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Global Transcriptomic Analysis and Function Identification of Malolactic Enzyme Pathway of Lactobacillus paracasei L9 in Response to Bile Stress

机译:副干酪乳杆菌L9对胆汁胁迫的响应的全球转录组学分析和功能鉴定

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摘要

Tolerance to bile stress is crucial for Lactobacillus paracasei to survive in the intestinal tract and exert beneficial actions. In this work, global transcriptomic analysis revealed that 104 genes were significantly changed (log2FoldChange > 1.5, P < 0.05) in detected transcripts of L. paracasei L9 when exposed to 0.13% Ox-bile. The different expressed genes involved in various biological processes, including carbon source utilization, amino acids and peptide metabolism processes, transmembrane transport, transcription factors, and membrane proteins. It is noteworthy that gene mleS encoding malolactic enzyme (MLE) was 2.60-fold up-regulated. Meanwhile, L-malic acid was proved to enhance bile tolerance, which could be attributed to the intracellular alkalinization caused by MLE pathway. In addition, membrane vesicles were observed under bile stress, suggesting a disturbance in membrane charge without L-malic acid. Then, genetic and physiological experiments revealed that MLE pathway enhanced the bile tolerance by maintaining a membrane balance in L. paracasei L9, which will provide new insight into the molecular basis of MLE pathway involved in bile stress response in Lactic acid bacteria.
机译:耐受胆汁压力对于副干酪乳杆菌在肠道中存活并发挥有益作用至关重要。在这项工作中,整体转录组分析显示,当暴露于0.13%Ox-bile时,副干酪乳杆菌L9的检测到的转录物中有104个基因发生了显着变化(log2FoldChange> 1.5,P <0.05)。不同的表达基因参与各种生物过程,包括碳源利用,氨基酸和肽代谢过程,跨膜转运,转录因子和膜蛋白。值得注意的是,编码苹果乳酸酶(MLE)的基因mleS被上调了2.60倍。同时,L-苹果酸被证明可以增强胆汁耐受性,这可能是由于MLE途径引起的细胞内碱化作用。另外,在胆汁压力下观察到膜囊泡,表明在没有L-苹果酸的情况下膜电荷受到干扰。然后,遗传和生理学实验表明,MLE途径通过维持副干酪乳杆菌L9中的膜平衡来增强胆汁耐受性,这将为参与乳酸菌胆汁应激反应的MLE途径的分子基础提供新的见解。

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