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首页> 外文期刊>Microbial Cell Factories >Transcriptomics reveal different metabolic strategies for acid resistance and gamma-aminobutyric acid (GABA) production in select Levilactobacillus brevis strains
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Transcriptomics reveal different metabolic strategies for acid resistance and gamma-aminobutyric acid (GABA) production in select Levilactobacillus brevis strains

机译:转录组织揭示了耐酸性和γ-氨基丁酸(GABA)生产中的不同代谢策略选择Levilactobacillus Brevis菌株

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摘要

Of the many neurotransmitters in humans, gamma-aminobutyric acid (GABA) shows potential for improving several mental health indications such as stress and anxiety. The microbiota-gut-brain axis is an important pathway for GABAergic effects, as microbially-secreted GABA within the gut can affect host mental health outcomes. Understanding the molecular characteristics of GABA production by microbes within the gut can offer insight to novel therapies for mental health. Three strains of Levilactobacillus brevis with syntenous glutamate decarboxylase (GAD) operons were evaluated for overall growth, glutamate utilization, and GABA production in typical synthetic growth media supplemented with monosodium glutamate (MSG). Levilactobacillus brevis Lbr-6108? (Lbr-6108), formerly known as L. brevis DPC 6108, and Levilactobacillus brevis Lbr-35 ? (Lbr-35) had similar growth profiles but differed significantly in GABA secretion and acid resistance. Lbr-6108 produced GABA early within the growth phase and produced significantly more GABA than Lbr-35 and the type strain Levilactobacillus brevis ATCC 14869 after the stationary phase. The global gene expression during GABA production at several timepoints was determined by RNA sequencing. The GAD operon, responsible for GABA production and secretion, activated in Lbr-6108 after only 6 h of fermentation and continued throughout the stationary phase. Furthermore, Lbr-6108 activated many different acid resistance mechanisms concurrently, which contribute to acid tolerance and energy production. In contrast, Lbr-35, which has a genetically similar GAD operon, including two copies of the GAD gene, showed no upregulation of the GAD operon, even when cultured with MSG. This study is the first to evaluate whole transcriptome changes in Levilactobacillus brevis during GABA production in different growth phases. The concurrent expression of multiple acid-resistance mechanisms reveals niche-specific metabolic functionality between common human commensals and highlights the complex regulation of GABA metabolism in this important microbial species. Furthermore, the increased and rapid GABA production of Lbr-6108 highlights the strain’s potential as a therapeutic and the overall value of screening microbes for effector molecule output.
机译:在人类的许多神经递质中,γ-氨基丁酸(GABA)显示出改善若干心理健康适应症,例如压力和焦虑的潜力。微生物肠肠轴轴是加蓬效果的重要途径,因为肠道内的微生物分泌的GABA可以影响宿主心理健康结果。了解肠道内微生物生产的GABA生产的分子特征可以对新的心理健康疗法提供洞察力。评估了三种菌株的Levilactobacillus Brevis与突出的谷氨酸脱羧酶(GAD)操纵子进行了总体生长,谷氨酸利用和GABA生产,典型的合成生长培养基补充有谷氨酸钠(MSG)。 Levilactobacillus brevis lbr-6108? (LBR-6108),以前称为L.Brevis DPC 6108和Levilactobacillus Brevis LBR-35? (LBR-35)具有类似的生长型材,但在GABA分泌和耐酸性中显着差异。 LBR-6108在生长阶段内早期生产的GABA,并且在固定相后,比LBR-35和菌株菌株菌株14869的菌株率高。在几次调速时GABA产生期间的全局基因表达由RNA测序确定。 GAD操纵子,负责GABA生产和分泌,仅在LBR-6108中激活,在仅6小时的发酵后并在整个固定阶段继续。此外,LBR-6108同时激活许多不同的耐酸机制,这有助于耐酸性和能量产生。相比之下,具有遗传上类似的GAD操纵子的LBR-35,包括两种GAD基因的副本,表明即使用MSG培养时也没有上调GAD操纵子。本研究是第一个评价在不同生长阶段的GABA生产过程中Levilactobacillus Brevis的整个转录组变化。多种耐酸机制的同时表达揭示了普通人类共生之间的特异性代谢功能,并突出了这种重要的微生物物种中GABA代谢的复杂调节。此外,LBR-6108的增加和快速的GABA生产突出了菌株作为治疗性的潜力和筛选微生物的总值,用于效应分子输出。

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