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Single Carbon Nanotube-Based Reversible Regulation of Biological Motor Activity

机译:基于单碳纳米管的生物运动活动的可逆调节

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Because of their small size and high thermal conductivity, carbon nanotubes (CNTs) are excellent candidates for exploring heat transfer at the level of individual molecules in biological research. With a view toward examining the thermal regulation of single biomolecules, we here developed single CNTs as a new platform for observing the motile activity of myosin motors. On multiwall CNTs (diameter similar to 170 nm; length similar to 10 mu m) coated with skeletal-muscle myosin, the ATP-driven sliding of single actin filaments was clearly observable. The normal sliding speed was similar to 6 mu m/s. Locally irradiating one end of the CNT with a red laser (642 nm), without directly irradiating the active myosin motors, accelerated the sliding speed to similar to 12 mu m/s, indicating the reversible activation of protein function on a single CNT in real time. The temperature along the CNT, which was estimated from the temperature-dependence of the sliding speed, decreased with the distance from the irradiated spot. Using these results with the finite element method, we calculated a first estimation of the thermal conductivity of multiwall CNTs in solution, as 1540 +/- 260 (Wm(-1) K-1), which is consistent with the value estimated from the width dependency of multiwall CNTs and the length dependency of single-wall CNTs in a vacuum or air. The temporal regulation of local temperature through individual CNTs should be broadly applicable to the selective activation of various biomolecules in vitro and in vivo.
机译:由于碳纳米管(CNTs)的体积小,导热系数高,因此是在生物学研究中探索单个分子水平传热的极佳候选者。为了检查单个生物分子的热调节,我们在这里开发了单个CNT,作为观察肌球蛋白马达运动活动的新平台。在涂有骨骼肌肌球蛋白的多壁碳纳米管(直径约170 nm;长度约10μm)上,可以明显观察到由ATP驱动的单肌动蛋白丝的滑动。正常的滑动速度类似于6微米/秒。在不直接照射主动肌球蛋白电机的情况下,用红色激光(642 nm)局部照射CNT的一端,将滑动速度加快到接近12μm / s,表明实际在单个CNT上蛋白质功能的可逆激活时间。根据滑动速度的温度依赖性估计的沿着CNT的温度随着距照射点的距离而降低。使用这些结果和有限元方法,我们计算出溶液中多壁CNT的热导率的第一估计为1540 +/- 260(Wm(-1)K-1),这与根据计算得出的值一致。真空或空气中多壁CNT的宽度依赖性和单壁CNT的长度依赖性。通过单个碳纳米管对局部温度的时间调节应广泛适用于体外和体内各种生物分子的选择性活化。

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