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丙酮丁醇梭菌/Ljungdahlii梭菌共培养体系的生长动力学、种间细胞融合及代谢建模

Modeling Growth Kinetics, Interspecies Cell Fusion, and Metabolism of a Clostridium acetobutylicum/Clostridium ljungdahlii Syntrophic Coculture.

作者信息

Foster Charles, Charubin Kamil, Papoutsakis Eleftherios T, Maranas Costas D

机构信息

Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania, USA.

Department of Chemical and Biomolecular Engineering, The University of Delaware, Newark, Delaware, USA.

出版信息

mSystems. 2021 Feb 23;6(1):e01325-20. doi: 10.1128/mSystems.01325-20.

Abstract

and grown in a syntrophic culture were recently shown to fuse membranes and exchange cytosolic contents, yielding hybrid cells with significant shifts in gene expression and growth phenotypes. Here, we introduce a dynamic genome-scale metabolic modeling framework to explore how cell fusion alters the growth phenotype and panel of metabolites produced by this binary community. Computational results indicate persists in the coculture through proteome exchange during fusing events, which endow cells with expanded substrate utilization, and access to additional reducing equivalents from -evolved H and through acquisition of -native cofactor-reducing enzymes. Simulations predict maximum theoretical ethanol and isopropanol yields that are increased by 0.64 mmol and 0.39 mmol per mmol hexose sugar consumed, respectively, during exponential growth when cell fusion is active. This modeling effort provides a mechanistic explanation for the metabolic outcome of cellular fusion and altered homeostasis achieved in this syntrophic clostridial community. Widespread cell fusion and protein exchange between microbial organisms as observed in synthetic / culture is a novel observation that has not been explored The mechanisms responsible for the observed cell fusion events in this culture are still unknown. In this work, we develop a modeling framework that captures the observed culture composition and metabolic phenotype, use it to offer a mechanistic explanation for how the culture achieves homeostasis, and identify as primary beneficiary of fusion events. The implications for the events described in this study are far reaching, with potential to reshape our understanding of microbial community behavior synthetically and in nature.

摘要

最近研究表明,在互营培养中生长的细胞会融合细胞膜并交换胞质内容物,产生基因表达和生长表型发生显著变化的杂交细胞。在此,我们引入了一个动态的基因组规模代谢建模框架,以探索细胞融合如何改变这种二元群落产生的生长表型和代谢物组。计算结果表明,在融合事件期间,通过蛋白质组交换,[某种细胞]在共培养中持续存在,这赋予[某种细胞]扩大的底物利用能力,并通过获取[某种细胞]进化出的H和[某种细胞]天然的辅因子还原酶来获得额外的还原当量。模拟预测,在指数生长期间,当细胞融合活跃时,每消耗1 mmol己糖,最大理论乙醇和异丙醇产量分别增加0.64 mmol和0.39 mmol。这项建模工作为细胞融合的代谢结果以及在这种互营梭菌群落中实现的内环境稳态改变提供了一个机理解释。在合成/培养中观察到的微生物之间广泛的细胞融合和蛋白质交换是一个尚未被探索的新发现。在这种培养中导致观察到细胞融合事件的机制仍然未知。在这项工作中,我们开发了一个建模框架,该框架捕捉观察到的培养组成和代谢表型,用它来为培养如何实现内环境稳态提供机理解释,并确定[某种细胞]是融合事件的主要受益者。本研究中描述的事件具有深远的影响,有可能重塑我们对合成和自然环境中微生物群落行为的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d5b4/8573953/a0b6b5d81a0c/msystems.01325-20-f0001.jpg

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