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首页> 外文期刊>Applied Microbiology and Biotechnology >Improving furfural tolerance of Zymomonas mobilis by rewiring a sigma factor RpoD protein
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Improving furfural tolerance of Zymomonas mobilis by rewiring a sigma factor RpoD protein

机译:通过重新连接sigma因子RpoD蛋白来提高运动发酵单胞菌的糠醛耐受性

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摘要

Furfural from lignocellulosic hydrolysates is the key inhibitor for bio-ethanol fermentation. In this study, we report a strategy of improving the furfural tolerance in Zymomonas mobilis on the transcriptional level by engineering its global transcription sigma factor (sigma(70), RpoD) protein. Three furfural tolerance RpoD mutants (ZM4-MF1, ZM4-MF2, and ZM4-MF3) were identified from error-prone PCR libraries. The best furfural-tolerance strain ZM4-MF2 reached to the maximal cell density (OD600) about 2.0 after approximately 30 h, while control strain ZM4-rpoD reached its highest cell density of about 1.3 under the same conditions. ZM4-MF2 also consumed glucose faster and yield higher ethanol; expression levels and key Entner-Doudoroff (ED) pathway enzymatic activities were also compared to control strain under furfural stress condition. Our results suggest that global transcription machinery engineering could potentially be used to improve stress tolerance and ethanol production in Z. mobilis.
机译:木质纤维素水解产物的糠醛是生物乙醇发酵的关键抑制剂。在这项研究中,我们报告了一种通过工程化其整体转录sigma因子(sigma(70),RpoD)蛋白在运动水平上提高运动发酵单胞菌糠醛耐受性的策略。从容易出错的PCR文库中鉴定了三个糠醛耐受性RpoD突变体(ZM4-MF1,ZM4-MF2和ZM4-MF3)。最佳糠醛耐受性菌株ZM4-MF2在约30小时后达到最大细胞密度(OD600)约2.0,而对照菌株ZM4-rpoD在相同条件下达到其最高细胞密度约1.3。 ZM4-MF2还消耗更快的葡萄糖并产生更高的乙醇。表达水平和关键的Entner-Doudoroff(ED)途径的酶活性也与糠醛胁迫条件下的对照菌株进行了比较。我们的结果表明,全球转录机械工程可以潜在地用于提高运动发酵单胞菌的胁迫耐受性和乙醇产量。

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