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82. Mohrmann L, Verrijzer CP. Composition and functional specificity of SWI2/SNF2 class
chromatin remodeling complexes. Biochim Biophys Acta 2005; 1681 :59-73.
83. Park JH, Park EJ, Lee HS, Kim SJ, Hur SK, Imbalzano AN, et al. Mammalian SWI/SNF
complexes facilitate DNA double-strand break repair by promoting gamma-H2AX induction.
EMBO J 2006; 25 :3986-97.
84. Ray A, Mir SN, Wani G, Zhao Q, Battu A, Zhu Q, et al. hSNF5/INI1, a component of the
human SWI/SNF chromatin remodeling complex, promotes nucleotide excision repair by
influencing ATM recruitment and downstream H2AX phosphorylation. Mol Cell Biol
2009; 29 :6206-19.
85. McKenna ES, Sansam CG, Cho YJ, Greulich H, Evans JA, Thom CS, et al. Loss of the
epigenetic tumor suppressor SNF5 leads to cancer without genomic instability. Mol Cell Biol
2008; 28 :6223-33.
86. Peng G, Yim EK, Dai H, Jackson AP, Burgt I, Pan MR, et al. BRIT1/MCPH1 links chromatin
remodelling to DNA damage response. Nat Cell Biol 2009; 11 :865-72.
87. Ogiwara H, Ui A, Otsuka A, Satoh H, Yokomi I, Nakajima S, et al. Histone acetylation by CBP
and p300 at double-strand break sites facilitates SWI/SNF chromatin remodeling and the
recruitment of non-homologous end joining factors. Oncogene 2011; 30 :2135-46.
88. Lee HS, Park JH, Kim SJ, Kwon SJ, Kwon J. A cooperative activation loop among SWI/SNF,
gamma-H2AX and H3 acetylation for DNA double-strand break repair. EMBO J
2010; 29 :1434-45.
89. Park JH, Park EJ, Hur SK, Kim S, Kwon J. Mammalian SWI/SNF chromatin remodeling
complexes are required to prevent apoptosis after DNA damage. DNA Repair (Amst)
2009; 8 :29-39.
90. Klochendler-Yeivin A, Picarsky E, Yaniv M. Increased DNA damage sensitivity and apoptosis
in cells lacking the Snf5/Ini1 subunit of the SWI/SNF chromatin remodeling complex. Mol
Cell Biol 2006; 26 :2661-74.
91. Harte MT, O'Brien GJ, Ryan NM, Gorski JJ, Savage KI, Crawford NT, et al. BRD7, a subunit
of SWI/SNF complexes, binds directly to BRCA1 and regulates BRCA1-dependent transcrip-
tion. Cancer Res 2010; 70 :2538-47.
92. Burrows AE, Smogorzewska A, Elledge SJ. Polybromo-associated BRG1-associated factor
components BRD7 and BAF180 are critical regulators of p53 required for induction of
replicative senescence. Proc Natl Acad Sci USA 2010; 107 :14280-5.
93. Ebbert R, Birkmann A, Schuller H-J. The product of the SNF2 / SWI2 paralogue INO80 of
Saccharomyces cerevisiae required for efficient expression of various yeast structural genes is
part of a high-molecular-weight protein complex. Mol Microbiol 1999; 32 :741-51.
94. Shen X, Mizuguchi G, Hamich A, Wu C. A chromatin remodeling complex involved in
transcription and DNA processing. Nature 2000; 406 :541-4.
95. Chen L, Cai Y, Jin J, Florens L, Swanson SK, Washburn MP, et al. Subunit organization of the
human INO80 chromatin remodeling complex: an evolutionarily conserved core complex
catalyzes ATP-dependent nucleosome remodeling. J Biol Chem 2011; 286 :11283-9.
96. Jonsson ZO, Jha S, Wohlschlegel JA, Dutta A. Rvb1p/Rvb2p recruit Arp5p and assemble a
functional Ino80 chromatin remodeling complex. Mol Cell 2004; 16 :465-77.
97. Shen X, Ranallo R, Choi E, Wu C. Involvement of actin-related proteins in ATP-dependent
chromatin remodeling. Mol Cell 2003; 12 :147-55.
98. Udugama M, Sabri A, Bartholomew B. The INO80 ATP-dependent chromatin remodeling
complex is a nucleosome spacing factor. Mol Cell Biol 2011; 31 :662-73.
99. Papamichos-Chronakis M, Watanabe S, Rando OJ, Peterson CL. Global regulation of H2A.Z
localization by the INO80 chromatin-remodeling enzyme is essential for genome integrity.
Cell 2011; 144 :200-13.
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