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Items: 1 to 20 of 278

2.

Discrimination and versatility in mismatch repair.

Hays JB, Hoffman PD, Wang H.

DNA Repair (Amst). 2005 Dec 8;4(12):1463-74. Epub 2005 Oct 5.

PMID:
16213799
4.

Analysis of yeast MSH2-MSH6 suggests that the initiation of mismatch repair can be separated into discrete steps.

Bowers J, Tran PT, Liskay RM, Alani E.

J Mol Biol. 2000 Sep 15;302(2):327-38.

PMID:
10970737
6.

Signaling from DNA mispairs to mismatch-repair excision sites despite intervening blockades.

Wang H, Hays JB.

EMBO J. 2004 May 19;23(10):2126-33. Epub 2004 Apr 22.

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9.

DNA template requirements for human mismatch repair in vitro.

Iams K, Larson ED, Drummond JT.

J Biol Chem. 2002 Aug 23;277(34):30805-14. Epub 2002 Jun 19.

10.

Msh2 separation of function mutations confer defects in the initiation steps of mismatch repair.

Kijas AW, Studamire B, Alani E.

J Mol Biol. 2003 Aug 1;331(1):123-38.

PMID:
12875840
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13.

Human DNA mismatch repair: coupling of mismatch recognition to strand-specific excision.

Wang H, Hays JB.

Nucleic Acids Res. 2007;35(20):6727-39. Epub 2007 Oct 4.

14.

Cadmium inhibits the functions of eukaryotic MutS complexes.

Clark AB, Kunkel TA.

J Biol Chem. 2004 Dec 24;279(52):53903-6. Epub 2004 Oct 27.

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16.

Testing excision models for responses of mismatch-repair systems to UV photoproducts in DNA.

Wang H, Hoffman PD, Lawrence C, Hays JB.

Environ Mol Mutagen. 2006 May;47(4):296-306.

PMID:
16493608
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20.

MSH-MLH complexes formed at a DNA mismatch are disrupted by the PCNA sliding clamp.

Bowers J, Tran PT, Joshi A, Liskay RM, Alani E.

J Mol Biol. 2001 Mar 9;306(5):957-68.

PMID:
11237611
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