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Virtual Patients and Sensitivity Analysis of the Guyton Model of Blood Pressure Regulation: Towards Individualized Models of Whole-Body Physiology

机译:虚拟患者和Guyton血压调节模型的敏感性分析:走向全身生理的个性化模型

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摘要

Mathematical models that integrate multi-scale physiological data can offer insight into physiological and pathophysiological function, and may eventually assist in individualized predictive medicine. We present a methodology for performing systematic analyses of multi-parameter interactions in such complex, multi-scale models. Human physiology models are often based on or inspired by Arthur Guyton's whole-body circulatory regulation model. Despite the significance of this model, it has not been the subject of a systematic and comprehensive sensitivity study. Therefore, we use this model as a case study for our methodology. Our analysis of the Guyton model reveals how the multitude of model parameters combine to affect the model dynamics, and how interesting combinations of parameters may be identified. It also includes a “virtual population” from which “virtual individuals” can be chosen, on the basis of exhibiting conditions similar to those of a real-world patient. This lays the groundwork for using the Guyton model for in silico exploration of pathophysiological states and treatment strategies. The results presented here illustrate several potential uses for the entire dataset of sensitivity results and the “virtual individuals” that we have generated, which are included in the supplementary material. More generally, the presented methodology is applicable to modern, more complex multi-scale physiological models.
机译:集成多尺度生理数据的数学模型可以提供对生理和病理生理功能的洞察力,并最终可以帮助进行个性化的预测医学。我们提出了一种在这种复杂的多尺度模型中对多参数相互作用进行系统分析的方法。人体生理学模型通常基于Arthur Guyton的全身循环调节模型或受其启发。尽管此模型具有重要意义,但它尚未成为系统而全面的敏感性研究的主题。因此,我们将此模型用作方法论的案例研究。我们对盖顿模型的分析揭示了多个模型参数如何组合以影响模型动力学,以及如何识别有趣的参数组合。它还包括“虚拟人群”,可以根据与现实世界患者相似的表现条件从中选择“虚拟个体”。这为使用盖顿模型进行病理生理状态和治疗策略的计算机分析奠定了基础。此处显示的结果说明了补充结果中包含的整个灵敏度结果数据集和我们所生成的“虚拟个体”的几种潜在用途。更一般地,所提出的方法适用于现代的,更复杂的多尺度生理模型。

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