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Is the catalytic activity of triosephosphate isomerase fully optimized? An investigation based on maximization of entropy production

机译:磷酸三糖异构酶的催化活性是否得到充分优化?基于熵产生最大化的研究

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摘要

Triosephosphate isomerase (TIM) is often described as a fully evolved housekeeping enzyme with near-maximal possible reaction rate. The assumption that an enzyme is perfectly evolved has not been easy to confirm or refute. In this paper, we use maximization of entropy production within known constraints to examine this assumption by calculating steady-state cyclic flux, corresponding entropy production, and catalytic activity in a reversible four-state scheme of TIM functional states. The maximal entropy production (MaxEP) requirement for any of the first three transitions between TIM functional states leads to decreased total entropy production. Only the MaxEP requirement for the product (R-glyceraldehyde-3-phosphate) release step led to a 30% increase in enzyme activity, specificity constant kcat/KM, and overall entropy production. The product release step, due to the TIM molecular machine working in the physiological direction of glycolysis, has not been identified before as the rate-limiting step by using irreversible thermodynamics. Together with structural studies, our results open the possibility for finding amino acid substitutions leading to an increased frequency of loop six opening and product release.
机译:磷酸三糖异构酶(TIM)通常被描述为完全进化的管家酶,其反应速率接近最大。酶完全进化的假设并不容易确定或驳斥。在本文中,我们使用已知约束条件下的最大熵产生量,通过计算TIM功能状态的可逆四态方案中的稳态循环通量,相应的熵产生量和催化活性来检验此假设。 TIM功能状态之间的前三个转换中任何一个的最大熵产生(MaxEP)需求都会导致总熵产生减少。仅产品(R-甘油醛-3-磷酸酯)释放步骤的MaxEP要求导致酶活性,特异性常数kcat / KM和总熵产生增加30%。由于TIM分子机器在糖酵解的生理学方向上起作用,因此产品释放步骤之前尚未通过不可逆的热力学确定为限速步骤。连同结构研究,我们的结果为发现氨基酸取代带来了可能性,从而导致六环打开和产物释放的频率增加。

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