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Microbiome and metabolome data integration provides insight into health and disease

机译:Microbiome和代谢物数据集成提供了健康和疾病的洞察力

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摘要

For much of our history, the most basic information about the microbial world has evaded characterization. Next-generation sequencing has led to a rapid increase in understanding of the structure and function of host-associated microbial communities in diverse diseases ranging from obesity to autism. Through experimental systems such as gnotobiotic mice only colonized with known microbes, a causal relationship between microbial communities and disease phenotypes has been supported. Now, microbiome research must move beyond correlations and general demonstration of causality to develop mechanistic understandings of microbial influence, including through their metabolic activities. Similar to the microbiome field, advances in technologies for cataloguing small molecules have broadened our understanding of the metabolites that populate our bodies. Integration of microbial and metabolomics data paired with experimental validation has promise for identifying microbial influence on host physiology through production, modification, or degradation of bioactive metabolites. Realization of microbial metabolic activities that affect health is hampered by gaps in our understanding of (1) biological properties of microbes and metabolites, (2) which microbial enzymes/pathways produce which metabolites, and (3) the effects of metabolites on hosts. Capitalizing on known mechanistic relationships and filling gaps in our understanding has the potential to enable translational microbiome research across disease contexts.
机译:对于我们的大部分历史来说,有关微生物世界的最基本的信息已经脱落了表征。下一代测序导致了了解对从肥胖到自闭症的不同疾病中宿主相关的微生物群落的结构和功能的快速增加。通过仅用已知微生物殖民殖民的实验系统,例如仅殖民,微生物社区与疾病表型之间的因果关系。现在,微生物组研究必须超越相关性和普遍证明因果关系,以制定微生物影响的机械理论,包括通过它们的代谢活动。类似于微生物磁石领域,目录小分子的技术进步拓宽了我们对填充我们身体的代谢物的理解。与实验验证配对的微生物和代谢组合数据的整合具有通过生产,修饰或生物活性代谢物的降解来确定对宿主生理学的微生物影响。在我们理解微生物和代谢物的理解(1)的生物学性质中,实现影响健康的微生物代谢活动,(2)哪种微生物酶/途径产生哪种代谢物,(3)代谢物对宿主的影响。利用已知的机械关系和填补我们理解的空白有可能在疾病环境中实现翻译微生物组研究。

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