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基于机器学习和网络可视化组合探索食物对肠道生态系统的影响。

Exploring the Impact of Food on the Gut Ecosystem Based on the Combination of Machine Learning and Network Visualization.

机构信息

The Laboratory of Microbiology, Showa Pharmaceutical University, Machida, Tokyo 194-8543, Japan.

RIKEN Center for Sustainable Resource Science, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa 230-0045, Japan.

出版信息

Nutrients. 2017 Dec 1;9(12):1307. doi: 10.3390/nu9121307.

Abstract

Prebiotics and probiotics strongly impact the gut ecosystem by changing the composition and/or metabolism of the microbiota to improve the health of the host. However, the composition of the microbiota constantly changes due to the intake of daily diet. This shift in the microbiota composition has a considerable impact; however, non-pre/probiotic foods that have a low impact are ignored because of the lack of a highly sensitive evaluation method. We performed comprehensive acquisition of data using existing measurements (nuclear magnetic resonance, next-generation DNA sequencing, and inductively coupled plasma-optical emission spectroscopy) and analyses based on a combination of machine learning and network visualization, which extracted important factors by the Random Forest approach, and applied these factors to a network module. We used two pteridophytes, and , for the representative daily diet. This novel analytical method could detect the impact of a small but significant shift associated with but not intake, using the functional network module. In this study, we proposed a novel method that is useful to explore a new valuable food to improve the health of the host as pre/probiotics.

摘要

益生元和益生菌通过改变微生物群的组成和/或代谢来强烈影响肠道生态系统,从而改善宿主的健康。然而,由于日常饮食的摄入,微生物群的组成不断变化。这种微生物群组成的变化产生了相当大的影响;然而,由于缺乏高度敏感的评估方法,那些对人体影响较小的非预/probiotic 食品被忽略了。我们使用现有的测量方法(核磁共振、下一代 DNA 测序和电感耦合等离子体 - 光发射光谱)进行了全面的数据采集,并基于机器学习和网络可视化的组合进行了分析,该分析通过随机森林方法提取了重要因素,并将这些因素应用于网络模块。我们使用两种蕨类植物, 和 ,作为代表日常饮食。这种新的分析方法可以使用功能网络模块检测与 但不是 摄入相关的小但显著的变化的影响。在这项研究中,我们提出了一种新的方法,该方法可用于探索新的有价值的食物,以改善宿主的健康,作为预/probiotics。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1f4/5748757/699e28fca89c/nutrients-09-01307-g001.jpg

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