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一种用于精确预测间歇性禁食模式生物标志物的可解释机器学习模型。

An interpretable machine learning model for precise prediction of biomarkers for intermittent fasting pattern.

作者信息

Hu Xiaoli, Xu Qingjun, Ma Xuan, Li Lin, Wu Yongning, Sun Feifei

机构信息

Animal-Derived Food Safety Innovation Team, College of Veterinary Medicine, Anhui Agricultural University, Hefei, 230036, People's Republic of China.

NHC Key Laboratory of Food Safety Risk Assessment, China National Center for Food Safety Risk Assessment, Beijing, 100017, China.

出版信息

Nutr Metab (Lond). 2024 Dec 18;21(1):106. doi: 10.1186/s12986-024-00876-y.

Abstract

Intermittent fasting is currently a highly sought-after dietary pattern. To explore the potential biomarkers of intermittent fasting, untargeted metabolomics analysis of fecal metabolites in two groups of mice, intermittent fasting and normal feeding, was conducted using UPLC-HRMS. The data was further analyzed through interpretable machine learning (ML) to data mine the biomarkers for two dietary patterns. We developed five machine learning models and results showed that under three-fold cross-validation, Random Forest model was the most suitable for distinguishing the two dietary patterns. Finally, Shapely Additive exPlanations (SHAP) were explored to perform a weighted explanatory analysis on the Random Forest model, and the contribution of each metabolite to the model was calculated. Results indicated that Ganoderenic Acid C is the potential biomarkers to distinguish the two dietary patterns. Our work provides new insights for metabolic biomarker analysis and lays a theoretical foundation for the selection of a healthieir dietary lifestyle.

摘要

间歇性禁食目前是一种备受追捧的饮食模式。为了探索间歇性禁食的潜在生物标志物,使用超高效液相色谱-高分辨率质谱法(UPLC-HRMS)对两组小鼠(间歇性禁食组和正常喂养组)的粪便代谢物进行了非靶向代谢组学分析。通过可解释机器学习(ML)对数据进行进一步分析,以挖掘两种饮食模式的生物标志物。我们开发了五个机器学习模型,结果表明在三倍交叉验证下,随机森林模型最适合区分这两种饮食模式。最后,利用Shapely加性解释(SHAP)对随机森林模型进行加权解释分析,并计算每种代谢物对模型的贡献。结果表明,灵芝烯酸C是区分这两种饮食模式的潜在生物标志物。我们的工作为代谢生物标志物分析提供了新的见解,并为选择更健康的饮食生活方式奠定了理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12f3/11658198/bbf9ae4ed4e7/12986_2024_876_Fig1_HTML.jpg

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