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PMID: 19295514 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, N.I.H., Intramural Research Support, Non-U.S. Gov't

Histone modifications at human enhancers reflect global cell-type-specific gene expression.

Nature ·Vol. 459 ·No. 7243 ·2009-05-07 ·Pages 108-12

Heintzman ND, Hon GC, Hawkins RD, Kheradpour P, Stark A, Harp LF, Ye Z, Lee LK, Stuart RK, Ching CW, Ching KA, Antosiewicz-Bourget JE, Liu H, Zhang X, Green RD, Lobanenkov VV, Stewart R, Thomson JA, Crawford GE, Kellis M, Ren B

Abstract

The human body is composed of diverse cell types with distinct functions. Although it is known that lineage specification depends on cell-specific gene expression, which in turn is driven by promoters, enhancers, insulators and other cis-regulatory DNA sequences for each gene, the relative roles of these regulatory elements in this process are not clear. We have previously developed a chromatin-immunoprecipitation-based microarray method (ChIP-chip) to locate promoters, enhancers and insulators in the human genome. Here we use the same approach to identify these elements in multiple cell types and investigate their roles in cell-type-specific gene expression. We observed that the chromatin state at promoters and CTCF-binding at insulators is largely invariant across diverse cell types. In contrast, enhancers are marked with highly cell-type-specific histone modification patterns, strongly correlate to cell-type-specific gene expression programs on a global scale, and are functionally active in a cell-type-specific manner. Our results define over 55,000 potential transcriptional enhancers in the human genome, significantly expanding the current catalogue of human enhancers and highlighting the role of these elements in cell-type-specific gene expression.

MeSH Terms
Binding Sites Cell Line Cell Physiological Phenomena Chromatin/genetics Gene Expression Regulation Genome, Human/genetics HeLa Cells Histones/metabolism Humans K562 Cells Promoter Regions, Genetic/genetics Transcription Factors/genetics,metabolism
Chemicals
Chromatin Histones Transcription Factors
Authors & Affiliations
21 authors, click to expand affiliations / ORCID
Heintzman Nathaniel D
Ludwig Institute for Cancer Research, UCSD School of Medicine, 9500 Gilman Drive, La Jolla, California 92093-0653, USA.
Hon Gary C
Hawkins R David
Kheradpour Pouya
Stark Alexander
Harp Lindsey F
Ye Zhen
Lee Leonard K
Stuart Rhona K
Ching Christina W
Ching Keith A
Antosiewicz-Bourget Jessica E
Liu Hui
Zhang Xinmin
Green Roland D
Lobanenkov Victor V
Stewart Ron
Thomson James A
Crawford Gregory E
Kellis Manolis
Ren Bing
References (28)
28 references, click to expand
  1. Spatial and temporal recruitment of androgen receptor and its coactivators involves chromosomal looping and polymerase tracking.
    Mol Cell. 2005 Sep 2;19(5):631-42 PMID: 16137620
  2. Feeder-independent culture of human embryonic stem cells.
    Nat Methods. 2006 Aug;3(8):637-46 PMID: 16862139
  3. Signal transduction and the control of gene expression.
    Science. 2002 Feb 1;295(5556):813-8 PMID: 11823631
  4. DNase-chip: a high-resolution method to identify DNase I hypersensitive sites using tiled microarrays.
    Nat Methods. 2006 Jul;3(7):503-9 PMID: 16791207
  5. High-resolution profiling of histone methylations in the human genome.
    Cell. 2007 May 18;129(4):823-37 PMID: 17512414
  6. A high-resolution map of active promoters in the human genome.
    Nature. 2005 Aug 11;436(7052):876-80 PMID: 15988478
  7. Distinct and predictive chromatin signatures of transcriptional promoters and enhancers in the human genome.
    Nat Genet. 2007 Mar;39(3):311-8 PMID: 17277777
  8. Genome-wide profiles of STAT1 DNA association using chromatin immunoprecipitation and massively parallel sequencing.
    Nat Methods. 2007 Aug;4(8):651-7 PMID: 17558387
  9. Identification and characterization of cell type-specific and ubiquitous chromatin regulatory structures in the human genome.
    PLoS Genet. 2007 Aug;3(8):e136 PMID: 17708682
  10. Discovery of functional elements in 12 Drosophila genomes using evolutionary signatures.
    Nature. 2007 Nov 8;450(7167):219-32 PMID: 17994088
  11. Reliable prediction of regulator targets using 12 Drosophila genomes.
    Genome Res. 2007 Dec;17(12):1919-31 PMID: 17989251
  12. The landscape of histone modifications across 1% of the human genome in five human cell lines.
    Genome Res. 2007 Jun;17(6):691-707 PMID: 17567990
  13. The gateway to transcription: identifying, characterizing and understanding promoters in the eukaryotic genome.
    Cell Mol Life Sci. 2007 Feb;64(4):386-400 PMID: 17171231
  14. The t-PA -7351C>T enhancer polymorphism decreases Sp1 and Sp3 protein binding affinity and transcriptional responsiveness to retinoic acid.
    Blood. 2005 Feb 1;105(3):1060-7 PMID: 15466927
  15. Aniridia-associated translocations, DNase hypersensitivity, sequence comparison and transgenic analysis redefine the functional domain of PAX6.
    Hum Mol Genet. 2001 Sep 15;10(19):2049-59 PMID: 11590122
  16. Relationships between p63 binding, DNA sequence, transcription activity, and biological function in human cells.
    Mol Cell. 2006 Nov 17;24(4):593-602 PMID: 17188034
  17. Genome-wide analysis of estrogen receptor binding sites.
    Nat Genet. 2006 Nov;38(11):1289-97 PMID: 17013392
  18. Transcriptional regulatory elements in the human genome.
    Annu Rev Genomics Hum Genet. 2006;7:29-59 PMID: 16719718
  19. Model-based analysis of two-color arrays (MA2C).
    Genome Biol. 2007;8(8):R178 PMID: 17727723
  20. Evaluation of regulatory potential and conservation scores for detecting cis-regulatory modules in aligned mammalian genome sequences.
    Genome Res. 2005 Aug;15(8):1051-60 PMID: 16024817
  21. Promoter features related to tissue specificity as measured by Shannon entropy.
    Genome Biol. 2005;6(4):R33 PMID: 15833120
  22. Cohesin mediates transcriptional insulation by CCCTC-binding factor.
    Nature. 2008 Feb 14;451(7180):796-801 PMID: 18235444
  23. A global map of p53 transcription-factor binding sites in the human genome.
    Cell. 2006 Jan 13;124(1):207-19 PMID: 16413492
  24. Genome-wide mapping of in vivo protein-DNA interactions.
    Science. 2007 Jun 8;316(5830):1497-502 PMID: 17540862
  25. Histone modifications: signalling receptors and potential elements of a heritable epigenetic code.
    Curr Opin Genet Dev. 2006 Apr;16(2):125-36 PMID: 16503131
  26. Analysis of the vertebrate insulator protein CTCF-binding sites in the human genome.
    Cell. 2007 Mar 23;128(6):1231-45 PMID: 17382889
  27. The ENCODE (ENCyclopedia Of DNA Elements) Project.
    Science. 2004 Oct 22;306(5696):636-40 PMID: 15499007
  28. Systematic discovery of regulatory motifs in human promoters and 3' UTRs by comparison of several mammals.
    Nature. 2005 Mar 17;434(7031):338-45 PMID: 15735639
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2009-05-07
Epub
2009-00-18
Pages
108-12
Language
English
Region
England
NLM ID
0410462
PMCID
PMC2910248
Subset
IM
Grants
NHGRI NIH HHS · R01 HG004037 · United States
NHGRI NIH HHS · U01 HG003151-02 · United States
NHGRI NIH HHS · U01 HG003151-03S1 · United States
NHGRI NIH HHS · U01 HG003151-01S1 · United States
Intramural NIH HHS · United States
NHGRI NIH HHS · U01 HG003151 · United States
NHGRI NIH HHS · R01 HG004037-02 · United States
NHGRI NIH HHS · U01 HG003151-01 · United States
NHGRI NIH HHS · U01 HG003151-03S2 · United States
NHGRI NIH HHS · U01 HG003151-03 · United States
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