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一种用于预测儿童牛奶过敏发展的多组学机器学习分类器。

A multi-omics machine learning classifier for outgrowth of cow's milk allergy in children.

作者信息

Hendrickx Diana M, Savova Mariyana V, Zhu Pingping, An Ran, Boeren Sjef, Klomp Kelly, Mutte Sumanth K, Wopereis Harm, van der Molen Renate G, Harms Amy C, Belzer Clara

机构信息

Laboratory of Microbiology, Wageningen University, Wageningen, The Netherlands.

Metabolomics and Analytics Centre, Leiden Academic Centre for Drug Research, Leiden University, Leiden, The Netherlands.

出版信息

Mol Omics. 2025 May 23. doi: 10.1039/d4mo00245h.

Abstract

Cow's milk protein allergy (CMA) is one of the most common food allergies in children worldwide. However, it is still not well understood why certain children outgrow their CMA and others do not. While there is increasing evidence for a link of CMA with the gut microbiome, it is still unclear how the gut microbiome and metabolome interact with the immune system. Integrating data from different omics platforms and clinical data can help to unravel these interactions. In this study, we integrate clinical, microbial, (meta)proteomics, immune and metabolomics data into machine learning (ML) classification, using multi-view learning by late integration. The aim is to group infants into those that outgrew their CMA and those that did not. The results show that integration of microbiome data with clinical, immune, (meta)proteomics and metabolomics data could considerably improve classification of infants on outgrowth of CMA, compared to only considering one type of data. Moreover, pathways previously linked to development of CMA could also be related to outgrowth of this allergy.

摘要

牛奶蛋白过敏(CMA)是全球儿童中最常见的食物过敏之一。然而,目前仍不清楚为什么某些儿童的CMA会自愈而其他儿童却不会。虽然越来越多的证据表明CMA与肠道微生物群有关,但肠道微生物群和代谢组如何与免疫系统相互作用仍不清楚。整合来自不同组学平台的数据和临床数据有助于揭示这些相互作用。在本研究中,我们通过后期整合的多视图学习,将临床、微生物、(元)蛋白质组学、免疫和代谢组学数据整合到机器学习(ML)分类中。目的是将婴儿分为CMA自愈组和未自愈组。结果表明,与仅考虑一种类型的数据相比,将微生物组数据与临床、免疫、(元)蛋白质组学和代谢组学数据整合,可以显著提高对婴儿CMA自愈情况的分类。此外,先前与CMA发展相关的通路也可能与这种过敏的自愈有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94a8/12101220/d6476f04755c/d4mo00245h-f1.jpg

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