[DNA Double-Strand Break Repair System by a Mechanism of Non-Homologous End Joining Provides Resistance to DNA-Damaging and Oxidizing Stresses in the Yeast Debaryomyces hansenii].

Q3 Medicine
A I Cherdantsev, K A Kulagin, A N Polyakova, V L Karpov, A O Sosnovtseva, D S Karpov
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引用次数: 0

Abstract

The unconventional halotolerant yeast Debaryomyces hansenii is of great importance in biotechnology and the food industry, and in basic research it serves as a model for studying the molecular mechanisms of resistance to increased salinity and osmotic stress. We have previously established an efficient method for editing the D. hansenii genome using the CRISPR/Cas9 system. In turn, this has stimulated further investigation of the structure and physiological role of DNA double-strand break repair pathways in D. hansenii. The aim of the present work was to evaluate the involvement of key components of the DNA double-stranded break repair system by the non-homologous end joining (NHEJ) mechanism in the resistance of D. hansenii to DNA-damaging compounds and compounds that induce oxidative, high salinity, and osmotic stress. Using the CRISPR/Cas9 system, mutant strains with knockout of the DEHA2F10208g (DhKU70), DEHA2B01584g (DhKU80) , and DEHA2G04224g (DhLIG4) genes encoding key components of NHEJ were obtained. It was found that mutant strains, unlike the wild-type strain, are sensitive to chemical compounds that damage DNA, as well as to compounds that cause oxidative stress. Osmotic and high salinity stresses and vanillin do not cause significant changes in the rate of colony formation of mutant strains. Unexpectedly, mutant strains exhibit increased resistance to caffeine compared to the wild-type strain. The data indicate that the NHEJ systems of D. hansenii play a significant role in the response to DNA-damaging and oxidative types of stress. The importance of the NHEJ system in the processes of maintaining yeast cell homeostasis should be taken into account when creating strains producing valuable substances.

[通过非同源末端连接机制的DNA双链断裂修复系统提供了酵母对DNA损伤和氧化胁迫的抗性]。
非常规耐盐酵母在生物技术和食品工业中具有重要意义,在基础研究中,它是研究耐盐和抗渗透胁迫分子机制的模型。我们之前已经建立了一种使用CRISPR/Cas9系统编辑D. hansenii基因组的有效方法。反过来,这刺激了进一步研究DNA双链断裂修复途径的结构和生理作用。本研究的目的是评估DNA双链断裂修复系统的关键组分通过非同源末端连接(NHEJ)机制参与了D. hansenii对DNA损伤化合物和诱导氧化、高盐和渗透胁迫的化合物的抗性。利用CRISPR/Cas9系统,获得敲除编码NHEJ关键组分的DEHA2F10208g (DhKU70)、DEHA2B01584g (DhKU80)和DEHA2G04224g (DhLIG4)基因的突变株。研究发现,与野生型菌株不同,突变菌株对破坏DNA的化合物以及引起氧化应激的化合物敏感。渗透和高盐度胁迫和香兰素不会引起突变菌株菌落形成率的显著变化。出乎意料的是,与野生型菌株相比,突变菌株对咖啡因的抵抗力增强了。这些数据表明,NHEJ系统在对dna损伤和氧化型应激的反应中起重要作用。在创造产生有价值物质的菌株时,应考虑到NHEJ系统在维持酵母细胞稳态过程中的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molekulyarnaya Biologiya
Molekulyarnaya Biologiya Medicine-Medicine (all)
CiteScore
0.70
自引率
0.00%
发文量
131
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