Association between PM1 Exposure and Lung Function in Children and Adolescents: A Systematic Review and Meta-Analysis
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Question
2.2. Search Strategy
2.3. Study Selection
2.4. Data Extraction and Quality Assessment
2.5. Statistical Analysis
3. Results
3.1. Characteristics of Included Studies
3.2. Primary Meta-Analysis
3.3. Publication Bias
3.4. Sensitivity Analysis
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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First Author and Publication Year | Study Design | Country | Sample Population | Meteorological Data | PM1 Exposure Measurement | Mean of PM1 Concentration | Statistical Analysis Model | Exposure Group | Lung Function Indicators | Adjusted Covariates | NOS Score |
---|---|---|---|---|---|---|---|---|---|---|---|
Liu et al., 2020 [30] | Cross-sectional study | China | 6740 children aged 7–14 years | Temperature: 8.4 °C Relative humidity: 62.0% | Monitoring by a monitoring station | 46.8 μg/m3 | Linear regression | Long-term exposure | FVC, FEV1, PEF, MMEF | Age, gender, parental education, household income, environmental tobacco smoke exposure, BMI category, annual average temperature and annual average relative humidity | 8 |
Moshammer et al., 2006 [31] | Panel study | Austria | 163 children aged 7–10 years | Temperature: − Relative humidity: − | Monitoring by a monitoring station | 15.03 μg/m3 | Generalized Estimating Equations model | Short -term exposure | FVC, FEV1, PEF, MMEF | Sex, age, height and weight | 7 |
Wu et al., 2022 [32] | Cross-sectional study | China | 35,334 students aged 9 to 18 years | Temperature: − Relative humidity: − | Fixed site instrument monitoring | 47.4 μg/m3 | Distributed lag non-linear models | Short-term exposure | FVC | Gender, age, body mass index (BMI) category, residence, month of the survey, intake of eggs, intake of milk, physical activity, and screen time | 7 |
Xing et al., 2019 [33] | Cross-sectional study | China | 4518 children with normal weight, 1068 with overweight, 1154 with obese | Temperature: − Relative humidity: − | Monitoring by a monitoring station | 47.5 μg/m3 | Linear regression model | Long-term exposure | FVC, FEV1, PEF, MMEF | Age, gender, smoking exposure, parental education, breastfeeding status, income, home coal use, house pet, family history of atopy, temperature during investigation, and study district | 8 |
Yang et al., 2020 [34] | Cross-sectional study | China | 6740 children aged 7–14 years | Temperature: − Relative humidity: − | Monitoring by a monitoring station | 47.5 μg/m3 | Linear regression model | Long-term exposure | FVC, FEV1, PEF, MMEF | Age, body mass index, breast fed status, gender, parental education, income, passive tobacco smoke exposure, home coal use, house pet, house renovation, and family atopy | 8 |
Zhang et al., 2019 [35] | Cross-sectional study | China | 1989 children with not breastfed, aged 7–14 years | Temperature: − Relative humidity: − | Monitoring by a monitoring station | 46.8 μg/m3 | Linear regression model | Long-term exposure | FVC, FEV1, PEF, MMEF | Age, sex, height, birth weight, preterm birth, parental education, annual family income, exercise per week, passive smoke exposure, home coal use, presence of a house pet, home renovation in the past 2 years, area of residence per person, asthma diagnosis, family history of atopy, and short-term air pollution concentrations | 8 |
Zwozdziak et al., 2016 [36] | Panel study | Poland | 141 school children aged 13–14 years | Temperature: 18−21 °C Relative humidity: 31−54% | Fixed site instrument monitoring | 22.0 μg/m3 | Generalized estimating equations model | Short-term exposure | FVC, FEV1, PEF, MMEF | Sex, smoking, dampness, street, dust, pollen, mold, traffic | 7 |
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Zong, Z.; Zhao, M.; Zhang, M.; Xu, K.; Zhang, Y.; Zhang, X.; Hu, C. Association between PM1 Exposure and Lung Function in Children and Adolescents: A Systematic Review and Meta-Analysis. Int. J. Environ. Res. Public Health 2022, 19, 15888. https://doi.org/10.3390/ijerph192315888
Zong Z, Zhao M, Zhang M, Xu K, Zhang Y, Zhang X, Hu C. Association between PM1 Exposure and Lung Function in Children and Adolescents: A Systematic Review and Meta-Analysis. International Journal of Environmental Research and Public Health. 2022; 19(23):15888. https://doi.org/10.3390/ijerph192315888
Chicago/Turabian StyleZong, Zhiqiang, Mengjie Zhao, Mengyue Zhang, Kexin Xu, Yunquan Zhang, Xiujun Zhang, and Chengyang Hu. 2022. "Association between PM1 Exposure and Lung Function in Children and Adolescents: A Systematic Review and Meta-Analysis" International Journal of Environmental Research and Public Health 19, no. 23: 15888. https://doi.org/10.3390/ijerph192315888
APA StyleZong, Z., Zhao, M., Zhang, M., Xu, K., Zhang, Y., Zhang, X., & Hu, C. (2022). Association between PM1 Exposure and Lung Function in Children and Adolescents: A Systematic Review and Meta-Analysis. International Journal of Environmental Research and Public Health, 19(23), 15888. https://doi.org/10.3390/ijerph192315888