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Mechanistic and Biological Considerations of Oxidatively Damaged DNA for Helicase-dependent Pathways of Nucleic Acid Metabolism

机译:机械和生物学考虑的氧化损伤DNA的核酸代谢的解旋酶依赖途径的氧化损伤的DNA。

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摘要

Cells are under constant assault from reactive oxygen species that occur endogenously or arise from environmental agents. An important consequence of such stress is the generation of oxidatively damaged DNA, which is represented by a wide range of non-helix distorting and helix-distorting bulkier lesions that potentially affect a number of pathways including replication and transcription; consequently DNA damage tolerance and repair pathways are elicited to help cells cope with the lesions. The cellular consequences and metabolism of oxidatively damaged DNA can be quite complex with a number of DNA metabolic proteins and pathways involved. Many of the responses to oxidative stress involve a specialized class of enzymes known as helicases, the topic of this review. Helicases are molecular motors that convert the energy of nucleoside triphosphate hydrolysis to unwinding of structured polynucleic acids. Helicases by their very nature play fundamentally important roles in DNA metabolism and are implicated in processes that suppress chromosomal instability, genetic disease, cancer, and aging. We will discuss the roles of helicases in response to nuclear and mitochondrial oxidative stress and how this important class of enzymes help cells cope with oxidatively generated DNA damage through their functions in the replication stress response, DNA repair, and transcriptional regulation.
机译:细胞不断受到来自内源性或环境因素产生的活性氧的攻击。这种压力的一个重要后果是产生了氧化损伤的DNA,其表现为多种非螺旋形扭曲和螺旋形扭曲的大面积病变,这些病变可能影响许多途径,包括复制和转录。因此,引发了DNA损伤耐受性和修复途径,以帮助细胞应对病变。氧化损伤的DNA的细胞后果和新陈代谢可能与许多涉及的DNA代谢蛋白和途径非常复杂。许多对氧化应激的反应涉及称为解旋酶的一类特殊酶,这是本综述的主题。解旋酶是将核苷三磷酸水解的能量转换为解开结构化多核酸的分子马达。从本质上讲,解旋酶在DNA代谢中起着至关重要的作用,并且与抑制染色体不稳定性,遗传疾病,癌症和衰老的过程有关。我们将讨论解旋酶在核和线粒体氧化应激反应中的作用,以及这一重要的酶类如何通过其在复制应激反应,DNA修复和转录调控中的功能帮助细胞应对氧化产生的DNA损伤。

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