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Optimization of HAART with genetic algorithms and agent-based models of HIV infection

机译:使用遗传算法和基于代理的HIV感染模型优化HAART

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Motivation: Highly Active AntiRetroviral Therapies (HAART) can prolong life significantly to people infected by HIV since, although unable to eradicate the virus, they are quite effective in maintaining control of the infection. However, since HAART have several undesirable side effects, it is considered useful to suspend the therapy according to a suitable schedule of Structured Therapeutic Interruptions (STI). In the present article we describe an application of genetic algorithms (GA) aimed at finding the optimal schedule for a HAART simulated with an agent-based model (ABM) of the immune system that reproduces the most significant features of the response of an organism to the HIV-1 infection. Results: The genetic algorithm helps in finding an optimal therapeutic schedule that maximizes immune restoration, minimizes the viral count and, through appropriate interruptions of the therapy, minimizes the dose of drug administered to the simulated patient. To validate the efficacy of the therapy that the genetic algorithm indicates as optimal, we ran simulations of opportunistic diseases and found that the selected therapy shows the best survival curve among the different simulated control groups.
机译:动机:高效的抗逆转录病毒疗法(HAART)可以显着延长被HIV感染者的寿命,因为尽管无法消灭病毒,但它们在保持感染控制方面非常有效。但是,由于HAART具有多种不良副作用,因此根据结构化治疗中断(STI)的适当时间表中止治疗被认为是有用的。在本文中,我们描述了一种遗传算法(GA)的应用,旨在寻找用免疫系统的基于代理模型(ABM)模拟的HAART的最佳时间表,该模型可重现生物体对病毒的反应的最重要特征。 HIV-1感染。结果:遗传算法有助于找到最佳的治疗方案,从而最大程度地提高免疫力,减少病毒计数,并通过适当中断治疗,将给予模拟患者的药物剂量降至最低。为了验证遗传算法指示的最佳疗法的有效性,我们对机会性疾病进行了模拟,发现所选疗法在不同的模拟对照组中显示出最佳的生存曲线。

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