白链霉菌适应进化与逆向工程探索其耐低pH机制。

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yuxi Liu, Tianyi Liu, Yulin Zhang, Liang Wang, Hongjian Zhang, Jianhua Zhang, Xusheng Chen
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引用次数: 0

摘要

白链霉菌是众所周知的生产ε-聚l-赖氨酸(ε-PL)的细胞工厂,但其有效生产能力需要pH约为4.0的环境。不幸的是,长时间暴露在低pH环境中会损害白球藻的细胞完整性,导致ε-PL生物合成效率下降。为了提高白曲霉的低pH耐受性,研究其低pH耐受性机制,我们采用自适应实验室进化(ALE)技术,通过逐步降低环境pH,对白曲霉GS114菌株进行了进化,最终获得了突变菌株ALE3.6,该菌株在pH 3.6下的低pH耐受性显著提高,ε-PL产量比亲本菌株GS114提高了37.9%。对突变菌株ALE3.6的生理评价表明,在低pH条件下,其细胞膜和细胞壁的完整性明显增强。为了确定与低pH耐受性相关的关键基因,我们采用了全基因组重测序和实时定量PCR,确定了desA、gad和mamU是关键基因。我们通过逆向工程进一步验证了这些基因的作用,它们提高了低pH耐受性和ε-PL的生产效率。最后,我们阐明了白葡萄细胞膜和细胞壁在低pH胁迫下的响应机制。这项研究提高了对链霉菌低pH耐受性的认识,特别是在具有挑战性的环境条件下生产有价值的生化产品。在本研究中,我们通过分阶段的适应性实验室进化提高了白链霉菌在低pH条件下的生存能力和ε-聚赖氨酸的生产效率,同时简化了之前研究的补料分批发酵策略。我们利用全基因组重测序和逆向工程技术鉴定了与突变菌株细胞膜和细胞壁表型相关的关键基因。随后,我们验证了白球藻在低pH条件下细胞膜和细胞壁的反应机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive evolution and reverse engineering to explore the low pH tolerance mechanisms of Streptomyces albulus.

Streptomyces albulus is well-known as a cell factory for producing ε-poly-L-lysine (ε-PL), but its ability to produce effectively requires an environment with a pH of about 4.0. Unfortunately, prolonged exposure to low pH environment compromises the cellular integrity of S. albulus, leading to a decrease in the efficiency of ε-PL biosynthesis. To enhance the low pH tolerance of S. albulus and investigate its low pH tolerance mechanisms, we employed adaptive laboratory evolution (ALE) technology to evolve the S. albulus GS114 strain by progressively lowering the environmental pH. This process ultimately yielded the mutant strain ALE3.6, which exhibited significantly improved low pH tolerance at pH 3.6 and achieved a 37.9% increase in ε-PL production compared to the parental GS114 strain under the optimal fermentation condition. The physiological evaluation of the mutant strain ALE3.6 indicated a pronounced enhancement in the integrity of its cell membrane and cell wall under low pH conditions. To identify the key genes involved in low pH tolerance, we employed whole-genome resequencing and quantitative real-time PCR, which pinpointed desA, gatD, and mamU as critical contributors. We further validated the roles of these genes through reverse engineering, which improved both low pH tolerance and ε-PL production efficiency. Finally, we elucidated the response mechanisms of the S. albulus cell membrane and cell wall under low pH stress. This study enhances the understanding of low pH tolerance in the Streptomyces species, particularly regarding the production of valuable biochemical products under challenging environmental conditions.IMPORTANCEIn this study, we improved the viability and ε-poly-L-lysine production efficiency of Streptomyces albulus at low pH by staged adaptive laboratory evolution while simplifying the previously studied fed-batch fermentation strategy. We identified key genes associated with the mutant strains' cell membrane and cell wall phenotypes by utilizing whole-genome resequencing and reverse engineering. Subsequently, we validated the cell membrane and cell wall response mechanisms in S. albulus under low pH conditions.

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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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