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Motor-Substrate Interactions in Mycoplasma Motility Explains Non-Arrhenius Temperature Dependence

机译:支原体运动中的运动-底物相互作用解释了非阿累尼乌斯温度依赖性。

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摘要

Mycoplasmas exhibit a novel, substrate-dependent gliding motility that is driven by ∼400 “leg” proteins. The legs interact with the substrate and transmit the forces generated by an assembly of ATPase motors. The velocity of the cell increases linearly by nearly 10-fold over a narrow temperature range of 10–40°C. This corresponds to an Arrhenius factor that decreases from ∼45 kBT at 10°C to ∼10 kBT at 40°C. On the other hand, load-velocity curves at different temperatures extrapolate to nearly the same stall force, suggesting a temperature-insensitive force-generation mechanism near stall. In this article, we propose a leg-substrate interaction mechanism that explains the intriguing temperature sensitivity of this motility. The large Arrhenius factor at low temperature comes about from the addition of many smaller energy barriers arising from many substrate-binding sites at the distal end of the leg protein. The Arrhenius dependence attenuates at high temperature due to two factors: 1), the reduced effective multiplicity of energy barriers intrinsic to the multiple-site binding mechanism; and 2), the temperature-sensitive weakly facilitated leg release that curtails the power stroke. The model suggests an explanation for the similar steep, sub-Arrhenius temperature-velocity curves observed in many molecular motors, such as kinesin and myosin, wherein the temperature behavior is dominated not by the catalytic biochemistry, but by the motor-substrate interaction.
机译:支原体表现出一种新颖的,依赖于底物的滑动运动,该运动由〜400个“腿”蛋白驱动。支腿与基板相互作用,并传递由ATPase马达组件产生的力。在10–40°C的狭窄温度范围内,细胞的速度线性增加近10倍。这对应于一个Arrhenius因子,从10°C时的〜45 kBT降低到40°C时的〜10 kBT。另一方面,在不同温度下的载荷-速度曲线外推到几乎相同的失速力,表明失速附近的温度不敏感力产生机理。在本文中,我们提出了一种腿-底物相互作用的机制,该机制解释了这种运动的有趣的温度敏感性。低温下较大的Arrhenius因子来自腿蛋白远端许多底物结合位点产生的许多较小的能垒。由于以下两个因素,高温下的Arrhenius依赖性减弱:1)多位结合机制固有的能垒有效多重性降低;和2),对温度敏感的弱腿放松功能会减少力量冲程。该模型为在许多分子马达(如驱动蛋白和肌球蛋白)中观察到的相似的陡峭的,亚阿雷尼乌斯(Arrhenius)温度-速度曲线提供了一种解释,其中温度行为不是由催化生物化学决定,而是由马达-底物相互作用决定。

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