微生物群
大数据
人体微生物群
数据科学
人类微生物组计划
人类健康
生物
药物开发
计算生物学
生物信息学
计算机科学
医学
药品
数据挖掘
药理学
环境卫生
作者
Laura E. McCoubrey,Moe Elbadawi,Mine Orlu,Simon Gaisford,Abdul W. Basit
出处
期刊:Gut microbes
[Landes Bioscience]
日期:2021-01-01
卷期号:13 (1)
被引量:71
标识
DOI:10.1080/19490976.2021.1872323
摘要
The last twenty years of seminal microbiome research has uncovered microbiota's intrinsic relationship with human health. Studies elucidating the relationship between an unbalanced microbiome and disease are currently published daily. As such, microbiome big data have become a reality that provide a mine of information for the development of new therapeutics. Machine learning (ML), a branch of artificial intelligence, offers powerful techniques for big data analysis and prediction-making, that are out of reach of human intellect alone. This review will explore how ML can be applied for the development of microbiome-targeted therapeutics. A background on ML will be given, followed by a guide on where to find reliable microbiome big data. Existing applications and opportunities will be discussed, including the use of ML to discover, design, and characterize microbiome therapeutics. The use of ML to optimize advanced processes, such as 3D printing and in silico prediction of drug-microbiome interactions, will also be highlighted. Finally, barriers to adoption of ML in academic and industrial settings will be examined, concluded by a future outlook for the field.
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