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Sensitive ChIP-DSL technology reveals an extensive estrogen receptor α-binding program on human gene promoters
Author(s) -
YoungSoo Kwon,
Ivan García-Bassets,
Kasey R. Hutt,
Christine S. Cheng,
Mingjie Jin,
Dongyan Liu,
Christopher Benner,
Dong Wang,
Zhen Ye,
Marina Bibikova,
JianBing Fan,
Lingxun Duan,
Christopher K. Glass,
Michael G. Rosenfeld,
Xiangdong Fu
Publication year - 2007
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0700715104
Subject(s) - digital subscriber line , promoter , biology , dna microarray , gene expression profiling , estrogen receptor , computational biology , gene , human genome , regulation of gene expression , gene chip analysis , gene expression , genetics , microbiology and biotechnology , genome , computer science , breast cancer , cancer , telecommunications
ChIP coupled with microarray provides a powerful tool to determine in vivo binding profiling of transcription factors to deduce regulatory circuitries in mammalian cells. Aiming at improving the specificity and sensitivity of such analysis, we developed a new technology called ChIP-DSL using the DNA selection and ligation (DSL) strategy, permitting robust analysis with much reduced materials compared with standard procedures. We profiled general and sequence-specific DNA binding transcription factors using a full human genome promoter array based on the ChIP-DSL technology, revealing an unprecedented number of the estrogen receptor (ERalpha) target genes in MCF-7 cells. Coupled with gene expression profiling, we found that only a fraction of these direct ERalpha target genes were highly responsive to estrogen and that the expression of those ERalpha-bound, estrogen-inducible genes was associated with breast cancer progression in humans. This study demonstrates the power of the ChIP-DSL technology in revealing regulatory gene expression programs that have been previously invisible in the human genome.

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