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[碳水化合物能量代谢的数学模型。不同ATP酶负荷下糖酵解、三羧酸循环和氢转运穿梭之间的相互作用]

[Mathematical model of carbohydrate energy metabolism. Interaction between glycolysis, the Krebs cycle and the H-transporting shuttles at varying ATPase load].

作者信息

Dynnik V V, Khaĭnrikh R, Sel'kov E E

出版信息

Biokhimiia. 1980 May;45(5):771-82.

PMID:6445762
Abstract

A simple mathematical model for carbohydrate energy metabolism based on the stoichiometic structure of glycolysis, the Krebs cycle and oxidative phosphorylation is proposed. The only allosteric regulation involved in the model is phosphofructokinase activation by AMP. Simple as it is, the model can explain the following properties of carbohydrate metabolism: a drastic rise of the rate of glucose consumption during transition to a higher level of ATPase load; stabilization of ATP and an increase of the steady state rates of glycolysis and oxidation of cytoplasmic NADH by the H-transporting shuttles and of pyruvate in the Krebs cycle with increasing rate of the ATPase load; activation of glycolysis and a decrease of the rate of oxidative phosphorylation following an inhibition of the H-transporting shuttles. The mechanisms of the coordinated changes in the steady state rates of glycolysis, the H-transporting shuttles and the Krebs cycle at varying ATPase load in the cell are discussed.

摘要

基于糖酵解、三羧酸循环和氧化磷酸化的化学计量结构,提出了一个简单的碳水化合物能量代谢数学模型。该模型中涉及的唯一变构调节是AMP对磷酸果糖激酶的激活。尽管该模型很简单,但它可以解释碳水化合物代谢的以下特性:在转变到更高水平的ATP酶负荷时,葡萄糖消耗速率急剧上升;随着ATP酶负荷速率的增加,ATP稳定,糖酵解速率以及通过H转运穿梭体的细胞质NADH氧化和三羧酸循环中丙酮酸氧化的稳态速率增加;H转运穿梭体受到抑制后,糖酵解激活,氧化磷酸化速率降低。讨论了细胞中不同ATP酶负荷下糖酵解、H转运穿梭体和三羧酸循环稳态速率协同变化的机制。

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