George W. Bell; Elizabeth Herbolsheimer; Nancy M. Hannett; Kaiming Sun; Duncan T. Odom; Arie P. Otte; Thomas L. Volkert; David P. Bartel; Douglas A. Melton; David K. Gifford; Rudolf Jaenisch; Richard A. Young
Polycomb group proteins are essential for early development in metazoans, but their contributions to human development are not well understood. We have mapped the Polycomb Repressive Complex 2 (PRC2) subunit SUZ12 across the entire nonrepeat portion of the genome in human embryonic stem (ES) cells. We found that SUZ12 is distributed across large portions of over two hundred genes encoding key developmental regulators. These genes are occupied by nucleosomes trimethylated at histone H3K27, are transcriptionally repressed, and contain some of the most highly conserved noncoding elements in the genome. We found that PRC2 target genes are preferentially activated during ES cell differentiation and that the ES cell regulators OCT4, SOX2, and NANOG cooccupy a significant subset of these genes. These results indicate that PRC2 occupies a special set of developmental genes in ES cells that must be repressed to maintain pluripotency and that are poised for activation during ES cell differentiation.
Proceedings of the National Academy of Sciences of the United States of America | 2006
Teresa Palomero; Wei Keat Lim; Duncan T. Odom; Maria Luisa Sulis; Pedro J. Real; Adam A. Margolin; Kelly Barnes; Jennifer O'Neil; Donna Neuberg; Andrew P. Weng; François Sigaux; Jean Soulier; A. Thomas Look; Richard A. Young; Adolfo A. Ferrando
The NOTCH1 signaling pathway directly links extracellular signals with transcriptional responses in the cell nucleus and plays a critical role during T cell development and in the pathogenesis over 50% of human T cell lymphoblastic leukemia (T-ALL) cases. However, little is known about the transcriptional programs activated by NOTCH1. Using an integrative systems biology approach we show that NOTCH1 controls a feed-forward-loop transcriptional network that promotes cell growth. Inhibition of NOTCH1 signaling in T-ALL cells led to a reduction in cell size and elicited a gene expression signature dominated by down-regulated biosynthetic pathway genes. By integrating gene expression array and ChIP-on-chip data, we show that NOTCH1 directly activates multiple biosynthetic routes and induces c-MYC gene expression. Reverse engineering of regulatory networks from expression profiles showed that NOTCH1 and c-MYC govern two directly interconnected transcriptional programs containing common target genes that together regulate the growth of primary T-ALL cells. These results identify c-MYC as an essential mediator of NOTCH1 signaling and integrate NOTCH1 activation with oncogenic signaling pathways upstream of c-MYC.
Science | 2010
Dominic Schmidt; Michael D. Wilson; Benoit Ballester; Petra C. Schwalie; Gordon D. Brown; Aileen Marshall; Claudia Kutter; Stephen Watt; Celia Pilar Martinez-Jimenez; Sarah Mackay; Iannis Talianidis; Paul Flicek; Duncan T. Odom
Subtle Variation Despite vast phenotypic differences, vertebrates have many readily recognizable specific cell types, like liver hepatocytes. The gene expression that defines specific cells depends on evolutionarily conserved orthologous transcription factors. Schmidt et al. (p. 1036, published online 8 April) studied the conservation and divergence in the genome-wide binding of two such transcription factors, CEBPA and HNF4A, in livers from human, dog, mouse, short-tailed opossum, and chicken. Although the sequence bound by orthologous transcription factors was similar, the vast majority of binding events were unique to each species. Binding of two liver-specific transcription factors in several vertebrate species reveals complex regulatory evolution. Transcription factors (TFs) direct gene expression by binding to DNA regulatory regions. To explore the evolution of gene regulation, we used chromatin immunoprecipitation with high-throughput sequencing (ChIP-seq) to determine experimentally the genome-wide occupancy of two TFs, CCAAT/enhancer-binding protein alpha and hepatocyte nuclear factor 4 alpha, in the livers of five vertebrates. Although each TF displays highly conserved DNA binding preferences, most binding is species-specific, and aligned binding events present in all five species are rare. Regions near genes with expression levels that are dependent on a TF are often bound by the TF in multiple species yet show no enhanced DNA sequence constraint. Binding divergence between species can be largely explained by sequence changes to the bound motifs. Among the binding events lost in one lineage, only half are recovered by another binding event within 10 kilobases. Our results reveal large interspecies differences in transcriptional regulation and provide insight into regulatory evolution.
Science | 2012
Nuno L. Barbosa-Morais; Manuel Irimia; Qun Pan; Hui Yuan Xiong; Serge Gueroussov; Leo J. Lee; Slobodeniuc; Claudia Kutter; Stephen Watt; Recep Colak; Tae-Hyung Kim; Misquitta-Ali Cm; Wilson; Philip M. Kim; Duncan T. Odom; Brendan J. Frey; Benjamin J. Blencowe
Whence Species Variation? Vertebrates have widely varying phenotypes that are at odds with their much more limited proteincoding genotypes and conserved messenger RNA expression patterns. Genes with multiple exons and introns can undergo alternative splicing, potentially resulting in multiple protein isoforms (see the Perspective by Papasaikas and Valcárcel). Barbosa-Morais et al. (p. 1587) and Merkin et al. (p. 1593) analyzed alternative splicing across the genomes of a variety of vertebrates, including human, primates, rodents, opossum, platypus, chicken, lizard, and frog. The findings suggest that the evolution of alternative splicing has for the most part been very rapid and that alternative splicing patterns of most organs more strongly reflect the identity of the species rather than the organ type. Species-classifying alternative splicing can affect key regulators, often in disordered regions of proteins that may influence protein-protein interactions, or in regions involved in protein phosphorylation. The patterns and complexity of messenger RNA splicing across vertebrates cluster by species rather than by organ. How species with similar repertoires of protein-coding genes differ so markedly at the phenotypic level is poorly understood. By comparing organ transcriptomes from vertebrate species spanning ~350 million years of evolution, we observed significant differences in alternative splicing complexity between vertebrate lineages, with the highest complexity in primates. Within 6 million years, the splicing profiles of physiologically equivalent organs diverged such that they are more strongly related to the identity of a species than they are to organ type. Most vertebrate species-specific splicing patterns are cis-directed. However, a subset of pronounced splicing changes are predicted to remodel protein interactions involving trans-acting regulators. These events likely further contributed to the diversification of splicing and other transcriptomic changes that underlie phenotypic differences among vertebrate species.
Nature Genetics | 2007
Duncan T. Odom; Robin D. Dowell; Elizabeth S. Jacobsen; William Gordon; Timothy Danford; Kenzie D. MacIsaac; P. Alexander Rolfe; Caitlin M. Conboy; David K. Gifford; Ernest Fraenkel
We demonstrate that the binding sites for highly conserved transcription factors vary extensively between human and mouse. We mapped the binding of four tissue-specific transcription factors (FOXA2, HNF1A, HNF4A and HNF6) to 4,000 orthologous gene pairs in hepatocytes purified from human and mouse livers. Despite the conserved function of these factors, from 41% to 89% of their binding events seem to be species specific. When the same protein binds the promoters of orthologous genes, approximately two-thirds of the binding sites do not align.
Nature | 2012
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.
Methods | 2009
Dominic Schmidt; Michael D. Wilson; Christiana Spyrou; Gordon D. Brown; James Hadfield; Duncan T. Odom
Chromatin immunoprecipitation (ChIP) allows specific protein-DNA interactions to be isolated. Combining ChIP with high-throughput sequencing reveals the DNA sequence involved in these interactions. Here, we describe how to perform ChIP-seq starting with whole tissues or cell lines, and ending with millions of short sequencing tags that can be aligned to the reference genome of the species under investigation. We also outline additional procedures to recover ChIP-chip libraries for ChIP-seq and discuss contemporary issues in data analysis.
Cell | 2015
Diego Villar; Camille Berthelot; Sarah Aldridge; Tim F. Rayner; Margus Lukk; Miguel Pignatelli; Thomas J. Park; Robert Deaville; Jonathan Thor Erichsen; Anna J. Jasinska; James M. A. Turner; Mads F. Bertelsen; Elizabeth P. Murchison; Paul Flicek; Duncan T. Odom
Summary The mammalian radiation has corresponded with rapid changes in noncoding regions of the genome, but we lack a comprehensive understanding of regulatory evolution in mammals. Here, we track the evolution of promoters and enhancers active in liver across 20 mammalian species from six diverse orders by profiling genomic enrichment of H3K27 acetylation and H3K4 trimethylation. We report that rapid evolution of enhancers is a universal feature of mammalian genomes. Most of the recently evolved enhancers arise from ancestral DNA exaptation, rather than lineage-specific expansions of repeat elements. In contrast, almost all liver promoters are partially or fully conserved across these species. Our data further reveal that recently evolved enhancers can be associated with genes under positive selection, demonstrating the power of this approach for annotating regulatory adaptations in genomic sequences. These results provide important insight into the functional genetics underpinning mammalian regulatory evolution.
Cell | 2012
Dominic Schmidt; Petra C. Schwalie; Michael D. Wilson; Benoit Ballester; Ângela Gonçalves; Claudia Kutter; Gordon D. Brown; Aileen Marshall; Paul Flicek; Duncan T. Odom
Summary CTCF-binding locations represent regulatory sequences that are highly constrained over the course of evolution. To gain insight into how these DNA elements are conserved and spread through the genome, we defined the full spectrum of CTCF-binding sites, including a 33/34-mer motif, and identified over five thousand highly conserved, robust, and tissue-independent CTCF-binding locations by comparing ChIP-seq data from six mammals. Our data indicate that activation of retroelements has produced species-specific expansions of CTCF binding in rodents, dogs, and opossum, which often functionally serve as chromatin and transcriptional insulators. We discovered fossilized repeat elements flanking deeply conserved CTCF-binding regions, indicating that similar retrotransposon expansions occurred hundreds of millions of years ago. Repeat-driven dispersal of CTCF binding is a fundamental, ancient, and still highly active mechanism of genome evolution in mammalian lineages. PaperClip
Genome Research | 2010
Dominic Schmidt; Petra C. Schwalie; Caryn S. Ross-Innes; Antoni Hurtado; Gordon D. Brown; Jason S. Carroll; Paul Flicek; Duncan T. Odom
The cohesin protein complex holds sister chromatids in dividing cells together and is essential for chromosome segregation. Recently, cohesin has been implicated in mediating transcriptional insulation, via its interactions with CTCF. Here, we show in different cell types that cohesin functionally behaves as a tissue-specific transcriptional regulator, independent of CTCF binding. By performing matched genome-wide binding assays (ChIP-seq) in human breast cancer cells (MCF-7), we discovered thousands of genomic sites that share cohesin and estrogen receptor alpha (ER) yet lack CTCF binding. By use of human hepatocellular carcinoma cells (HepG2), we found that liver-specific transcription factors colocalize with cohesin independently of CTCF at liver-specific targets that are distinct from those found in breast cancer cells. Furthermore, estrogen-regulated genes are preferentially bound by both ER and cohesin, and functionally, the silencing of cohesin caused aberrant re-entry of breast cancer cells into cell cycle after hormone treatment. We combined chromosomal interaction data in MCF-7 cells with our cohesin binding data to show that cohesin is highly enriched at ER-bound regions that capture inter-chromosomal loop anchors. Together, our data show that cohesin cobinds across the genome with transcription factors independently of CTCF, plays a functional role in estrogen-regulated transcription, and may help to mediate tissue-specific transcriptional responses via long-range chromosomal interactions.