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44. Caldecott KW. Mammalian single-strand break repair: mechanisms and links with chromatin.
DNA Repair (Amst) 2007;
:443-53.
45. Guzder SN, Torres-Ramos C, Johnson RE, Haracska L, Prakash L, Prakash S. Requirement of
yeast Rad1-Rad10 nuclease for the removal of 3 0 -blocked termini from DNA strand breaks
induced by reactive oxygen species. Genes Dev 2004;
6
:2283-91.
46. Masson M, Niedergang C, Schreiber V, Muller S, Menissier-de Murcia J, de Murcia G.
XRCC1 is specifically associated with poly(ADP-ribose) polymerase and negatively regulates
its activity following DNA damage. Mol Cell Biol 1998;
18
:3563-71.
47. Lan L, Nakajima S, Oohata Y, Takao M, Okano S, Masutani M, et al. In situ analysis of repair
processes for oxidative DNA damage in mammalian cells. Proc Natl Acad Sci USA 2004;
18
:
101
13738-43.
48. Hassa PO, Hottiger MO. The diverse biological roles of mammalian PARPS, a small but
powerful family of poly-ADP-ribose polymerases. Front Biosci 2008;
:3046-82.
49. Krishnakumar R, Kraus WL. The PARP side of the nucleus: molecular actions, physiological
outcomes, and clinical targets. Mol Cell 2010;
13
:8-24.
50. Boehler C, Gauthier LR, Mortusewicz O, Biard DS, Saliou JM, Bresson A, et al. Poly(ADP-
ribose) polymerase 3 (PARP3), a newcomer in cellular response to DNA damage and mitotic
progression. Proc Natl Acad Sci USA 2011;
39
:2783-8.
51. Fisher AE, Hochegger H, Takeda S, Caldecott KW. Poly(ADP-ribose) polymerase 1 acceler-
ates single-strand break repair in concert with poly(ADP-ribose) glycohydrolase. Mol Cell Biol
2007;
108
:5597-605.
52. Rouleau M, Patel A, Hendzel MJ, Kaufmann SH, Poirier GG. PARP inhibition: PARP1 and
beyond. Nat Rev Cancer 2010;
27
:293-301.
53. Schreiber V, Dantzer F, Ame JC, de Murcia G. Poly(ADP-ribose): novel functions for an old
molecule. Nat Rev Mol Cell Biol 2006;
10
:517-28.
54. Rulten SL, Fisher AE, Robert I, Zuma MC, Rouleau M, Ju L, et al. PARP-3 and APLF
function together to accelerate nonhomologous end-joining. Mol Cell 2011;
7
:33-45.
55. Akbari M, Visnes T, Krokan HE, Otterlei M. Mitochondrial base excision repair of uracil and
AP sites takes place by single-nucleotide insertion and long-patch DNA synthesis. DNA
Repair (Amst) 2008;
41
:605-16.
56. Bohr VA. Repair of oxidative DNA damage in nuclear and mitochondrial DNA, and some
changes with aging in mammalian cells. Free Radic Biol Med 2002;
7
:804-12.
57. Szczesny B, Tann AW, Longley MJ, Copeland WC, Mitra S. Long patch base excision repair in
mammalian mitochondrial genomes. J Biol Chem 2008;
32
:26349-56.
58. Hashiguchi K, Stuart JA, de Souza-Pinto NC, Bohr VA. The C-terminal alphaO helix of
human Ogg1 is essential for 8-oxoguanine DNA glycosylase activity: the mitochondrial beta-
Ogg1 lacks this domain and does not have glycosylase activity. Nucleic Acids Res
2004;
283
:5596-608.
59. Hu J, de Souza-Pinto NC, Haraguchi K, Hogue BA, Jaruga P, Greenberg MM, et al. Repair of
formamidopyrimidines in DNA involves different glycosylases: role of the OGG1, NTH1, and
NEIL1 enzymes. J Biol Chem 2005;
32
:40544-51.
60. Karahalil B, de Souza-Pinto NC, Parsons JL, Elder RH, Bohr VA. Compromised incision of
oxidized pyrimidines in liver mitochondria of mice deficient in NTH1 and OGG1 glycosylases.
J Biol Chem 2003;
280
:33701-7.
61. Chattopadhyay R, Wiederhold L, Szczesny B, Boldogh I, Hazra TK, Izumi T, et al. Identifi-
cation and characterization of mitochondrial abasic (AP)-endonuclease in mammalian cells.
Nucleic Acids Res 2006;
278
:2067-76.
62. Das BB, Dexheimer TS, Maddali K, Pommier Y. Role of tyrosyl-DNA phosphodiesterase
(TDP1) in mitochondria. Proc Natl Acad Sci USA 2010;
34
:19790-5.
107
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