论文标题
DNA复制不匹配修复中依赖ATP的不匹配识别
ATP-Dependent Mismatch Recognition in DNA Replication Mismatch Repair
论文作者
论文摘要
不匹配修复是在基本选择和校对后发生的DNA复制的关键步骤,大大提高了保真度。但是,尚未确定任何维修酶的不匹配识别机制。该领域的猜测主要集中在利用热力学平衡和自由能。然而,通过利用三磷酸腺苷(ATP),非平衡过程在增强不匹配识别准确性方面起着更为重要的作用。这项研究旨在调查这种可能性。考虑到我们对实际不匹配修复酶的有限了解,我们提出了一种假设酶,该酶是一个具有三个离散能级的量子系统。当将酶提高到其最高能级时,会发生量子过渡,从而导致两个低能水平之一,代表潜在的识别结果:正确的匹配或不匹配。这两个结果的概率是指数差异的,这取决于两个低能水平之间的能量差距。通过翻转能量差距,可以实现不匹配和正确匹配的歧视。在将量子力学与热力学结合的框架内,我们建立了能量成本与识别误差之间的关系。
Mismatch repair is a critical step in DNA replication that occurs after base selection and proofreading, significantly increasing fidelity. However, the mechanism of mismatch recognition has not been established for any repair enzyme. Speculations in this area mainly focus on exploiting thermodynamic equilibrium and free energy. Nevertheless, non-equilibrium processes may play a more significant role in enhancing mismatch recognition accuracy by utilizing adenosine triphosphate (ATP). This study aimed to investigate this possibility. Considering our limited knowledge of actual mismatch repair enzymes, we proposed a hypothetical enzyme that operates as a quantum system with three discrete energy levels. When the enzyme is raised to its highest energy level, a quantum transition occurs, leading to one of two low-energy levels representing potential recognition outcomes: a correct match or a mismatch. The probabilities of the two outcomes are exponentially different, determined by the energy gap between the two low energy levels. By flipping the energy gap, discrimination between mismatches and correct matches can be achieved. Within a framework that combines quantum mechanics with thermodynamics, we established a relationship between energy cost and the recognition error.