生理振荡是生理的吗?

LingyunIvy, Xiong, Alan Garfinkel
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引用次数: 0

摘要

尽管生理振荡的例子广泛而引人注目,但它们的功能作用往往不清楚。即使是糖酵解,振荡生物化学的典型例子,其功能也受到质疑。在这里,我们采用系统方法来总结振荡发挥关键生理作用的证据。振荡行为使系统能够避免脱敏,避免长期高水平的有毒化学物质,并对噪声具有更强的抵抗力。振荡还使复杂的生理系统能够调和不相容的条件,如氧化和还原,通过在它们之间循环,并将许多小单位的振荡同步为一个大的效应。在胰腺b细胞中,我们发现糖酵解振荡与钙和线粒体振荡同步,以驱动脉冲胰岛素释放,这是肝脏调节血糖动力学的关键。此外,振荡可以保持生物时间,这对胚胎发育促进细胞多样性和模式形成至关重要。振荡过程的功能重要性需要重新思考传统的内稳态学说,认为生理数量保持在恒定的平衡值,这在临床上很大程度上失败了。一种更有活力的方法将使我们能够从新的角度看待健康和疾病,并在治疗疾病(包括抑郁症和癌症)方面启动范式转变。这种现代综合也需要更深入地了解创造和维持振荡过程的机制,这需要非线性动力学的语言,远远超出平衡控制理论的线性化技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Are physiological oscillations physiological?
Despite widespread and striking examples of physiological oscillations, their functional role is often unclear. Even glycolysis, the paradigm example of oscillatory biochemistry, has seen questions about its function. Here, we take a systems approach to summarize evidence that oscillations play critical physiological roles. Oscillatory behavior enables systems to avoid desensitization, to avoid chronically high and therefore toxic levels of chemicals, and to become more resistant to noise. Oscillation also enables complex physiological systems to reconcile incompatible conditions such as oxidation and reduction, by cycling between them, and to synchronize the oscillations of many small units into one large effect. In pancreatic b cells, we show that glycolytic oscillations are in synchrony with calcium and mitochondrial oscillations to drive pulsatile insulin release, which is pivotal for the liver to regulate blood glucose dynamics. In addition, oscillation can keep biological time, essential for embryonic development in promoting cell diversity and pattern formation. The functional importance of oscillatory processes requires a rethinking of the traditional doctrine of homeostasis, holding that physiological quantities are maintained at constant equilibrium values, which has largely failed us in the clinic. A more dynamic approach will enable us to view health and disease through a new light and initiate a paradigm shift in treating diseases, including depression and cancer. This modern synthesis also takes a deeper look into the mechanisms that create and sustain oscillatory processes, which requires the language of nonlinear dynamics, well beyond the linearization techniques of equilibrium control theory.
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