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Modeling the Context-Dependent Associations between the Gut Microbiome, Its Environment, and Host Health

机译:建模肠道微生物组,其环境与宿主健康之间的上下文相关关联

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ABSTRACT Changes in the gut microbiome are often associated with disease. One of the major goals in microbiome research is determining which components of this complex system are responsible for the observed differences in health state. Most studies apply a reductionist approach, wherein individual organisms are evaluated independently of the surrounding context of the microbiome. While such methods have yielded valuable insights into the microbiome, they fail to identify patterns that may be obscured by contextual variation. A recent report by Schubert et al. [A. M. Schubert, H. Sinani, and P. D. Schloss, mBio 6(4):e00974-15, 2015, doi: 10.1128/mBio.00974-15] communicates an alternative approach to the study of the microbiome’s association with host health. By coupling a multifactored experimental design with regression modeling, the authors are able to profile context-dependent changes in the microbiome and predict health status. This work underscores the value of incorporating model-based procedures into the investigation of the microbiome and illustrates the potential clinical transformations that may arise through their use.
机译:摘要肠道微生物组的改变通常与疾病有关。微生物组研究的主要目标之一是确定此复杂系统的哪些组件负责观察到的健康状况差异。大多数研究采用还原论方法,其中独立于微生物组的周围环境对单个生物进行评估。尽管此类方法已对微生物组产生了有价值的见解,但它们未能识别出可能因环境变化而被掩盖的模式。 Schubert等人的最新报告。 [一种。 M. Schubert,H。Sinani和P. D. Schloss,mBio 6(4):e00974-15,2015,doi:10.1128 / mBio.00974-15]为研究微生物组与宿主健康之间的联系提供了另一种方法。通过将多因素实验设计与回归建模相结合,作者能够描述微生物组中上下文相关的变化并预测健康状况。这项工作强调了将基于模型的程序纳入微生物组研究的价值,并说明了使用它们可能引起的潜在临床转化。

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