Identification and characterization of cell type-specific and ubiquitous chromatin regulatory structures in the human genome

被引:172
作者
Xi, Hualin
Shulha, Hennady P.
Lin, Jane M.
Vales, Teresa R.
Fu, Yutao
Bodine, David M.
Mckay, Ronald D. G.
Chenoweth, Josh G.
Tesar, Paul J.
Furey, Terrence S.
Ren, Bing
Weng, Zhiping [1 ]
Crawford, Gregory E.
机构
[1] Boston Univ, Bioinformat Program, Boston, MA 02215 USA
[2] Boston Univ, Dept Biomed Engn, Boston, MA 02215 USA
[3] Duke Univ, Inst Genome Sci & Policy, Durham, NC USA
[4] NHGRI, Genet & Mol Biol Branch, Hematopoiesis Sect, Bethesda, MD 20892 USA
[5] NINDS, NIH, Bethesda, MD 20892 USA
[6] Univ Calif San Diego, Ludwig Inst Canc Res, La Jolla, CA 92093 USA
关键词
D O I
10.1371/journal.pgen.0030136
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The identification of regulatory elements from different cell types is necessary for understanding the mechanisms controlling cell type-specific and housekeeping gene expression. Mapping DNasel hypersensitive ( HS) sites is an accurate method for identifying the location of functional regulatory elements. We used a high throughput method called DNase-chip to identify 3,904 DNasel HS sites from six cell types across 1% of the human genome. A significant number ( 22%) of DNasel HS sites from each cell type are ubiquitously present among all cell types studied. Surprisingly, nearly all of these ubiquitous DNasel HS sites correspond to either promoters or insulator elements: 86% of them are located near annotated transcription start sites and 10% are bound by CTCF, a protein with known enhancer-blocking insulator activity. We also identified a large number of DNasel HS sites that are cell type specific ( only present in one cell type); these regions are enriched for enhancer elements and correlate with cell type-specific gene expression as well as cell type-specific histone modifications. Finally, we found that approximately 8% of the genome overlaps a DNasel HS site in at least one the six cell lines studied, indicating that a significant percentage of the genome is potentially functional.
引用
收藏
页码:1377 / 1388
页数:12
相关论文
共 44 条
[1]   Combining evidence using p-values: application to sequence homology searches [J].
Bailey, TL ;
Gribskov, M .
BIOINFORMATICS, 1998, 14 (01) :48-54
[2]  
Bailey TL., 1994, P 2 INT C INT SYST M, V2, P28
[3]   The protein CTCF is required for the enhancer blocking activity of vertebrate insulators [J].
Bell, AC ;
West, AG ;
Felsenfeld, G .
CELL, 1999, 98 (03) :387-396
[4]   Methylation of a CTCF-dependent boundary controls imprinted expression of the Igf2 gene [J].
Bell, AC ;
Felsenfeld, G .
NATURE, 2000, 405 (6785) :482-485
[5]   Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project [J].
Birney, Ewan ;
Stamatoyannopoulos, John A. ;
Dutta, Anindya ;
Guigo, Roderic ;
Gingeras, Thomas R. ;
Margulies, Elliott H. ;
Weng, Zhiping ;
Snyder, Michael ;
Dermitzakis, Emmanouil T. ;
Stamatoyannopoulos, John A. ;
Thurman, Robert E. ;
Kuehn, Michael S. ;
Taylor, Christopher M. ;
Neph, Shane ;
Koch, Christoph M. ;
Asthana, Saurabh ;
Malhotra, Ankit ;
Adzhubei, Ivan ;
Greenbaum, Jason A. ;
Andrews, Robert M. ;
Flicek, Paul ;
Boyle, Patrick J. ;
Cao, Hua ;
Carter, Nigel P. ;
Clelland, Gayle K. ;
Davis, Sean ;
Day, Nathan ;
Dhami, Pawandeep ;
Dillon, Shane C. ;
Dorschner, Michael O. ;
Fiegler, Heike ;
Giresi, Paul G. ;
Goldy, Jeff ;
Hawrylycz, Michael ;
Haydock, Andrew ;
Humbert, Richard ;
James, Keith D. ;
Johnson, Brett E. ;
Johnson, Ericka M. ;
Frum, Tristan T. ;
Rosenzweig, Elizabeth R. ;
Karnani, Neerja ;
Lee, Kirsten ;
Lefebvre, Gregory C. ;
Navas, Patrick A. ;
Neri, Fidencio ;
Parker, Stephen C. J. ;
Sabo, Peter J. ;
Sandstrom, Richard ;
Shafer, Anthony .
NATURE, 2007, 447 (7146) :799-816
[6]   Analysis of the molecular cascade responsible for mesodermal limb chondrogenesis:: Sox genes and BMP signaling [J].
Chimal-Monroy, J ;
Rodriguez-Leon, J ;
Montero, JA ;
Gañan, Y ;
Macias, D ;
Merino, R ;
Hurle, JM .
DEVELOPMENTAL BIOLOGY, 2003, 257 (02) :292-301
[7]   Characterization of the chicken beta-globin insulator [J].
Chung, JH ;
Bell, AC ;
Felsenfeld, G .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (02) :575-580
[8]   Genome-wide mapping of DNase hypersensitive sites using massively parallel signature sequencing (MPSS) [J].
Crawford, GE ;
Holt, IE ;
Whittle, J ;
Webb, BD ;
Tai, D ;
Davis, S ;
Margulies, EH ;
Chen, YD ;
Bernat, JA ;
Ginsburg, D ;
Zhou, DX ;
Luo, SJ ;
Vasicek, TJ ;
Daly, MJ ;
Wolfsberg, TG ;
Collins, FS .
GENOME RESEARCH, 2006, 16 (01) :123-131
[9]   DNase-chip: a high-resolution method to identify DNase I hypersensitive sites using tiled microarrays [J].
Crawford, Gregory E. ;
Davis, Sean ;
Scacheri, Peter C. ;
Renaud, Gabriel ;
Halawi, Mohamad J. ;
Erdos, Michael R. ;
Green, Roland ;
Meltzer, Paul S. ;
Wolfsberg, Tyra G. ;
Collins, Francis S. .
NATURE METHODS, 2006, 3 (07) :503-509
[10]   Chromosome Conformation Capture Carbon Copy (5C): A massively parallel solution for mapping interactions between genomic elements [J].
Dostie, Josee ;
Richmond, Todd A. ;
Arnaout, Ramy A. ;
Selzer, Rebecca R. ;
Lee, William L. ;
Honan, Tracey A. ;
Rubio, Eric D. ;
Krumm, Anton ;
Lamb, Justin ;
Nusbaum, Chad ;
Green, Roland D. ;
Dekker, Job .
GENOME RESEARCH, 2006, 16 (10) :1299-1309