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催化双 E(对偶)控制器的动力学和机制。

Kinetics and mechanisms of catalyzed dual-E (antithetic) controllers.

机构信息

Department of Chemistry, Bioscience, and Environmental Engineering, University of Stavanger, Stavanger, Norway.

出版信息

PLoS One. 2022 Aug 18;17(8):e0262371. doi: 10.1371/journal.pone.0262371. eCollection 2022.

Abstract

Homeostasis plays a central role in our understanding how cells and organisms are able to oppose environmental disturbances and thereby maintain an internal stability. During the last two decades there has been an increased interest in using control engineering methods, especially integral control, in the analysis and design of homeostatic networks. Several reaction kinetic mechanisms have been discovered which lead to integral control. In two of them integral control is achieved, either by the removal of a single control species E by zero-order kinetics ("single-E controllers"), or by the removal of two control species by second-order kinetics ("antithetic or dual-E control"). In this paper we show results when the control species E1 and E2 in antithetic control are removed enzymatically by ping-pong or ternary-complex mechanisms. Our findings show that enzyme-catalyzed dual-E controllers can work in two control modes. In one mode, one of the two control species is active, but requires zero-order kinetics in its removal. In the other mode, both controller species are active and both are removed enzymatically. Conditions for the two control modes are put forward and biochemical examples with the structure of enzyme-catalyzed dual-E controllers are discussed.

摘要

稳态在我们理解细胞和生物体如何能够抵抗环境干扰从而维持内部稳定性方面起着核心作用。在过去的二十年中,人们越来越感兴趣地使用控制工程方法,特别是积分控制,来分析和设计稳态网络。已经发现了几种导致积分控制的反应动力学机制。其中两种机制通过零级动力学(“单-E 控制器”)或通过二级动力学(“对偶或双-E 控制”)去除两种控制物质来实现积分控制。在本文中,我们展示了当对偶控制中的控制物质 E1 和 E2 通过乒乓或三元复合物机制酶促去除时的结果。我们的研究结果表明,酶催化的双-E 控制器可以以两种控制模式工作。在一种模式中,两种控制物质之一是活跃的,但需要零级动力学来去除。在另一种模式中,两个控制器物质都是活跃的并且都是酶促去除的。提出了两种控制模式的条件,并讨论了具有酶催化双-E 控制器结构的生化实例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4570/9387869/131bb3071f0c/pone.0262371.g001.jpg

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