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Abstraction and Idealization in Biomedicine: The Nonautonomous Theory of Acute Cell Injury

机译:生物医学中的抽象和理想化:急性细胞损伤的非自治理论

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摘要

Neuroprotection seeks to halt cell death after brain ischemia and has been shown to be possible in laboratory studies. However, neuroprotection has not been successfully translated into clinical practice, despite voluminous research and controlled clinical trials. We suggested these failures may be due, at least in part, to the lack of a general theory of cell injury to guide research into specific injuries. The nonlinear dynamical theory of acute cell injury was introduced to ameliorate this situation. Here we present a revised nonautonomous nonlinear theory of acute cell injury and show how to interpret its solutions in terms of acute biomedical injuries. The theory solutions demonstrate the complexity of possible outcomes following an idealized acute injury and indicate that a “one size fits all” therapy is unlikely to be successful. This conclusion is offset by the fact that the theory can (1) determine if a cell has the possibility to survive given a specific acute injury, and (2) calculate the degree of therapy needed to cause survival. To appreciate these conclusions, it is necessary to idealize and abstract complex physical systems to identify the fundamental mechanism governing the injury dynamics. The path of abstraction and idealization in biomedical research opens the possibility for medical treatments that may achieve engineering levels of precision.
机译:神经保护作用试图阻止脑缺血后的细胞死亡,并已在实验室研究中证明是可能的。然而,尽管进行了大量的研究和进行了对照的临床试验,神经保护作用尚未成功地转化为临床实践。我们认为这些失败可能至少部分是由于缺乏细胞损伤的一般理论来指导对特定损伤的研究。急性细胞损伤的非线性动力学理论被引入以改善这种情况。在这里,我们提出了一种急性细胞损伤的非自主非线性修正理论,并展示了如何根据急性生物医学损伤来解释其解决方案。理论解决方案证明了理想急性损伤后可能发生的结果的复杂性,并表明“一刀切”的治疗不太可能成功。该理论可以抵消这一结论,因为该理论可以(1)确定在特定的急性损伤下细胞是否具有存活的可能性,以及(2)计算引起存活所需的治疗程度。要理解这些结论,有必要对复杂的物理系统进行理想化和抽象化,以识别控制伤害动态的基本机制。生物医学研究中的抽象化和理想化之路为医学治疗达到了工程上的精确度开辟了可能性。

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