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Symmetry and dynamics of molecular rotors in amphidynamic molecular crystals

机译:两栖分子晶体中分子转子的对称性和动力学

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摘要

Rotary biomolecular machines rely on highly symmetric supramolecular structures with rotating units that operate within a densely packed frame of reference, stator, embedded within relatively rigid membranes. The most notable examples are the enzyme FoF1 ATP synthase and the bacterial flagellum, which undergo rotation in steps determined by the symmetries of their rotators and rotating units. Speculating that a precise control of rotational dynamics in rigid environments will be essential for the development of artificial molecular machines, we analyzed the relation between rotational symmetry order and equilibrium rotational dynamics in a set of crystalline molecular gyroscopes with rotators having axial symmetry that ranges from two- to fivefold. The site exchange frequency for these molecules in their closely related crystals at ambient temperature varies by several orders of magnitude, up to ca. 4.46 × 108 s-1.
机译:旋转生物分子机器依靠具有旋转单元的高度对称的超分子结构,该旋转单元在相对密集的参比定子的密集包装的参考框架中运行。最著名的例子是FoF1 ATP合酶和细菌鞭毛,它们的旋转过程取决于其旋转器和旋转单元的对称性。考虑到在刚性环境中精确控制旋转动力学对于人工分子机器的发展必不可少,我们分析了一组晶体分子陀螺仪中旋转对称顺序与平衡旋转动力学之间的关系,该晶体分子陀螺仪的旋转器的轴向对称性介于两个-五倍。在环境温度下,这些分子在与其密切相关的晶体中的位点交换频率变化了几个数量级,最高可达到约。 4.46×108 s-1。

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