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利用适应性实验室进化和组学技术提高大肠杆菌对异丙醇的耐受性。

Improvement of isopropanol tolerance of Escherichia coli using adaptive laboratory evolution and omics technologies.

机构信息

Quantitative Biology Center, RIKEN, 6-2-3 Furuedai, Suita, Osaka 565-0874, Japan.

Quantitative Biology Center, RIKEN, 6-2-3 Furuedai, Suita, Osaka 565-0874, Japan.

出版信息

J Biotechnol. 2017 Aug 10;255:47-56. doi: 10.1016/j.jbiotec.2017.06.408. Epub 2017 Jun 20.

Abstract

Isopropanol (IPA) is the secondary alcohol that can be dehydrated to yield propylene. To produce IPA using microorganisms, a significant issue is that the toxicity of IPA causes retardation or inhibition of cell growth, decreasing the yield. One possible strategy to overcome this problem is to improve IPA tolerance of production organisms. For the understanding of tolerance to IPA, we performed parallel adaptive laboratory evolution (ALE) of Escherichia coli under IPA stress. To identify the genotypic change during ALE, we performed genome re-sequencing analyses of obtained tolerant strains. To verify which mutations were contributed to IPA tolerance, we constructed the mutant strains and quantify the IPA tolerance of the constructed mutants. From these analyses, we found that five mutations (relA, marC, proQ, yfgO, and rraA) provided the increase of IPA tolerance. To understand the phenotypic change during ALE, we performed transcriptome analysis of tolerant strains. From transcriptome analysis, we found that expression levels of genes related to biosynthetic pathways of amino acids, iron ion homeostasis, and energy metabolisms were changed in the tolerant strains. Results from these experiments provide fundamental bases for designing IPA tolerant strains for industrial purposes.

摘要

异丙醇(IPA)是一种仲醇,可以脱水生成丙烯。利用微生物生产 IPA 的一个主要问题是 IPA 的毒性会导致细胞生长迟缓或抑制,从而降低产量。克服这个问题的一种可能策略是提高生产生物对 IPA 的耐受性。为了了解对 IPA 的耐受性,我们在 IPA 胁迫下对大肠杆菌进行了平行适应性实验室进化(ALE)。为了鉴定 ALE 过程中的基因型变化,我们对获得的耐受菌株进行了基因组重测序分析。为了验证哪些突变有助于 IPA 耐受性,我们构建了突变菌株,并定量了构建突变菌株的 IPA 耐受性。通过这些分析,我们发现五个突变(relA、marC、proQ、yfgO 和 rraA)提高了 IPA 耐受性。为了了解 ALE 过程中的表型变化,我们对耐受菌株进行了转录组分析。通过转录组分析,我们发现与氨基酸生物合成途径、铁离子稳态和能量代谢相关的基因的表达水平在耐受菌株中发生了变化。这些实验的结果为设计用于工业用途的 IPA 耐受菌株提供了基础。

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