多微生物群落工程益生菌体外发酵试验床的研究。

Journal of biological methods Pub Date : 2021-05-26 eCollection Date: 2021-01-01 DOI:10.14440/jbm.2021.347
Steven Arcidiacono, Amy M Ehrenworth Breedon, Michael S Goodson, Laurel A Doherty, Wanda Lyon, Grace Jimenez, Ida G Pantoja-Feliciano, Jason W Soares
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引用次数: 2

摘要

体外发酵系统为解开多微生物群落内复杂的代谢动力学提供了重要的机会,特别是那些与人类肠道微生物群相关的微生物。体外肠道模型具有广泛的实验能力,可以快速评估多个参数,为后续体内研究的设计提供知识。在这里,我们的方法描述了一个体外发酵试验台,以提供工程益生菌电路设计功能的生理学相关评估。通常,工程益生菌在原始、单一或共培养条件下进行评估,并直接过渡到动物或人体研究中,当引入复杂的肠道群落时,通常会导致预期功能的丧失。我们的方法包括系统的工作流程,包括发酵,分子和功能表征,以及统计分析,以验证工程益生菌的持久性,质粒稳定性和报告反应。为了演示这一工作流程,我们利用人类肠道微生物群落的简化多微生物群落来研究大肠杆菌Nissle 1917益生菌,该益生菌经工程改造后可产生荧光报告蛋白。共生生物的组合越来越复杂,以养分利用为基础产生模拟群落。该方法评估了工程益生菌在竞争生长环境中的持久性、报告菌的生产和功能、工程对生物生长的影响以及对共生成分的影响。体外试验台代表了设计-构建-测试-学习范式中的一个新元素,为电路重新设计和实验验证提供生理学相关的反馈,以实现工程益生菌向更高保真度的动物或人类研究的过渡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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In vitro fermentation test bed for evaluation of engineered probiotics in polymicrobial communities.

In vitro fermentation systems offer significant opportunity for deconvoluting complex metabolic dynamics within polymicrobial communities, particularly those associated with the human gut microbiome. In vitro gut models have broad experimental capacity allowing rapid evaluation of multiple parameters, generating knowledge to inform design of subsequent in vivo studies. Here, our method describes an in vitro fermentation test bed to provide a physiologically-relevant assessment of engineered probiotics circuit design functions. Typically, engineered probiotics are evaluated under pristine, mono- or co-culture conditions and transitioned directly into animal or human studies, commonly resulting in a loss of desired function when introduced to complex gut communities. Our method encompasses a systematic workflow entailing fermentation, molecular and functional characterization, and statistical analyses to validate an engineered probiotic's persistence, plasmid stability and reporter response. To demonstrate the workflow, simplified polymicrobial communities of human gut microbial commensals were utilized to investigate the probiotic Escherichia coli Nissle 1917 engineered to produce a fluorescent reporter protein. Commensals were assembled with increasing complexity to produce a mock community based on nutrient utilization. The method assesses engineered probiotic persistence in a competitive growth environment, reporter production and function, effect of engineering on organism growth and influence on commensal composition. The in vitro test bed represents a new element within the Design-Build-Test-Learn paradigm, providing physiologically-relevant feedback for circuit re-design and experimental validation for transition of engineered probiotics to higher fidelity animal or human studies.

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