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Modelling the Role of Diagnosis, Treatment, and Health Education on Multidrug-Resistant Tuberculosis Dynamics

机译:模拟诊断,治疗和健康教育对多药抗性结核动态的作用

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摘要

Tuberculosis, an airborne disease affecting almost a third of the world’s population remainsone of the major public health burdens globally, and the resurgence of multidrug-resistant tuberculosis in some parts of sub-Saharan Africa calls for concern. To gain insight into its qualitative dynamics at the population level, mathematical modeling which require as inputs key demographic and epidemiological information can fill in gaps where field and lab data are not readily available. A deterministic model for the transmission dynamics of multi-drug resistant tuberculosis to assess the impact of diagnosis, treatment, and health education is formulated. The model assumes that exposed individuals develop active tuberculosis due to endogenous activation and exogenous re-infection. Treatment is offered to all infected individuals except those latently infected with multi-drug resistant tuberculosis. Qualitative analysis using the theory of dynamical systems shows that, in addition to the disease-free equilibrium, there exists a unique dominant locally asymptotically stable equilibrium corresponding to each strain. Numerical simulations suggest that, at the current level of control strategies (with Malawi as a case study), the drug-sensitive tuberculosis can be completely eliminated from the population, thereby reducing multi-drug resistant tuberculosis.
机译:结核病,一种影响世界上几乎三分之一的世界人口仍然是全球性的主要公共卫生负担的遗体,以及在撒哈拉以南非洲的某些地区的多药抗性结核病的复苏呼吁关注。为了在人口层面上深入了解其定性动态,需要作为输入关键人口统计和流行病学信息的数学建模可以填补现场和实验室数据不容易获得的空白。制定了多种耐药结核病传播动力学的确定性模型,评估诊断,治疗和健康教育的影响。该模型假设暴露的个体由于内源性活化和外源性再感染而产生活性结核病。除了潜伏的患有多种耐药结核病之外,所有受感染的个体都提供治疗。使用动态系统理论的定性分析表明,除了无疾病平衡之外,还存在与每个菌株相对应的唯一主要渐近稳定的平衡。数值模拟表明,在目前的控制策略水平(用马拉维作为案例研究),可以从群体中完全消除药物敏感的结核,从而减少多毒性结核病。

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