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光驱动微/纳米马达:用于有前途的生物医学工具的原理、挑战与展望。

Light-Driven Micro/Nanomotor for Promising Biomedical Tools: Principle, Challenge, and Prospect.

机构信息

Department of Chemistry , The University of Hong Kong , Hong Kong 999077 , China.

出版信息

Acc Chem Res. 2018 Sep 18;51(9):1957-1965. doi: 10.1021/acs.accounts.8b00254. Epub 2018 Sep 4.

Abstract

A micro/nanomotor (MNM), as miniaturized machinery, can potentially bridge the application gap between the traditional macroscale motor and the molecular motor to manipulate materials at the cellular scale. The fascinating biomedical potential application for these tiny robots has been long envisioned by science fiction, such as "Fantastic Voyage", where complicated surgery can be performed at single cell precision without any surgical incision. However, to enter the highly conservative biomedical and healthcare industry in practice, the MNM must provide unique advantages over existing technology without introducing additional health risk, which has not been fully materialized. As an emerging approach, light-driven micro/nanomotors (LMNMs) have demonstrated several unique advantages over other MNMs, which will be addressed in this Account. As a control signal, light promises additional degrees of freedom to manipulate MNMs by modulating the light intensity, frequency, polarization, and propagation direction with spatial and temporal precision, which enables excellent controllability and programmability of LMNMs. Additionally, the fruitful knowledge and catalysts from the well-studied photocatalysis can be readily transferred to LMNMs for photoelectrochemical reactions, which provides a rich materials inventory for the development of advanced LMNM systems. A model LMNM in general can be regarded as a miniaturized solar cell combined with electrokinetic propulsion parts, where electric current is provided by the photovoltaic effect and then converted to propulsion thrust through a variety of electrokinetic mechanisms. It can be envisioned that the electric current may be further regulated with the onboard electronic circuit for advanced logic-controlled nanorobots. Finally, because incident photons instead of active chemicals provide the energy for LMNM propulsion, the highly active but toxic chemical fuels can be avoided, which suggested their better biocompatibility. It is essential to emphasize that all of these promises rely on the in-depth understanding of the photoelectrochemical reaction as well as the physics of electrokinetic phenomena, which requires further investigations. As a persistent endeavor, the biomedical application is the most attractive but challenging target for MNMs. Currently, most of the MNMs are demonstrated with in vitro conditions largely deviating from the biological environment, and nontrivial in vivo studies and cytotoxicity experiments are rarely reported. As merits of MNMs, the efficiency, biocompatibility, ion tolerance, and controllability critically determine the future success of MNMs. In this Account, existing and prospective solutions in these aspects are systemically discussed for light-propelled MNMs. We believe that, with a better understanding of the fundamental photoelectrochemical and electrokinetic processes, the development of motor design strategies, and improved fabrication methods, the promised practical biomedical application, such as early disease diagnosis, interventional therapy, targeted therapy, and microsurgery, could be realized in the near future.

摘要

微型/纳米马达(MNM)作为微型机械,可以潜在地弥合传统宏观马达和分子马达之间的应用差距,从而在细胞尺度上操纵材料。这些微型机器人在生物医学领域的应用前景令人着迷,科幻小说《神奇旅程》就曾设想过,通过这些微型机器人可以在不进行任何手术切口的情况下,以单细胞精度进行复杂的手术。然而,要想在实践中进入高度保守的生物医学和医疗保健行业,MNM 必须提供优于现有技术的独特优势,而不会带来额外的健康风险,但这尚未完全实现。作为一种新兴方法,光驱动微/纳米马达(LMNM)在许多方面具有优于其他 MNM 的独特优势,本账户将对此进行讨论。作为一种控制信号,光通过空间和时间上的精确调制光强度、频率、偏振和传播方向,为操纵 MNM 提供了额外的自由度,从而实现了 LMNM 的出色可控性和可编程性。此外,光催化中丰富的知识和催化剂可以很容易地转化为 LMNM 的光电化学反应,这为开发先进的 LMNM 系统提供了丰富的材料储备。一般来说,一个模型 LMNM 可以被视为一个微型化的太阳能电池,结合了电动推进部件,其中电流是由光伏效应提供的,然后通过各种电动机制转化为推进推力。可以想象,通过车载电子电路对电流进行进一步调节,可以实现先进的逻辑控制纳米机器人。最后,由于入射光子而不是活性化学物质为 LMNM 的推进提供能量,因此可以避免使用高活性但有毒的化学燃料,这表明它们具有更好的生物相容性。必须强调的是,所有这些承诺都依赖于对光电化学反应以及电动现象物理的深入理解,这需要进一步的研究。作为一项持续的努力,生物医学应用是 MNM 最具吸引力但也最具挑战性的目标。目前,大多数 MNM 都是在与生物环境大相径庭的体外条件下进行演示的,很少有关于体内研究和细胞毒性实验的报道。作为 MNM 的优点,效率、生物相容性、离子耐受性和可控性将极大地决定 MNM 的未来成功。在本账户中,系统地讨论了光驱动 MNM 在这些方面的现有和预期解决方案。我们相信,随着对基本光电化学和电动过程的深入了解,以及对电机设计策略的发展和改进的制造方法的改进,在不久的将来,有望实现早期疾病诊断、介入治疗、靶向治疗和微创手术等有前景的实际生物医学应用。

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