Distinct and predictive chromatin signatures of transcriptional promoters and enhancers in the human genome
Top Cited Papers
- 4 February 2007
- journal article
- research article
- Published by Springer Nature in Nature Genetics
- Vol. 39 (3), 311-318
- https://doi.org/10.1038/ng1966
Abstract
Eukaryotic gene transcription is accompanied by acetylation and methylation of nucleosomes near promoters, but the locations and roles of histone modifications elsewhere in the genome remain unclear. We determined the chromatin modification states in high resolution along 30 Mb of the human genome and found that active promoters are marked by trimethylation of Lys4 of histone H3 (H3K4), whereas enhancers are marked by monomethylation, but not trimethylation, of H3K4. We developed computational algorithms using these distinct chromatin signatures to identify new regulatory elements, predicting over 200 promoters and 400 enhancers within the 30-Mb region. This approach accurately predicted the location and function of independently identified regulatory elements with high sensitivity and specificity and uncovered a novel functional enhancer for the carnitine transporter SLC22A5 (OCTN2). Our results give insight into the connections between chromatin modifications and transcriptional regulatory activity and provide a new tool for the functional annotation of the human genome.Keywords
This publication has 35 references indexed in Scilit:
- DNase-chip: a high-resolution method to identify DNase I hypersensitive sites using tiled microarraysNature Methods, 2006
- Genome-wide computational prediction of transcriptional regulatory modules reveals new insights into human gene expressionGenome Research, 2006
- Single-Nucleosome Mapping of Histone Modifications in S. cerevisiaePLoS Biology, 2005
- Genome-wide Map of Nucleosome Acetylation and Methylation in YeastCell, 2005
- A high-resolution map of active promoters in the human genomeNature, 2005
- NCBI Reference Sequence (RefSeq): a curated non-redundant sequence database of genomes, transcripts and proteinsNucleic Acids Research, 2004
- Histone modifications defining active genes persist after transcriptional and mitotic inactivationThe EMBO Journal, 2004
- The language of covalent histone modificationsNature, 2000
- Molecular Cloning and Characterization of High-Affinity Carnitine Transporter from Rat IntestineBiochemical and Biophysical Research Communications, 1998
- cDNA Sequence, Transport Function, and Genomic Organization of Human OCTN2, a New Member of the Organic Cation Transporter FamilyBiochemical and Biophysical Research Communications, 1998