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受生物启发的激光驱动分子机车。

Bioinspired laser-operated molecular locomotive.

作者信息

Wang Zhisong

机构信息

Institute for Quantum Studies and Department of Physics, Texas A&M University, College Station, Texas 77843-4242, USA.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2004 Sep;70(3 Pt 1):031903. doi: 10.1103/PhysRevE.70.031903. Epub 2004 Sep 15.

DOI:10.1103/PhysRevE.70.031903
PMID:15524545
Abstract

Biomotors kinesin and dynein show us that robust track-walking is possible down to molecular scale. Here I design a laser-powered molecular locomotive that is able to do that on an easily constructed track. The core of the machine is its work cycle that periodically converts optical energy into mechanical work, which is further rectified into processive, directional motion. Thus the molecular locomotive is essentially beyond the famous design of molecular shuttles. Under automated laser operation, the locomotive can move a few mum per second comparable to its biological counterparts. However, this artificial motor is capable of conveniently switchable, dual directional motion in contrast to common unidirectionality of biomotors. The locomotive is also different from the big category of Brownian motors in the sense that move of the locomotive is not a result of biasing pre-existing fluctuations, rather it is directly and decisively driven by optomechanical strokes of the work cycle, generating a pulling force ten times greater than those of biomotors. Being a novel type of molecular motor as well as a powerful molecular engine, this machine will potentially enable automatic, forceful delivery of molecular building blocks with nanometer accuracy. Well within reach of established techniques, its implementation will be a significant advance in nanoscience and nanotechnology.

摘要

生物马达驱动蛋白和动力蛋白向我们展示了在分子尺度下稳健的轨道行走是可行的。在此,我设计了一种激光驱动的分子机车,它能够在一条易于构建的轨道上实现这一点。该机器的核心是其工作循环,它能周期性地将光能转化为机械功,并进一步整流为持续的定向运动。因此,这种分子机车本质上超越了著名的分子穿梭机设计。在自动激光操作下,该机车每秒能移动几微米,与生物同类相当。然而,与生物马达通常的单向性不同,这种人工马达能够方便地进行可切换的双向运动。这种机车也不同于布朗运动马达的大类,因为机车的移动不是预先存在的波动产生偏差的结果,而是直接由工作循环的光机械冲程决定性地驱动,产生的拉力比生物马达大十倍。作为一种新型分子马达以及强大的分子引擎,这台机器有望实现纳米精度的分子构建模块的自动、有力输送。由于其完全在现有技术范围内,它的实现将是纳米科学和纳米技术的一项重大进展。

相似文献

1
Bioinspired laser-operated molecular locomotive.受生物启发的激光驱动分子机车。
Phys Rev E Stat Nonlin Soft Matter Phys. 2004 Sep;70(3 Pt 1):031903. doi: 10.1103/PhysRevE.70.031903. Epub 2004 Sep 15.
2
Macroscopic transport by synthetic molecular machines.合成分子机器的宏观运输
Nat Mater. 2005 Sep;4(9):704-10. doi: 10.1038/nmat1455. Epub 2005 Aug 28.
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In silico design and testing of guiding tracks for molecular shuttles powered by kinesin motors.基于动力蛋白的分子梭导向轨道的计算机设计与测试。
Lab Chip. 2010 Jun 7;10(11):1447-53. doi: 10.1039/b926210e. Epub 2010 Mar 16.
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Biomimetics: From pulses to motors.仿生学:从脉冲到马达。
Nat Mater. 2003 Sep;2(9):573-4. doi: 10.1038/nmat973.
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Flux reversal in a two-state symmetric optical thermal ratchet.双态对称光学热棘轮中的通量反转
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Jun;71(6 Pt 1):060102. doi: 10.1103/PhysRevE.71.060102. Epub 2005 Jun 29.
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Universal optimal working cycles of molecular motors.分子马达的通用最优工作循环。
Phys Chem Chem Phys. 2011 Apr 7;13(13):6223-33. doi: 10.1039/c0cp02118k. Epub 2011 Mar 1.
7
Synthetic molecular walkers.合成分子行走器
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Brownian ratchet models of molecular motors.分子马达的布朗棘轮模型。
Cell Biochem Biophys. 2003;38(2):191-214. doi: 10.1385/CBB:38:2:191.
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Duty ratio of cooperative molecular motors.协同分子马达的占空比。
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Building a nanostructure with reversible motions using photonic energy.利用光子能量构建具有可逆运动的纳米结构。
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Kinesin is an evolutionarily fine-tuned molecular ratchet-and-pawl device of decisively locked direction.驱动蛋白是一种经过进化微调的分子棘轮棘爪装置,具有明确锁定的方向。
Biophys J. 2007 Nov 15;93(10):3363-72. doi: 10.1529/biophysj.107.108233. Epub 2007 Aug 3.