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Methyl-directed mismatch repair is bidirectional

Overview of attention for article published in Journal of Biological Chemistry, June 1993
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Article details
Title
Methyl-directed mismatch repair is bidirectional
Published in
Journal of Biological Chemistry, June 1993
DOI 10.1016/s0021-9258(19)50274-5
Pubmed ID
Authors

D.L. Cooper, R.S. Lahue, P. Modrich

Abstract

Methyl-directed mismatch repair is initiated by the mismatch-provoked, MutHLS-dependent cleavage of the unmodified strand at a hemimethylated d(GATC) sequence. This reaction is independent of the polarity of the unmodified strand and can occur either 3' or 5' to the mismatch on the unmethylated strand (Au, K. G., Welsh, K., and Modrich, P. (1992) J. Biol. Chem. 267, 12142-12148). The overall repair reaction also occurs without regard to polarity of the unmethylated strand. Both hemimethylated configurations of a linear heteroduplex containing a single d(GATC) sequence are subject to methyl-directed correction in Escherichia coli extracts and in a purified repair system. Repair of both heteroduplex orientations requires MutH, MutL, MutS, DNA helicase II, SSB, and DNA polymerase III holoenzyme, but the two substrates differ with respect to exonuclease requirements for correction. When the unmethylated d(GATC) sequence that directs repair is located 5' to the mismatch on the unmodified strand, mismatch correction requires the 5'--> 3' hydrolytic activity of exonuclease VII or RecJ exonuclease. Repair directed by an unmodified d(GATC) sequence situated 3' to the mismatch depends on the 3'--> 5' activity of exonuclease I. Specific requirements for these activities are evident with circular heteroduplexes containing a single asymmetrically placed d(GATC) sequence, with the requirement for a 5'--> 3' or 3'--> 5' hydrolytic activity being determined by the orientation of the unmethylated strand along the shorter path joining the two sites in the DNA circle. This observation suggests that the methyl-directed repair system utilizes the proximal d(GATC) sequence to direct correction. To our knowledge, these experiments represent the first instance in which exonuclease I, exonuclease VII, and RecJ have been implicated in a particular DNA metabolic pathway.

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Mendeley demographics

Mendeley demographics

The data shown below were compiled from readership statistics for 84 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Geographical breakdown
Country Count As %
Unknown 84 100%

Demographic breakdown

Readers by professional status
Readers by professional status Count As %
Student > Ph. D. Student 25 30%
Student > Bachelor 11 13%
Researcher 10 12%
Student > Doctoral Student 6 7%
Professor 6 7%
Other 15 18%
Unknown 11 13%
Readers by discipline
Readers by discipline Count As %
Agricultural and Biological Sciences 39 46%
Biochemistry, Genetics and Molecular Biology 20 24%
Chemistry 4 5%
Immunology and Microbiology 2 2%
Physics and Astronomy 2 2%
Other 5 6%
Unknown 12 14%