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Spatiotemporal control of kinesin motor protein by photoswitches enabling selective single microtubule regulations

机译:光开关控制时空驱动蛋白的时空控制,从而实现选择性的单个微管调控

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摘要

Artificial control of bio-nanomachines should have a major impact on the development of controllable transport systems for specific cargo transport on chips. Precise spatiotemporal control and local regulation of the bio-motor activity will, however, be necessary if we are to accomplish such a goal. In this study, we exploited the photoswitching properties of azobenzene-based high-energy molecules and inhibitors to control a single kinesin-driven microtubule that has potential to work as a nanocarrier for molecular cargos. In particular, we could influence the local concentration and dispersion of the microtubules at any desired position and time by irradiating a local area of the motility system at one wavelength, while irradiating the entire area at another wavelength, to enrich either cis or trans isomers of photoswitches in the selected region. Furthermore, various regulations (e.g., transporting, bending, breaking) of single microtubules were possible while almost arresting ambient microtubules-all without the need for any surface patterning.
机译:生物纳米机械的人工控制应该对芯片上特定货物运输的可控运输系统的发展产生重大影响。但是,如果我们要实现这样的目标,则需要精确的时空控制和生物运动活动的局部调节。在这项研究中,我们利用基于偶氮苯的高能分子和抑制剂的光开关特性来控制单个驱动蛋白驱动的微管,该微管具有作为分子货物的纳米载体的潜力。特别是,我们可以通过在一个波长下照射运动系统的局部区域,而在另一个波长下照射整个区域,以富集顺式或反式异构体,从而在任何所需的位置和时间影响微管的局部浓度和分散。所选区域中的光电开关。此外,单个微管的各种规定(例如,运输,弯曲,折断)是可能的,而几乎阻止了周围的微管—所有这些都不需要任何表面图案。

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