HeMiTo-dynamics: a characterisation of mammalian prion toxicity using non-dimensionalisation, linear stability and perturbation analyses.

Johannes G Borgqvist, Christoffer Gretarsson Alexandersen
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Abstract

Prion-like proteins play crucial parts in biological processes in organisms ranging from yeast to humans. For instance, many neurodegenerative diseases are believed to be caused by the production of prion-like proteins in neural tissue. As such, understanding the dynamics of prion-like protein production is a vital step toward treating neurodegenerative disease. Mathematical models of prion-like protein dynamics show great promise as a tool for predicting disease trajectories and devising better treatment strategies for prion-related diseases. Herein, we investigate a generic model for prion-like dynamics consisting of a class of non-linear ordinary differential equations (ODEs), establishing constraints through a linear stability analysis that enforce the expected properties of mammalian prion-like toxicity. Furthermore, we identify that prion toxicity evolves through three distinct phases for which we provide analytical descriptions using perturbation analyses. Specifically, prion-toxicity is initially characterised by the healthy phase, where the dynamics are dominated by the healthy form of prions, thereafter the system enters the mixed phase, where both healthy and toxic prions interact, and lastly, the system enters the toxic phase, where toxic prions dominate, and we refer to these phases as HeMiTo-dynamics. These findings hold the potential to aid researchers in developing precise mathematical models for prion-like dynamics, enabling them to better understand underlying mechanisms and devise effective treatments for prion-related diseases.

半微动力学:哺乳动物朊病毒毒性的特征使用无量纲化,线性稳定性和摄动分析。
朊病毒样蛋白在从酵母到人类的生物过程中起着至关重要的作用。例如,许多神经退行性疾病被认为是由神经组织中朊病毒样蛋白的产生引起的。因此,了解朊病毒样蛋白产生的动力学是治疗神经退行性疾病的重要一步。朊病毒样蛋白动力学的数学模型作为预测疾病轨迹和设计更好的朊病毒相关疾病治疗策略的工具显示出巨大的希望。在此,我们研究了一个由一类非线性常微分方程(ode)组成的朊病毒样动力学的通用模型,通过线性稳定性分析建立约束,强制执行哺乳动物朊病毒样毒性的预期特性。此外,我们确定朊病毒毒性通过三个不同的阶段演变,我们使用微扰分析提供分析描述。具体来说,朊病毒毒性最初的特征是健康阶段,在这个阶段,动力学由健康形式的朊病毒主导,此后系统进入混合阶段,在这个阶段,健康朊病毒和有毒朊病毒相互作用,最后,系统进入有毒阶段,在这个阶段,有毒朊病毒占主导地位,我们把这些阶段称为hemito动力学。这些发现有可能帮助研究人员为朊病毒样动力学建立精确的数学模型,使他们能够更好地理解潜在的机制,并设计出有效的治疗朊病毒相关疾病的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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