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DNA N-glycosylase deficient mice: a tale of redundancy.

机译:DNA N-糖基化酶缺乏症小鼠:冗余的故事。

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摘要

The generation of mouse models of base excision repair deficiency has resulted in a re-examination of the cellular defence mechanisms that exist to counteract oxidative base damage. Contrary to exhibiting various detrimental effects of the gene disruption, the different strains of DNA-N-glycosylase deficient mice have proved to be remarkably resilient to the loss of the major activities that catalyse the removal of oxidised bases from DNA. Indeed, with a few exceptions, there is little evidence for the accumulation of oxidised bases in tissues and organs of the glycosylase knockout mice, even in older animals. This is highly suggestive of hitherto unknown backup mechanisms for dealing with the removal of oxidative base damage from genomic DNA. Results from both a genomics-based approach and biochemical analyses of cell free extracts from DNA glycosylase knockout mice have indicated that this is so and there is increasing evidence of several novel DNA glycosylase/AP lyases in mammalian cells that are capable of acting on oxidised bases in vitro. This, in parallel with other repair mechanisms involving mismatch repair, the Cockayne syndrome B protein and the efficient and accurate bypass of replication blocking lesions by a battery of translesion DNA polymerases, may explain the lack of severe phenotype observed for the DNA glycosylase deficient mice discussed in this article.
机译:碱基切除修复缺陷小鼠模型的产生导致对存在的抵抗氧化碱基损伤的细胞防御机制的重新检查。与表现出基因破坏的各种有害作用相反,DNA-N-糖基化酶缺陷小鼠的不同品系被证明对催化从DNA中去除氧化碱基的主要活性的丧失具有显着的抵抗力。确实,除了少数例外,几乎没有证据表明糖基化酶基因敲除小鼠的组织和器官中甚至在老年动物中氧化碱基的积累。这强烈暗示了迄今未知的用于从基因组DNA中去除氧化性碱基损伤的备用机制。基于基因组学的方法和对DNA糖基化酶敲除小鼠的无细胞提取物进行生化分析的结果均表明,情况确实如此,并且越来越多的证据表明哺乳动物细胞中有几种新型的DNA糖基化酶/ AP裂解酶能够作用于氧化碱基体外。这与其他涉及错配修复的修复机制,Cockayne综合征B蛋白以及通过一系列跨病变DNA聚合酶有效而准确地绕过复制阻滞性病变的机制相结合,可以解释所讨论的DNA糖基化酶缺陷型小鼠缺乏严重的表型。在这篇文章中。

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