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一种评估内源性代谢物潜在生物活性及其与儿童早期超敏C反应蛋白水平关联的化学结构和机器学习方法。

A chemical structure and machine learning approach to assess the potential bioactivity of endogenous metabolites and their association with early-childhood hs-CRP levels.

作者信息

Lovrić Mario, Wang Tingting, Staffe Mads Rønnow, Šunić Iva, Časni Kristina, Lasky-Su Jessica, Chawes Bo, Rasmussen Morten Arendt

机构信息

COPSAC, Copenhagen Prospective Studies on Asthma in Childhood, Herlev and Gentofte Hospital, University of Copenhagen, Copenhagen, Denmark.

Centre for Applied Bioanthropology, Institute for Anthropological Research, 10000 Zagreb, Croatia.

出版信息

bioRxiv. 2023 Nov 16:2023.11.15.567095. doi: 10.1101/2023.11.15.567095.

DOI:10.1101/2023.11.15.567095
PMID:38014335
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10680762/
Abstract

Metabolomics has gained much attraction due to its potential to reveal molecular disease mechanisms and present viable biomarkers. In this work we used a panel of untargeted serum metabolomes in 602 childhood patients of the COPSAC2010 mother-child cohort. The annotated part of the metabolome consists of 493 chemical compounds curated using automated procedures. Using predicted quantitative-structure-bioactivity relationships for the Tox21 database on nuclear receptors and stress response in cell lines, we created a filtering method for the vast number of quantified metabolites. The metabolites measured in children's serums used here have predicted potential against the chosen target modelled targets. The targets from Tox21 have been used with quantitative structure-activity relationships (QSARs) and were trained for ~7000 structures, saved as models, and then applied to 493 metabolites to predict their potential bioactivities. The models were selected based on strict accuracy criteria surpassing random effects. After application, 52 metabolites showed potential bioactivity based on structural similarity with known active compounds from the Tox21 set. The filtered compounds were subsequently used and weighted by their bioactive potential to show an association with early childhood hs-CRP levels at six months in a linear model supporting a physiological adverse effect on systemic low-grade inflammation. The significant metabolites were reported.

摘要

代谢组学因其揭示分子疾病机制和呈现可行生物标志物的潜力而备受关注。在这项工作中,我们对COPSAC2010母婴队列中的602名儿童患者使用了一组非靶向血清代谢组。代谢组的注释部分由493种通过自动化程序整理的化合物组成。利用细胞系中核受体和应激反应的Tox21数据库的预测定量结构-生物活性关系,我们为大量定量代谢物创建了一种筛选方法。此处使用的儿童血清中测量的代谢物对所选的目标建模靶点具有预测潜力。来自Tox21的靶点已与定量构效关系(QSARs)一起使用,并针对约7000个结构进行训练,保存为模型,然后应用于493种代谢物以预测它们的潜在生物活性。基于超越随机效应的严格准确性标准选择模型。应用后,52种代谢物基于与Tox21组中已知活性化合物的结构相似性显示出潜在的生物活性。随后使用过滤后的化合物,并根据其生物活性潜力进行加权,以在支持对全身低度炎症产生生理不良反应的线性模型中显示与6个月时儿童hs-CRP水平的关联。报告了显著的代谢物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f048/10680762/9d0573565950/nihpp-2023.11.15.567095v1-f0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f048/10680762/9d0573565950/nihpp-2023.11.15.567095v1-f0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f048/10680762/9d0573565950/nihpp-2023.11.15.567095v1-f0001.jpg

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本文引用的文献

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