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Utilization of alternate chirality enantiomers in microbial communities

机译:在微生物群落中使用手性性对映异构体

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Our previous study of chirality led to interesting findings for some anaerobic extremophiles: the ability to metabolize substrates with alternate chirality enantiomers of amino acids and sugars. We have subsequently found that not just separate microbial species or strains but entire microbial communities have this ability. The functional division within a microbial community on proteo- and sugarlytic links was also reflected in a microbial diet with L-sugars and Z)-amino acids.rnSeveral questions are addressed in this paper. Why and when was this feature developed in a microbial world? Was it a secondary de novo adaptation in a bacterial world? Or is this a piece of genetic information that has been left in modern genomes as an atavism? Is it limited exclusively to prokaryotes, or does this ability also occur in eukaryotes? In this article, we have used a broader approach to study this phenomenon using anaerobic extremophilic strains from our laboratory collection. A series of experiments were performed on physiologically different groups of extremophilic anaerobes (pure and enrichment cultures). The following characteristics were studied: 1) the ability to grow on alternate chirality enantiomers - Z-sugars and D- amino acids; 2) Growth-inhibitory effect of alternate chirality enantiomers; 3) Stickland reaction with alternate chirality amino acids. The results of this research are presented in this paper.
机译:我们以前的手性研究引起了一些厌氧性极端微生物的有趣发现:能够与氨基酸和糖类的其他手性对映异构体代谢底物。随后我们发现,不仅单独的微生物物种或菌株,而且整个微生物群落都具有这种能力。微生物饮食中蛋白质和糖酵解的功能划分也反映在含L-糖和Z)-氨基酸的微生物饮食中。本文讨论了几个问题。为什么和何时在微生物世界中开发此功能?它是细菌世界中的从头开始的次生适应吗?还是这是现代基因组中遗留下来的遗传信息?它是否仅限于原核生物,还是在真核生物中也具有这种能力?在本文中,我们使用了更广泛的方法,使用了来自我们实验室的厌氧性极端嗜热菌菌株来研究这种现象。在生理上不同的极端嗜热厌氧菌(纯培养物和富集培养物)上进行了一系列实验。研究了以下特征:1)在其他手性对映体-Z-糖和D-氨基酸上的生长能力; 2)其他手性对映体的生长抑制作用; 3)具有交替手性氨基酸的Stickland反应。本文介绍了这项研究的结果。

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