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从时间序列推断到生态建模:洞察肠道微生物组的动态和稳定性。

Ecological modeling from time-series inference: insight into dynamics and stability of intestinal microbiota.

机构信息

Computational Biology Program, Sloan-Kettering Institute, Memorial Sloan-Kettering Cancer Center, New York, New York, United States of America.

Immunology Program, Sloan-Kettering Institute, Memorial Sloan-Kettering Cancer Center, New York, New York, United States of America.

出版信息

PLoS Comput Biol. 2013;9(12):e1003388. doi: 10.1371/journal.pcbi.1003388. Epub 2013 Dec 12.

Abstract

The intestinal microbiota is a microbial ecosystem of crucial importance to human health. Understanding how the microbiota confers resistance against enteric pathogens and how antibiotics disrupt that resistance is key to the prevention and cure of intestinal infections. We present a novel method to infer microbial community ecology directly from time-resolved metagenomics. This method extends generalized Lotka-Volterra dynamics to account for external perturbations. Data from recent experiments on antibiotic-mediated Clostridium difficile infection is analyzed to quantify microbial interactions, commensal-pathogen interactions, and the effect of the antibiotic on the community. Stability analysis reveals that the microbiota is intrinsically stable, explaining how antibiotic perturbations and C. difficile inoculation can produce catastrophic shifts that persist even after removal of the perturbations. Importantly, the analysis suggests a subnetwork of bacterial groups implicated in protection against C. difficile. Due to its generality, our method can be applied to any high-resolution ecological time-series data to infer community structure and response to external stimuli.

摘要

肠道微生物群是对人类健康至关重要的微生物生态系统。了解微生物群如何赋予宿主抵抗肠道病原体的能力,以及抗生素如何破坏这种抵抗力,是预防和治疗肠道感染的关键。我们提出了一种从时间分辨宏基因组学中直接推断微生物群落生态学的新方法。该方法将广义的Lotka-Volterra 动力学扩展到可以解释外部干扰。我们分析了最近关于抗生素介导的艰难梭菌感染的实验数据,以量化微生物相互作用、共生体-病原体相互作用以及抗生素对群落的影响。稳定性分析表明,微生物群本质上是稳定的,这解释了抗生素干扰和艰难梭菌接种如何产生即使在去除干扰后仍持续存在的灾难性转变。重要的是,该分析表明了一个与抵抗艰难梭菌有关的细菌群的子网络。由于其通用性,我们的方法可以应用于任何高分辨率的生态时间序列数据,以推断群落结构和对外部刺激的反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/edd7/3861043/5e65f395dc1d/pcbi.1003388.g001.jpg

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