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42. You HJ, Swanson RL, Harrington C, Corbett AH, Jinks-Robertson S, Senturker S, et al.
Saccharomyces cerevisiae Ntg1p and Ntg2p: broad specificity N-glycosylases for the repair of
oxidative DNA damage in the nucleus and mitochondria. Biochemistry 1999;
:11298-306.
43. Dherin C, Gueneau E, Francin M, Nunez M, Miron S, Liberti SE, et al. Characterization of a
highly conserved binding site of Mlh1 required for exonuclease I-dependent mismatch repair.
Mol Cell Biol 2009;
38
29
:907-18.
44. Gellon L, Werner M, Boiteux S. Ntg2p, a Saccharomyces cerevisiae DNA N-glycosylase/
apurinic or apyrimidinic lyase involved in base excision repair of oxidative DNA damage,
interacts with the DNA mismatch repair protein Mlh1p. Identification of a Mlh1p binding
motif. J Biol Chem 2002;
:29963-72.
45. Marenstein DR, Chan MK, Altamirano A, Basu AK, Boorstein RJ, Cunningham RP, et al.
Substrate specificity of human endonuclease III (hNTH1). Effect of human APE1 on hNTH1
activity. J Biol Chem 2003;
277
:9005-12.
46. Bessho T. Nucleotide excision repair 3 0 endonuclease XPG stimulates the activity of base
excision repairenzyme thymine glycol DNA glycosylase. Nucleic Acids Res 1999;
278
:979-83.
47. Klungland A, Hoss M, Gunz D, Constantinou A, Clarkson SG, Doetsch PW, et al. Base
excision repair of oxidative DNA damage activated by XPG protein. Mol Cell 1999;
27
:33-42.
48. Marenstein DR, Ocampo MT, Chan MK, Altamirano A, Basu AK, Boorstein RJ, et al. Stimu-
lation of human endonuclease III by Y box-binding protein 1 (DNA-binding protein B).
Interaction between a base excision repair enzyme and a transcription factor. JBiolChem
2001;
3
:21242-9.
49. Luna L, Bjoras M, Hoff E, Rognes T, Seeberg E. Cell-cycle regulation, intracellular sorting
and induced overexpression of the human NTH1 DNA glycosylase involved in removal of
formamidopyrimidine residues from DNA. Mutat Res 2000;
276
:95-104.
50. Ikeda S, Kohmoto T, Tabata R, Seki Y. Differential intracellular localization of the human and
mouse endonuclease III homologs and analysis of the sorting signals. DNA Repair (Amst)
2002;
460
:847-54.
51. Takao M, Aburatani H, Kobayashi K, Yasui A. Mitochondrial targeting of human DNA
glycosylases for repair of oxidative DNA damage. Nucleic Acids Res 1998;
1
:2917-22.
52. Hegde ML, Theriot CA, Das A, Hegde PM, Guo Z, Gary RK, et al. Physical and functional
interaction between human oxidized base-specific DNA glycosylase NEIL1 and flap endo-
nuclease 1. J Biol Chem 2008;
26
:27028-37.
53. Wiederhold L, Leppard JB, Kedar P, Karimi-Busheri F, Rasouli-Nia A, Weinfeld M, et al. AP
endonuclease-independent DNA base excision repair
283
in human cells. Mol Cell
:209-20.
54. Hazra TK, Izumi T, Boldogh I, Imhoff B, Kow YW, Jaruga P, et al. Identification and
characterization of a human DNA glycosylase for repair of modified bases in oxidatively
damaged DNA. Proc Natl Acad Sci USA 2002;
2004;
15
:3523-8.
55. 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;
99
:40544-51.
56. Bhakat KK, Hazra TK, Mitra S. Acetylation of the human DNA glycosylase NEIL2 and
inhibition of its activity. Nucleic Acids Res 2004;
280
:3033-9.
57. Hazra TK, Kow YW, Hatahet Z, Imhoff B, Boldogh I, Mokkapati SK, et al. Identification and
characterization of a novel human DNA glycosylase for repair of cytosine-derived lesions.
J Biol Chem 2002;
32
:30417-20.
58. Morland I, Rolseth V, Luna L, Rognes T, Bjoras M, Seeberg E. Human DNA glycosylases of
the bacterial Fpg/MutM superfamily: an alternative pathway for the repair of 8-oxoguanine
and other oxidation products in DNA. Nucleic Acids Res 2002;
277
30
:4926-36.
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