登革热-登卡夏模型的最优控制:疫苗接种与媒介控制的比较

Q2 Mathematics
Cheryl Q. Mentuda
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引用次数: 2

摘要

摘要登革热是最常见的蚊媒病毒感染传播疾病。这是由于四种类型的病毒(DENV-1、DENV-2、DENV-3、DENV-4),它们在白天通过受感染的埃及伊蚊和白纹伊蚊的叮咬传播。第一种全球商业化的疫苗是登革热,也被称为CYD-TDV疫苗,由赛诺菲巴斯德生产。本文提出了一个罗斯型流行病模型,利用昆虫学蚊子生长种群和恒定人类种群来描述人与蚊子之间的疫苗相互作用。建立基本复制编号后ℛ0,我们提出了三种控制策略:疫苗接种、媒介控制以及疫苗接种和媒介控制相结合。我们使用Pontryagin的最小原理来表征最优控制,并应用数值模拟来确定哪些策略最适合每个隔间。结果表明,媒介控制需要更短的时间来减少蚊子的数量。然而,与次级易感人群相比,为初级易感人群接种疫苗需要更短的时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Control of a Dengue-Dengvaxia Model: Comparison Between Vaccination and Vector Control
Abstract Dengue is the most common mosquito-borne viral infection transmitted disease. It is due to the four types of viruses (DENV-1, DENV-2, DENV-3, DENV-4), which transmit through the bite of infected Aedes aegypti and Aedes albopictus female mosquitoes during the daytime. The first globally commercialized vaccine is Dengvaxia, also known as the CYD-TDV vaccine, manufactured by Sanofi Pasteur. This paper presents a Ross-type epidemic model to describe the vaccine interaction between humans and mosquitoes using an entomological mosquito growth population and constant human population. After establishing the basic reproduction number ℛ0, we present three control strategies: vaccination, vector control, and the combination of vaccination and vector control. We use Pontryagin’s minimum principle to characterize optimal control and apply numerical simulations to determine which strategies best suit each compartment. Results show that vector control requires shorter time applications in minimizing mosquito populations. Whereas vaccinating the primary susceptible human population requires a shorter time compared to the secondary susceptible human.
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来源期刊
Computational and Mathematical Biophysics
Computational and Mathematical Biophysics Mathematics-Mathematical Physics
CiteScore
2.50
自引率
0.00%
发文量
8
审稿时长
30 weeks
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