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线粒体对尿嘧啶和脱嘌呤嘧啶位点的碱基切除修复通过单核苷酸插入和长片段DNA合成进行。

Mitochondrial base excision repair of uracil and AP sites takes place by single-nucleotide insertion and long-patch DNA synthesis.

作者信息

Akbari Mansour, Visnes Torkild, Krokan Hans E, Otterlei Marit

机构信息

Department of Cancer Research and Molecular Medicine, Faculty of Medicine, Norwegian University of Science and Technology, N-7006 Trondheim, Norway.

出版信息

DNA Repair (Amst). 2008 Apr 2;7(4):605-16. doi: 10.1016/j.dnarep.2008.01.002. Epub 2008 Mar 4.

Abstract

Base excision repair (BER) corrects a variety of small base lesions in DNA. The UNG gene encodes both the nuclear (UNG2) and the mitochondrial (UNG1) forms of the human uracil-DNA glycosylase (UDG). We prepared mitochondrial extracts free of nuclear BER proteins from human cell lines. Using these extracts we show that UNG is the only detectable UDG in mitochondria, and mitochondrial BER (mtBER) of uracil and AP sites occur by both single-nucleotide insertion and long-patch repair DNA synthesis. Importantly, extracts of mitochondria carry out repair of modified AP sites which in nuclei occurs through long-patch BER. Such lesions may be rather prevalent in mitochondrial DNA because of its proximity to the electron transport chain, the primary site of production of reactive oxygen species. Furthermore, mitochondrial extracts remove 5' protruding flaps from DNA which can be formed during long-patch BER, by a "flap endonuclease like" activity, although flap endonuclease (FEN1) is not present in mitochondria. In conclusion, combined short- and long-patch BER activities enable mitochondria to repair a broader range of lesions in mtDNA than previously known.

摘要

碱基切除修复(BER)可纠正DNA中的多种小碱基损伤。UNG基因编码人类尿嘧啶-DNA糖基化酶(UDG)的核形式(UNG2)和线粒体形式(UNG1)。我们从人类细胞系中制备了不含核BER蛋白的线粒体提取物。利用这些提取物,我们发现UNG是线粒体中唯一可检测到的UDG,尿嘧啶和AP位点的线粒体BER(mtBER)通过单核苷酸插入和长片段修复DNA合成发生。重要的是,线粒体提取物可对修饰的AP位点进行修复,而在细胞核中这种修复是通过长片段BER进行的。由于线粒体DNA靠近电子传递链(活性氧产生的主要部位),此类损伤在线粒体DNA中可能相当普遍。此外,线粒体提取物通过一种“类似 flap 内切核酸酶”的活性从DNA中去除在长片段BER过程中可能形成的5'突出端,尽管线粒体中不存在 flap 内切核酸酶(FEN1)。总之,短片段和长片段BER的联合活性使线粒体能够修复比以前所知范围更广的线粒体DNA损伤。

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