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A Markovian engine for a biological energy transducer: The catalytic wheel

机译:生物能量换能器的马尔可夫发动机:催化轮

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The molecular machines in biological cells are made of proteins, DNAs and other classes of molecules. The structures of these molecules are characteristically “soft”, highly flexible, and yet their interactions with other molecules or ions are specific and selective. This chapter discusses a prevalent form, the catalytic wheel, or the energy transducer of cells, examines its mechanism of action, and extracts from it a set of simple but general rules for understanding the energetics of the biomolecular devices. These rules should also benefit design of manmade nanometer scale machines such as rotary motors or track-guided linear transporters. We will focus on an electric work that, by matching system dynamics and then enhancing the conformational fluctuation of one or several driver proteins, converts stochastic input of energy into rotation or locomotion of a receptor protein. The spatial (or barrier) and temporal symmetry breakings required for selected driver/receptor combinations are examined. This electric ratchet consists of a core engine that follows the Markovian dynamic, alleviates difficulties encountered in rigid mechanical model, and tailors to the soft-matter characteristics of the biomolecules.
机译:生物细胞中的分子机器由蛋白质,DNA和其他种类的分子组成。这些分子的结构通常是“软”的,高度柔性的,但它们与其他分子或离子的相互作用是特异性和选择性的。本章讨论一种普遍存在的形式,细胞的催化轮或能量转换器,研究其作用机理,并从中提取出一套简单但通用的规则来理解生物分子装置的能量学。这些规则还应该有益于人造纳米级机器的设计,例如旋转电机或轨道引导的线性运输机。我们将专注于一项电动工作,通过匹配系统动力学,然后增强一种或几种驱动蛋白的构象波动,将能量的随机输入转换为受体蛋白的旋转或运动。检查所选驱动器/受体组合所需的空间(或屏障)和时间对称性断裂。该电动棘轮由遵循马尔可夫动力学的核心发动机组成,可减轻刚性机械模型中遇到的困难,并适合生物分子的软物质特性。

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