Yuan Hao, Liu Xiaoxia, Wang Liying, Ma Xing
Flexible Printed Electronic Technology Center and School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen, 518055, China.
Shenzhen Bay Laboratory, No. 9 Duxue Road, Shenzhen, 518055, China.
Bioact Mater. 2020 Dec 1;6(6):1727-1749. doi: 10.1016/j.bioactmat.2020.11.022. eCollection 2021 Jun.
Micro/nanomotors (MNMs) are miniaturized machines that can convert many kinds of energy into mechanical motion. Over the past decades, a variety of driving mechanisms have been developed, which have greatly extended the application scenarios of MNMs. Enzymes exist in natural organisms which can convert chemical energy into mechanical force. It is an innovative attempt to utilize enzymes as biocatalyst providing driving force for MNMs. The fuels for enzymatic reactions are biofriendly as compared to traditional counterparts, which makes enzyme-powered micro/nanomotors (EMNMs) of great value in biomedical field for their nature of biocompatibility. Until now, EMNMs with various shapes can be propelled by catalase, urease and many others. Also, they can be endowed with multiple functionalities to accomplish on-demand tasks. Herein, combined with the development process of EMNMs, we are committed to present a comprehensive understanding of EMNMs, including their types, propelling principles, and potential applications. In this review, we will introduce single enzyme that can be used as motor, enzyme powered molecule motors and other micro/nano-architectures. The fundamental mechanism of energy conversion process of EMNMs and crucial factors that affect their movement behavior will be discussed. The current progress of proof-of-concept applications of EMNMs will also be elaborated in detail. At last, we will summarize and prospect the opportunities and challenges that EMNMs will face in their future development.
微纳马达(MNMs)是能够将多种能量转化为机械运动的微型机器。在过去几十年里,人们开发了多种驱动机制,极大地扩展了微纳马达的应用场景。酶存在于天然生物体中,能够将化学能转化为机械力。利用酶作为生物催化剂为微纳马达提供驱动力是一种创新尝试。与传统燃料相比,酶促反应的燃料具有生物友好性,这使得酶驱动的微纳马达(EMNMs)因其生物相容性在生物医学领域具有重要价值。到目前为止,过氧化氢酶、尿素酶等多种酶能驱动各种形状的酶驱动微纳马达。此外,它们还可以被赋予多种功能以完成按需任务。在此,结合酶驱动微纳马达的发展历程,我们致力于全面介绍酶驱动微纳马达,包括其类型、推进原理和潜在应用。在这篇综述中,我们将介绍可作为马达的单一酶、酶驱动的分子马达以及其他微纳结构。我们将讨论酶驱动微纳马达能量转换过程的基本机制以及影响其运动行为的关键因素。我们还将详细阐述酶驱动微纳马达概念验证应用的当前进展。最后,我们将总结并展望酶驱动微纳马达未来发展将面临的机遇和挑战。