首页> 外文OA文献 >A mutant endonuclease IV of Escherichia coli loses the ability to repair lethal DNA damage induced by hydrogen peroxide but not that induced by methyl methanesulfonate.
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A mutant endonuclease IV of Escherichia coli loses the ability to repair lethal DNA damage induced by hydrogen peroxide but not that induced by methyl methanesulfonate.

机译:大肠杆菌的突变型核酸内切酶IV丧失了修复过氧化氢诱导的致死性DNA损伤的能力,但没有修复甲磺酸甲酯引起的致死性DNA损伤的能力。

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摘要

A mutant allele of the Escherichia coli nfo gene encoding endonuclease IV, nfo-186, was cloned into plasmid pUC18. When introduced into an E. coli xthA nfo mutant, the gene product of nfo-186 complemented the hypersensitivity of the mutant to methyl methanesulfonate (MMS) but not to hydrogen peroxide (H2O2) and bleomycin. These results suggest that the mutant endonuclease IV has normal activity for repairing DNA damages induced by MMS but not those induced by H2O2 and bleomycin. A missense mutation in the cloned nfo-186 gene, in which the wild-type glycine 149 was replaced by aspartic acid, was detected by DNA sequencing. The wild-type and mutant endonuclease IV were purified to near homogeneity, and their apurinic (AP) endonuclease and 3'-phosphatase activities were determined. No difference was observed in the AP endonuclease activities of the wild-type and mutant proteins. However, 3'-phosphatase activity was dramatically reduced in the mutant protein. From these results, it is concluded that the endonuclease IV186 protein is specifically deficient in the ability to remove 3'-terminus-blocking damage, which is required for DNA repair synthesis, and it is possible that the lethal DNA damage by H2O2 is 3'-blocking damage and not AP-site damage.
机译:将编码内切核酸酶IV的大肠杆菌nfo基因的突变等位基因nfo-186克隆到质粒pUC18中。当将其引入大肠杆菌xthA nfo突变体时,nfo-186的基因产物补充了该突变体对甲磺酸甲酯(MMS)的超敏性,但对过氧化氢(H2O2)和博来霉素不敏感。这些结果表明,突变型核酸内切酶IV具有修复MMS诱导的DNA损伤的正常活性,但不能修复H2O2和博来霉素诱导的DNA损伤。通过DNA测序检测到克隆的nfo-186基因的错义突变,其中野生型甘氨酸149被天冬氨酸替代。将野生型和突变型核酸内切酶IV纯化至接近均一,并测定其嘌呤(AP)核酸内切酶和3'-磷酸酶活性。在野生型和突变型蛋白的AP核酸内切酶活性中未观察到差异。但是,突变蛋白中的3'-磷酸酶活性显着降低。从这些结果可以得出结论,核酸内切酶IV186蛋白在清除3'-末端阻断性损伤的能力方面特别缺乏,这是DNA修复合成所必需的,并且H2O2致死的DNA损伤可能是3'。阻止伤害而不是AP站点伤害。

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