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首页> 外文期刊>Process Biochemistry >A temporal transcriptomic dynamics study reveals the reason of enhanced ε-poly-L-lysine production in Streptomyces albulus M-Z18 by pH shock
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A temporal transcriptomic dynamics study reveals the reason of enhanced ε-poly-L-lysine production in Streptomyces albulus M-Z18 by pH shock

机译:暂时的转录组动力学研究揭示了pH休克增加了链霉菌M-Z18中ε-聚-L-赖氨酸产生的原因

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摘要

epsilon-Poly-L-lysine (epsilon-PL), a natural food preservative, is mainly produced by Streptomyces in aerobic fermentation. Previously, we have significantly enhanced epsilon-PL production through a pH shock strategy. To understand the underlying reason between pH shock and high epsilon-PL production, RNA-seq technology was conducted in this study to investigate the temporal transcription at three time-points corresponding to early, mid-term and late stages of fermentation. Transcription of genes related to signal transduction, electron respiratory chain, membrane transport, nitrogen metabolism, energy metabolism and redox homeostasis were significantly up-regulated, accompanied by the increase of intracellular ATP, respiratory activity. The assay of intracellular reactive oxygen species and malonaldehyde showed that pH shock could enhance the antioxidant capacity and reduce oxidative damage of cells effectively. We deduced that signal transduction systems play a major role in responding to pH shock, and result in the enhancement of the metabolic vitality and intracellular redox homeostasis. The obtained information will facilitate future studies for epsilon-PL production improvement and lay a foundation for molecular mechanism investigation of pH shock.
机译:epsilon-Poly-L-赖氨酸(epsilon-PL)是一种天然食品防腐剂,主要由链霉菌在需氧发酵中生产。以前,我们通过pH休克策略大大提高了epsilon-PL的生产。为了了解pH冲击和ε-PL高产生之间的根本原因,在本研究中进行了RNA-seq技术研究在三个时间点的暂时转录,分别对应于发酵的早期,中期和后期。与信号转导,电子呼吸链,膜转运,氮代谢,能量代谢和氧化还原稳态有关的基因转录显着上调,伴随着细胞内ATP的增加,呼吸活性的增加。细胞内活性氧和丙二醛含量的测定表明,pH冲击可增强抗氧化能力,并有效降低细胞的氧化损伤。我们推断信号转导系统在响应pH休克中起主要作用,并导致代谢活力和细胞内氧化还原稳态的增强。获得的信息将有助于今后对ε-PL生产改进的研究,并为pH休克的分子机理研究奠定基础。

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