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中国东部地区的多种环境暴露与肥胖:个体暴露评估模型。

Multiple environmental exposures and obesity in eastern China: An individual exposure evaluation model.

机构信息

Department of Epidemiology and Biostatistics, School of Public Health, Anhui Medical University, 81 Meishan Road, Hefei, Anhui, China.

Department of Epidemiology and Biostatistics, School of Public Health, Anhui Medical University, 81 Meishan Road, Hefei, Anhui, China.

出版信息

Chemosphere. 2022 Jul;298:134316. doi: 10.1016/j.chemosphere.2022.134316. Epub 2022 Mar 14.

Abstract

Obesity has caused a huge burden of disease. Few studies have explored individuals' environmental exposure level and the impact of multiple environmental exposures on obesity. The aim of this study was to explore individual air pollution exposure evaluation, and the association between and multiple environmental factors and obesity among adult residents in rural areas of China. In this study, 8400 residents of 14 districts and counties in eastern of China were selected by multistage stratified cluster sampling, and a total of 8377 residents were included in the final analysis. We adopted BMI (Body Mass Index) > 28 kg/m as the definition of obesity. First, an individual air pollution evaluation model was established based on the monitoring data of air pollution stations closest to residential address, different demographic characteristics of residents and daily living habits using generalized linear model and random forest model. Then, we used Bayesian Kernel Machine Regression (BKMR) and Quantile g-Computation (QgC) models to explore multiple environmental exposures on obesity. The results showed that six air pollutants were significantly positively associated with obesity, and green space had a significant protective effect on obesity. The BKMR model showed that the effects of different air pollutants on obesity were significantly enhanced by each other, while green space significantly reduced the positive effect of air pollution on obesity. The QgC model showed a significant positive association with obesity when all environmental factors were exposed as a whole, especially in males, higher household incomes and young people. It suggested that relevant authorities should improve regional air quality and green space to reduce the burden of disease caused by obesity.

摘要

肥胖已造成巨大的疾病负担。很少有研究探讨个体的环境暴露水平以及多种环境暴露因素对肥胖的影响。本研究旨在探索中国农村地区成年居民个体空气污染暴露评估以及与肥胖相关的多种环境因素的关联。本研究采用多阶段分层聚类抽样的方法,从中国东部的 14 个区/县中选取了 8400 名居民,最终共有 8377 名居民纳入了最终分析。我们采用 BMI(身体质量指数)>28kg/m²作为肥胖的定义。首先,我们基于距居民住址最近的空气污染监测站的监测数据,采用广义线性模型和随机森林模型,根据居民不同的人口统计学特征和日常生活习惯,建立了个体空气污染评估模型。然后,我们采用贝叶斯核机器回归(BKMR)和分位数 g 计算(QgC)模型来探讨多种环境暴露因素对肥胖的影响。结果表明,六种空气污染物与肥胖呈显著正相关,绿地对肥胖有显著的保护作用。BKMR 模型显示,不同空气污染物对肥胖的影响存在显著的协同增强作用,而绿地则显著降低了空气污染对肥胖的正向作用。QgC 模型显示,当所有环境因素整体暴露时,与肥胖呈显著正相关,特别是在男性、高家庭收入和年轻人中。这提示相关部门应改善区域空气质量和绿地水平,以降低肥胖导致的疾病负担。

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