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40. Huen MS, Grant R, Manke I, Minn K, Yu X, Yaffe MB, et al. RNF8 transduces the DNA
damage signal via histone ubiquitylation and checkpoint protein assembly. Cell 2007;
131
:
901-14.
41. Sobhian B, Shao G, Lilli DR, Culhane AC, Moreau LA, Xie B, et al. RAP80 target BRCA1 to
specific ubiquitin structures at DNA damage sites. Science 2007;
:1198-202.
42. Kim H, Chen J, Yu X. Ubiquitin-binding protein RAP80 mediates BRCA1-dependent DNA
damage response. Science 2007;
316
:1202-5.
43. Faucher D, Wellinger RJ. Methylated H3K4, a transcription-associated histone modification, is
involved in the DNA damage response. PLoS Genet 2010;
316
:e1001082.
44. Bird AW, Yu DY, Pray-Grant MG, Qiu Q, Harmon KE, Megee PC, et al. Acetylation of histone
H4 by Esa1 is required for DNA double-strand break repair. Nature 2002;
6
:411-5.
45. Shim EY, Ma JL, Oum JH, Yanez Y, Lee SE. The yeast chromatin remodeler RSC complex
facilitates end joining repair of DNA double-strand breaks. Mol Cell Biol 2005;
419
:3934-44.
46. Shim EY, Hong SJ, Oum JH, Yanez Y, Zhang Y, Lee SE. RSC mobilizes nucleosomes to improve
accessibility of repair machinery to the damaged chromatin. Mol Cell Biol 2007;
25
:1602-13.
47. 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;
27
:2135-46.
48. Jazayeri A, McAinsh AD, Jackson SP. Saccharomyces cerevisiae Sin3p facilitates double-strand
break repair. Proc Natl Acad Sci U S A 2004;
30
:1644-9.
49. Cheung WL, Turner FB, Krishnamoorthy T, Wolner B, Ahn SH, Foley M, et al. Phosphory-
lation of histone H4 serine 1 during DNA damage requires casein kinase II in S. cerevisiae .
Curr Biol 2005;
101
:656-60.
50. Utley RT, Lacoste N, Jobin-Robitaille O, Allard S, Cote J. Regulation of NuA4 histone
acetyltransferase activity in transcription and DNA repair by phosphorylation of histone H4.
Mol Cell Biol 2005;
15
:8179-90.
51. Ataian Y, Krebs JE. Five repair pathways in one context: chromatin modification during DNA
repair. Biochem Cell Biol 2006;
25
:490-504.
52. Park EJ, Chan DW, Park JH, Oettinger MA, Kwon J. DNA-PK is activated by nucleosomes and
phosphorylated H2AX within the nucelosomes in an acetylation-dependent manner. Nucleic
Acids Res 2003;
84
:6819-27.
53. Li A, Yu Y, Lee SC, Ishibashi T, Lees-Miller SP, Ausio J. Phosphorylation of hisotne H2A.X by
DNA-dependent protein kinase is not affected by core histone acetylation but it alters nucle-
osome stability and histone H1 binding. J Biol Chem 2010;
31
:17778-88.
54. Yan Q, Dutt S, Xu R, Graves K, Juszczynski P, Manis JP, et al. BBAP monoubiquitylates histone
H4 at
285
lysine 91 and selectively modulates
the DNA damage response. Mol Cell
:110-20.
55. Sugasawa K, Ng JM, Masutani C, Iwai S, van der Spek PJ, Eker AP, et al. Xeroderma
pigmentosum group C protein complex is the initiator of global genome nucleotide excision
repair. Mol Cell 1998;
2009;
36
:223-32.
56. van Gool AJ, Citterio E, Rademakers S, van Os R, Vermeulen W, Constantinou A, et al. The
Cockayne syndrome B protein, involved in transcription-coupled DNA repair, resides in an
RNA polymerase II-containing complex. EMBO J 1997;
2
:5955-65.
57. Dresler SL. Stimulation of deoxyribonucleic acid excision repair in human fibroblasts pre-
treated with sodium butyrate. Biochemistry 1985;
16
:6861-9.
58. Ramanathan B, Smerdon MJ. Enhanced DNA repair synthesis in hyperacetylated nucleo-
somes. J Biol Chem 1989;
24
:11026-34.
59. Smerdon MJ, Lan SY, Calza RE, Reeves R. Sodium butyrate stimulates DNA repair in
UV-irradiated normal and xeroderma pigmentosum human fibroblasts.
264
J Biol Chem
1982;
:13441-7.
257
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