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Big-data-driven modeling unveils country-wide drivers of endemic schistosomiasis

机译:大数据驱动的建模揭示了全国范围内血吸虫病的驱动因素

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摘要

Schistosomiasis is a parasitic infection that is widespread in sub-Saharan Africa, where it represents a major health problem. We study the drivers of its geographical distribution in Senegal via a spatially explicit network model accounting for epidemiological dynamics driven by local socioeconomic and environmental conditions, and human mobility. The model is parameterized by tapping several available geodatabases and a large dataset of mobile phone traces. It reliably reproduces the observed spatial patterns of regional schistosomiasis prevalence throughout the country, provided that spatial heterogeneity and human mobility are suitably accounted for. Specifically, a fine-grained description of the socioeconomic and environmental heterogeneities involved in local disease transmission is crucial to capturing the spatial variability of disease prevalence, while the inclusion of human mobility significantly improves the explanatory power of the model. Concerning human movement, we find that moderate mobility may reduce disease prevalence, whereas either high or low mobility may result in increased prevalence of infection. The effects of control strategies based on exposure and contamination reduction via improved access to safe water or educational campaigns are also analyzed. To our knowledge, this represents the first application of an integrative schistosomiasis transmission model at a whole-country scale.
机译:血吸虫病是一种寄生虫感染,在撒哈拉以南非洲很普遍,是一个主要的健康问题。我们通过一个空间明确的网络模型研究了塞内加尔地理分布的驱动因素,该模型解释了由当地社会经济和环境状况以及人类流动性驱动的流行病学动态。通过点击几个可用的地理数据库和一个大型的手机轨迹数据集,对模型进行参数化。只要适当考虑了空间异质性和人类流动性,它就可以可靠地再现观察到的全国各地血吸虫病流行的空间格局。具体而言,对局部疾病传播所涉及的社会经济和环境异质性的细粒度描述对于捕获疾病患病率的空间变异性至关重要,而人类流动性的纳入则大大提高了模型的解释力。关于人的活动,我们发现中等程度的活动可能会降低疾病的流行率,而高或低活动性可能会导致感染发生率的增加。还分析了基于改善接触安全水或开展教育活动的接触和减少污染的控制策略的效果。据我们所知,这是在全国范围内首次应用血吸虫病综合传播模型。

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