【2h】

The value of monitoring to control evolving populations

机译:监测对控制不断发展的人口的价值

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摘要

Populations can evolve to adapt to external changes. The capacity to evolve and adapt makes successful treatment of infectious diseases and cancer difficult. Indeed, therapy resistance has become a key challenge for global health. Therefore, ideas of how to control evolving populations to overcome this threat are valuable. Here we use the mathematical concepts of stochastic optimal control to study what is needed to control evolving populations. Following established routes to calculate control strategies, we first study how a polymorphism can be maintained in a finite population by adaptively tuning selection. We then introduce a minimal model of drug resistance in a stochastically evolving cancer cell population and compute adaptive therapies. When decisions are in this manner based on monitoring the response of the tumor, this can outperform established therapy paradigms. For both case studies, we demonstrate the importance of high-resolution monitoring of the target population to achieve a given control objective, thus quantifying the intuition that to control, one must monitor.
机译:种群可以进化以适应外部变化。进化和适应的能力使成功治疗传染病和癌症变得困难。实际上,抗药性已经成为全球健康的关键挑战。因此,有关如何控制不断发展的人口以克服这一威胁的想法很有价值。在这里,我们使用随机最优控制的数学概念来研究控制不断发展的种群所需要的东西。按照确定的路径计算控制策略,我们首先研究如何通过自适应调整选择来在有限的种群中保持多态性。然后,我们在随机演化的癌细胞群体中引入耐药性的最小模型,并计算适应性疗法。当基于监测肿瘤反应以这种方式做出决策时,这可能会超过已建立的治疗范例。对于这两个案例研究,我们都展示了对目标人群进行高分辨率监控以实现给定控制目标的重要性,从而量化了必须监控的直觉。

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