Comprehensive Cross-Sectional Study of the Triglyceride Glucose Index, Organophosphate Pesticide Exposure, and Cardiovascular Diseases: A Machine Learning Integrated Approach
Xuehai Wang, Mengxin Tian, Zengxu Shen, Kai Tian, Yue Fei, Yulan Cheng, Jialing Ruan, Siyi Mo, Jingjing Dai, Weiyi Xia, Mengna Jiang, Xinyuan Zhao, Jinfeng Zhu, Jing Xiao

TL;DR
This study explores how exposure to organophosphate pesticides affects insulin resistance and cardiovascular health using machine learning and statistical methods.
Contribution
The study integrates machine learning with traditional statistical models to assess the impact of organophosphate pesticide exposure on metabolic and cardiovascular health.
Findings
Diethyl thiophosphate was positively correlated with the TyG index.
Low to moderate concentrations of OPP metabolites showed a positive correlation with the TyG index.
Network toxicology identified PTGS3, PPARG, HSP40AA1, and CXCL8 as potential CVD targets influenced by OPPs.
Abstract
Using NHANES data from 2003 to 2008, 2011 to 2012, and 2015 to 2020, we examined the relationship between urinary organophosphate pesticide (OPP) metabolites and the triglyceride glucose (TyG) index. The TyG index evaluates insulin resistance, a crucial factor in metabolic diseases. Linear regression analyzed urinary metabolites in relation to the TyG index and OPPs. An RCS (restricted cubic spline) model explored the nonlinear relationship of a single OPP metabolite to TyG. A weighted quantile regression and quantile-based g-computation assessed the impact of combined OPP exposure on the TyG index. XGBoost, Random Forest, Support Vector Machines, logistic regression, and SHapley Additive exPlanations models investigated the impact of OPPs on the TyG index and cardiovascular disease. Network toxicology identified CVD targets associated with OPPs. This study included 4429 participants…
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Taxonomy
TopicsMetabolomics and Mass Spectrometry Studies · Pesticide Exposure and Toxicity · Health, Environment, Cognitive Aging
