大分子拥挤对酵母菌糖酵解酶动力学及糖酵解行为的影响。

IF 1.4 4区 生物学 Q4 CELL BIOLOGY
Henrik S Thoke, Luis A Bagatolli, Lars F Olsen
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引用次数: 13

摘要

水既作为溶剂又作为反应物,参与生物活动的各个方面。据推测,由于细胞内高浓度的大分子,细胞内水处于高度结构化状态,这可能会改变细胞内酶的活性,因为结合亲和力和变构调节发生了改变。在这里,我们首先研究了两种糖酵解酶在人工拥挤的水溶液中的动力学,并表明拥挤确实改变了它们的动力学。基于我们的动力学测量,我们提出了一个新的振荡糖酵解模型,该模型使用G. Ling在联想-诱导(AI)假设框架中引入的Yang-Ling吸附等温线,而不是Michaelis-Menten或Monod-Wyman-Changeux动力学。使用该模型,我们可以重现先前关于糖酵解振荡和细胞内水动力学耦合的实验观察,例如:(i)在代谢振荡期间,后者变量与ATP活性同步振荡,(ii)糖酵解振荡的出现在很大程度上取决于细胞在静息状态下细胞内水偶极弛豫的程度。我们的研究结果支持这样的观点,即细胞内水偶极弛豫的程度是由细胞质蛋白在ATP的帮助下使细胞内水极化的能力调节的,正如AI假说所建议的那样。这一假设可能与许多其他生物振荡器的解释有关,包括细胞信号传导过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of macromolecular crowding on the kinetics of glycolytic enzymes and the behaviour of glycolysis in yeast.

Water is involved in all aspects of biological activity, both as a solvent and as a reactant. It is hypothesized that intracellular water is in a highly structured state due to the high concentrations of macromolecules in the cell and that this may change the activity of intracellular enzymes due to altered binding affinities and allosteric regulations. Here we first investigate the kinetics of two glycolytic enzymes in artificially crowded aqueous solutions and show that crowding does indeed change their kinetics. Based on our kinetic measurements we propose a new model of oscillating glycolysis that instead of Michaelis-Menten or Monod-Wyman-Changeux kinetics uses the Yang-Ling adsorption isotherm introduced by G. Ling in the frame of the Association-Induction (AI) hypothesis. Using this model, we can reproduce previous experimental observations of the coupling of glycolytic oscillations and intracellular water dynamics, e.g., (i) during the metabolic oscillations, the latter variable oscillates in phase with ATP activity, and (ii) the emergence of glycolytic oscillations largely depends on the extent of intracellular water dipolar relaxation in cells in the resting state. Our results support the view that the extent of intracellular water dipolar relaxation is regulated by the ability of cytoplasmic proteins to polarize intracellular water with the assistance of ATP, as suggested in the AI hypothesis. This hypothesis may be relevant to the interpretation of many other biological oscillators, including cell signalling processes.

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来源期刊
Integrative Biology
Integrative Biology 生物-细胞生物学
CiteScore
4.90
自引率
0.00%
发文量
15
审稿时长
1 months
期刊介绍: Integrative Biology publishes original biological research based on innovative experimental and theoretical methodologies that answer biological questions. The journal is multi- and inter-disciplinary, calling upon expertise and technologies from the physical sciences, engineering, computation, imaging, and mathematics to address critical questions in biological systems. Research using experimental or computational quantitative technologies to characterise biological systems at the molecular, cellular, tissue and population levels is welcomed. Of particular interest are submissions contributing to quantitative understanding of how component properties at one level in the dimensional scale (nano to micro) determine system behaviour at a higher level of complexity. Studies of synthetic systems, whether used to elucidate fundamental principles of biological function or as the basis for novel applications are also of interest.
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