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首页> 外文期刊>Applied Microbiology and Biotechnology >Increase of organic solvent tolerance of Escherichia coli by the deletion of two regulator genes, fadR and marR
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Increase of organic solvent tolerance of Escherichia coli by the deletion of two regulator genes, fadR and marR

机译:通过删除两个调节基因fadR和marR提高大肠杆菌的有机溶剂耐受性

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The improvement of bacterial tolerance to organic solvents is a main prerequisite for the microbial production of biofuels which are toxic to cells. For targeted genetic engineering of Escherichia coli to increase organic solvent tolerances (OSTs), we selected and investigated a total of 12 genes that participate in relevant mechanisms to tolerance. In a spot assay of 12 knockout mutants with n-hexane and cyclohexane, the genes fadR and marR were finally selected as the two key genes for engineering. Fatty acid degradation regulon (FadR) regulates the biosynthesis and degradation of fatty acids coordinately, and the multiple antibiotic resistance repressor (MarR) is the repressor of the global regulator MarA for multidrug resistance. In the competitive growth assay, the ΔmarR mutant became dominant when the pooled culture of 11 knockout mutants was cultivated successively in the presence of organic solvent. The increased OSTs in the ΔmarR and ΔfadR mutants were confirmed by a growth experiment and a viability test. The even more highly enhanced OSTs in the ΔfadR ΔmarR double mutant were shown compared with the two single mutants. Cellular fatty acid analysis showed that the high ratio of saturated fatty acids to unsaturated fatty acids plays a crucial role in OSTs. Furthermore, the intracellular accumulation of OST strains was significantly decreased compared with the wild-type strain.
机译:细菌对有机溶剂的耐受性的提高是微生物生产对细胞有毒的生物燃料的主要前提。为了进行针对性的大肠杆菌基因工程改造,以提高有机溶剂耐受性(OSTs),我们选择并研究了12种参与耐受性相关机制的基因。在用正己烷和环己烷对12个敲除突变体进行的现场分析中,最终选择了fadR和marR基因作为工程化的两个关键基因。脂肪酸降解调节剂(FadR)协调地调节脂肪酸的生物合成和降解,而多重抗生素抗性阻遏物(MarR)是全局调节剂MarA对多药耐药性的阻遏物。在竞争性生长测定中,当在有机溶剂存在下连续培养11个敲除突变体的合并培养物时,ΔmarR突变体成为优势。通过生长实验和生存力测试证实了ΔmarR和ΔfadR突变体中OST的增加。与两个单突变体相比,在ΔfadRΔmarR双突变体中显示了更高的OST。细胞脂肪酸分析表明,饱和脂肪酸与不饱和脂肪酸的高比例在OST中起着至关重要的作用。此外,与野生型菌株相比,OST菌株的细胞内积累显着降低。

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