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PMID: 18787134 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Species-specific transcription in mice carrying human chromosome 21.

Science (New York, N.Y.) ·Vol. 322 ·No. 5900 ·2008-10-17 ·Pages 434-8

Wilson MD, Barbosa-Morais NL, Schmidt D, Conboy CM, Vanes L, Tybulewicz VL, Fisher EM, Tavaré S, Odom DT

Abstract

Homologous sets of transcription factors direct conserved tissue-specific gene expression, yet transcription factor-binding events diverge rapidly between closely related species. We used hepatocytes from an aneuploid mouse strain carrying human chromosome 21 to determine, on a chromosomal scale, whether interspecies differences in transcriptional regulation are primarily directed by human genetic sequence or mouse nuclear environment. Virtually all transcription factor-binding locations, landmarks of transcription initiation, and the resulting gene expression observed in human hepatocytes were recapitulated across the entire human chromosome 21 in the mouse hepatocyte nucleus. Thus, in homologous tissues, genetic sequence is largely responsible for directing transcriptional programs; interspecies differences in epigenetic machinery, cellular environment, and transcription factors themselves play secondary roles.

MeSH Terms
Animals Base Sequence Cell Nucleus/metabolism Chromatin Assembly and Disassembly Chromatin Immunoprecipitation Chromosomes, Human, Pair 21/genetics,metabolism Disease Models, Animal Down Syndrome/genetics Gene Expression Regulation Hepatocyte Nuclear Factors/metabolism Hepatocytes/metabolism Histones/metabolism Humans Methylation Mice Oligonucleotide Array Sequence Analysis Regulatory Sequences, Nucleic Acid Species Specificity Transcription Initiation Site Transcription, Genetic
Chemicals
Hepatocyte Nuclear Factors Histones
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Wilson Michael D
Cancer Research UK, Cambridge Research Institute, Li Ka Shing Centre, Robinson Way, Cambridge CB2 0RE, UK.
Barbosa-Morais Nuno L
Schmidt Dominic
Conboy Caitlin M
Vanes Lesley
Tybulewicz Victor L J
Fisher Elizabeth M C
Tavaré Simon
Odom Duncan T
References (29)
29 references, click to expand
  1. Divergence of transcription factor binding sites across related yeast species.
    Science. 2007 Aug 10;317(5839):815-9 PMID: 17690298
  2. The locus of evolution: evo devo and the genetics of adaptation.
    Evolution. 2007 May;61(5):995-1016 PMID: 17492956
  3. Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project.
    Nature. 2007 Jun 14;447(7146):799-816 PMID: 17571346
  4. The evolutionary significance of cis-regulatory mutations.
    Nat Rev Genet. 2007 Mar;8(3):206-16 PMID: 17304246
  5. Liver-enriched transcription factors and hepatocyte differentiation.
    FASEB J. 1996 Feb;10(2):267-82 PMID: 8641560
  6. Novel RNAs identified from an in-depth analysis of the transcriptome of human chromosomes 21 and 22.
    Genome Res. 2004 Mar;14(3):331-42 PMID: 14993201
  7. Fine mapping of regulatory loci for mammalian gene expression using radiation hybrids.
    Nat Genet. 2008 Apr;40(4):421-9 PMID: 18362883
  8. Binding sites for metabolic disease related transcription factors inferred at base pair resolution by chromatin immunoprecipitation and genomic microarrays.
    Hum Mol Genet. 2005 Nov 15;14(22):3435-47 PMID: 16221759
  9. A chromatin landmark and transcription initiation at most promoters in human cells.
    Cell. 2007 Jul 13;130(1):77-88 PMID: 17632057
  10. Tissue-specific transcriptional regulation has diverged significantly between human and mouse.
    Nat Genet. 2007 Jun;39(6):730-2 PMID: 17529977
  11. Chromosome-wide mapping of estrogen receptor binding reveals long-range regulation requiring the forkhead protein FoxA1.
    Cell. 2005 Jul 15;122(1):33-43 PMID: 16009131
  12. Selective anchoring of TFIID to nucleosomes by trimethylation of histone H3 lysine 4.
    Cell. 2007 Oct 5;131(1):58-69 PMID: 17884155
  13. Modulation of transcriptional activation and coactivator interaction by a splicing variation in the F domain of nuclear receptor hepatocyte nuclear factor 4alpha1.
    Mol Cell Biol. 1999 Oct;19(10):6509-22 PMID: 10490591
  14. Liver specification and early morphogenesis.
    Mech Dev. 2000 Mar 15;92(1):83-8 PMID: 10704889
  15. Expression profiling in primates reveals a rapid evolution of human transcription factors.
    Nature. 2006 Mar 9;440(7081):242-5 PMID: 16525476
  16. The role of chromatin during transcription.
    Cell. 2007 Feb 23;128(4):707-19 PMID: 17320508
  17. Locating mammalian transcription factor binding sites: a survey of computational and experimental techniques.
    Genome Res. 2006 Dec;16(12):1455-64 PMID: 17053094
  18. High-resolution profiling of histone methylations in the human genome.
    Cell. 2007 May 18;129(4):823-37 PMID: 17512414
  19. Parallel patterns of evolution in the genomes and transcriptomes of humans and chimpanzees.
    Science. 2005 Sep 16;309(5742):1850-4 PMID: 16141373
  20. Revealing the architecture of gene regulation: the promise of eQTL studies.
    Trends Genet. 2008 Aug;24(8):408-15 PMID: 18597885
  21. Large-scale turnover of functional transcription factor binding sites in Drosophila.
    PLoS Comput Biol. 2006 Oct;2(10):e130 PMID: 17040121
  22. Regulatory changes underlying expression differences within and between Drosophila species.
    Nat Genet. 2008 Mar;40(3):346-50 PMID: 18278046
  23. Critical role of charged residues in helix 7 of the ligand binding domain in Hepatocyte Nuclear Factor 4alpha dimerisation and transcriptional activity.
    Nucleic Acids Res. 2003 Nov 15;31(22):6640-50 PMID: 14602925
  24. An aneuploid mouse strain carrying human chromosome 21 with Down syndrome phenotypes.
    Science. 2005 Sep 23;309(5743):2033-7 PMID: 16179473
  25. Genomic maps and comparative analysis of histone modifications in human and mouse.
    Cell. 2005 Jan 28;120(2):169-81 PMID: 15680324
  26. Recognition of trimethylated histone H3 lysine 4 facilitates the recruitment of transcription postinitiation factors and pre-mRNA splicing.
    Mol Cell. 2007 Nov 30;28(4):665-76 PMID: 18042460
  27. Gene regulatory networks and the evolution of animal body plans.
    Science. 2006 Feb 10;311(5762):796-800 PMID: 16469913
  28. Myc-binding-site recognition in the human genome is determined by chromatin context.
    Nat Cell Biol. 2006 Jul;8(7):764-70 PMID: 16767079
  29. Evo-devo and an expanding evolutionary synthesis: a genetic theory of morphological evolution.
    Cell. 2008 Jul 11;134(1):25-36 PMID: 18614008
Article Info
Journal
Science (New York, N.Y.)
Abbr.
Science
ISSN
1095-9203
Published
2008-10-17
Epub
2008-00-11
Pages
434-8
Language
English
Region
United States
NLM ID
0404511
PMCID
PMC3717767
Subset
IM
Grants
Wellcome Trust · 080174 · United Kingdom
Medical Research Council · MC_U117527252 · United Kingdom
Cancer Research UK · 15603 · United Kingdom
Cancer Research UK · A15603 · United Kingdom
Medical Research Council · G0601056 · United Kingdom
European Research Council · 202218 · International
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