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HhaI和HpaII DNA甲基转移酶结合DNA错配,使尿嘧啶甲基化并阻断DNA修复。

HhaI and HpaII DNA methyltransferases bind DNA mismatches, methylate uracil and block DNA repair.

作者信息

Yang A S, Shen J C, Zingg J M, Mi S, Jones P A

机构信息

Department of Biochemistry and Molecular Biology, Kenneth Norris Jr Comprehensive Cancer Center, University of Southern California School of Medicine, Los Angeles 90033, USA.

出版信息

Nucleic Acids Res. 1995 Apr 25;23(8):1380-7. doi: 10.1093/nar/23.8.1380.

Abstract

The hydrolytic deamination of 5-methylcytosine (5-mC) to thymine (T) is believed to be responsible for the high mutability of the CpG dinucleotide in DNA. We have shown a possible alternate mechanism for mutagenesis at CpG in which HpaII DNA-(cytosine-5) methyltransferase (M.HpaII) can enzymatically deaminate cytosine (C) to uracil (U) in DNA [Shen, J.-C., Rideout, W.M., III and Jones, P.A., Cell, 71, 1073-1080, (1992)]. Both the hydrolytic deamination of 5-mC and enzymatic deamination of C create premutagenic DNA mismatches (G:U and G:T) with the guanine (G) originally paired to the normal C. Surprisingly, we found that DNA-(cytosine-5) methyltransferases have higher affinities for these DNA mismatches than for their normal G:C targets and are capable of transferring a methyl group to the 5-position of U, creating T at low efficiencies. This binding by methyltransferase to mismatches at the recognition site prevented repair of G:U mismatches by uracil DNA glycosylase in vitro.

摘要

5-甲基胞嘧啶(5-mC)水解脱氨生成胸腺嘧啶(T)被认为是导致DNA中CpG二核苷酸高突变率的原因。我们已经展示了一种在CpG处发生诱变的可能替代机制,即HpaII DNA-(胞嘧啶-5)甲基转移酶(M.HpaII)可将DNA中的胞嘧啶(C)酶促脱氨生成尿嘧啶(U)[沈,J.-C.,里德奥特,W.M.,III和琼斯,P.A.,《细胞》,71卷,1073 - 1080页,(1992年)]。5-mC的水解脱氨和C的酶促脱氨都会与原本与正常C配对的鸟嘌呤(G)产生前诱变DNA错配(G:U和G:T)。令人惊讶的是,我们发现DNA-(胞嘧啶-5)甲基转移酶对这些DNA错配的亲和力高于对其正常G:C靶点的亲和力,并且能够将甲基基团转移到U的5位,低效地生成T。甲基转移酶与识别位点处错配的这种结合在体外阻止了尿嘧啶DNA糖基化酶对G:U错配的修复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed94/306865/766ac7e2e06c/nar00008-0113-a.jpg

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