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Swi/Snf chromatin remodeling/tumor suppressor complex establishes nucleosome occupancy at target promoters
Author(s) -
Michael Tolstorukov,
Courtney G. Sansam,
Ping Lu,
Edward C. Koellhoffer,
Katherine Helming,
B. Alver,
Erik J. Tillman,
Julia A. Evans,
Boris G. Wilson,
Peter J. Park,
Charles W.M. Roberts
Publication year - 2013
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.1302209110
Subject(s) - swi/snf , nucleosome , chromatin , chromatin remodeling , promoter , microbiology and biotechnology , biology , transcriptional regulation , chia pet , chromatin structure remodeling (rsc) complex , transcription factor , histone , regulator , transcription (linguistics) , protein subunit , genetics , gene , gene expression , philosophy , linguistics
Precise nucleosome-positioning patterns at promoters are thought to be crucial for faithful transcriptional regulation. However, the mechanisms by which these patterns are established, are dynamically maintained, and subsequently contribute to transcriptional control are poorly understood. The switch/sucrose non-fermentable chromatin remodeling complex, also known as the Brg1 associated factors complex, is a master developmental regulator and tumor suppressor capable of mobilizing nucleosomes in biochemical assays. However, its role in establishing the nucleosome landscape in vivo is unclear. Here we have inactivated Snf5 and Brg1, core subunits of the mammalian Swi/Snf complex, to evaluate their effects on chromatin structure and transcription levels genomewide. We find that inactivation of either subunit leads to disruptions of specific nucleosome patterning combined with a loss of overall nucleosome occupancy at a large number of promoters, regardless of their association with CpG islands. These rearrangements are accompanied by gene expression changes that promote cell proliferation. Collectively, these findings define a direct relationship between chromatin-remodeling complexes, chromatin structure, and transcriptional regulation.

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