体细胞突变
突变
氧化应激
活性氧
化学
DNA损伤
基因
聚合酶
拉伤
生物
DNA
表型
生物化学
DNA修复
遗传学
DNA聚合酶
细胞生物学
点突变
发起人
突变
脂肪酸
分子生物学
突变率
氧化磷酸化
膜完整性
膜
氧毒性
聚合酶链反应
西格玛因子
作者
M. Zhang,Yu Chen,Jiaxiang Zhang,Lixia Fang,Yingxiu Cao
标识
DOI:10.1021/acssynbio.5c00507
摘要
Medium-chain fatty acids (MCFAs) are valuable biochemicals, yet their inherent toxicity limits microbial productivity. Here, we developed a tunable hypermutation system in Escherichia coli by modulating translesion synthesis (TLS) pathways to accelerate adaptive laboratory evolution (ALE) for enhanced octanoic acid (C8) tolerance. Overexpression of dinB, encoding error-prone DNA polymerase IV, under T7 and BAD promoters yielded mutation rates 28.4-fold and 397-fold higher than the wild-type strain. ALE using these hypermutator strains yielded a robust variant capable of tolerating 50 mM C8. Whole-genome resequencing and reverse validation identified mutations related to membrane integrity and oxidative stress responses. Phenotypic analysis showed improved membrane integrity, reduced hydrophobicity, and lower reactive oxygen species (ROS) levels in the evolved strain under C8 stress. This study presents a hypermutation-assisted ALE strategy for improving microbial stress tolerance.
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