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Insights into the mechanism of ATP-driven rotary motors from direct torque measurement

机译:直接扭矩测量的ATP驱动旋转电机机理的见解

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摘要

Motor proteins are molecular machines that convert chemical energy into mechanical work. In addition to existing studies performed on the linear motors found in eukaryotic cells, researchers in biophysics have also focused on rotary motors such as F1-ATPase. Detailed studies on the rotary F1-ATPase motor have correlated all chemical states to specific mechanical events at the single-molecule level. Recent studies showed that there exists another ATP-driven protein motor in life: the rotary machinery that rotates archaeal flagella (archaella). Rotation speed, stepwise movement, and variable directionality of the motor of Halobacterium salinarum were described in previous studies. Here we review recent experimental work discerning the molecular mechanismunderlying how the archaellar motor protein FlaI drives rotation by generation of motor torque. In combination, those studies found that rotation slows as the viscous drag of markers increases, but torque remains constant at 160 pN·nm independent of rotation speed. Unexpectedly, the estimated work done in a single rotation is twice the expected energy that would come from hydrolysis of six ATP molecules in the FlaI hexamer. To reconcile the apparent contradiction, a new and general model for the mechanism of ATP-driven rotary motors is discussed.
机译:电机蛋白是将化学能转化为机械工作的分子机器。除了在真核细胞中发现的线性电动机上进行的现有研究外,生物物理学的研究人员还专注于旋转电机,例如F1-ATP酶。旋转F1-ATP酶电动机的详细研究将所有化学品状态相关联到单分子水平上的特定机械事件。最近的研究表明,寿命中存在另一种ATP驱动的蛋白质电机:旋转古鞭菌(古藻)旋转的旋转机械。在先前的研究中描述了卤素杆菌马达仑运动的旋转速度,逐步运动和可变方向性。在这里,我们审查了最近的实验性工作,辨别出分子机制受到的分子机制如何通过产生电动机扭矩来驱动旋转的拟粒子。组合,这些研究发现,随着标记的粘性阻力增加,旋转会减慢,但是扭矩保持恒定在160 pn·nm,与转速无关。出乎意料地,在单次旋转中完成的估计工作是来自FLAI六聚体中六ATP分子的水解的预期能量的两倍。为了调和表观矛盾,讨论了ATP驱动旋转电动机机理的新和一般模型。

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