Arqué Xavier, Patiño Tania, Sánchez Samuel
Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology (BIST) Barcelona 08028 Spain
Bio-Organic Chemistry, Institute for Complex Molecular Systems, Eindhoven University of Technology 5600 MB Eindhoven The Netherlands.
Chem Sci. 2022 Jul 21;13(32):9128-9146. doi: 10.1039/d2sc01806c. eCollection 2022 Aug 17.
Nature has inspired the creation of artificial micro- and nanomotors that self-propel converting chemical energy into mechanical action. These tiny machines have appeared as promising biomedical tools for treatment and diagnosis and have also been used for environmental, antimicrobial or sensing applications. Among the possible catalytic engines, enzymes have emerged as an alternative to inorganic catalysts due to their biocompatibility and the variety and bioavailability of fuels. Although the field of enzyme-powered micro- and nano-motors has a trajectory of more than a decade, a comprehensive framework on how to rationally design, control and optimize their motion is still missing. With this purpose, herein we performed a thorough bibliographic study on the key parameters governing the propulsion of these enzyme-powered devices, namely the chassis shape, the material composition, the motor size, the enzyme type, the method used to incorporate enzymes, the distribution of the product released, the motion mechanism, the motion media and the technique used for motion detection. In conclusion, from the library of options that each parameter offers there needs to be a rational selection and intelligent design of enzymatic motors based on the specific application envisioned.
大自然启发了人工微纳马达的创造,这些微纳马达通过将化学能转化为机械作用来实现自我推进。这些微型机器已成为治疗和诊断方面颇具前景的生物医学工具,也被用于环境、抗菌或传感应用。在可能的催化引擎中,酶因其生物相容性以及燃料的多样性和生物可利用性,已成为无机催化剂的替代品。尽管酶驱动的微纳马达领域已有十多年的发展历程,但关于如何合理设计、控制和优化其运动的全面框架仍然缺失。为此,我们在此对控制这些酶驱动装置推进的关键参数进行了全面的文献研究,这些参数包括底盘形状、材料组成、马达尺寸、酶的类型、酶的掺入方法、释放产物的分布、运动机制、运动介质以及用于运动检测的技术。总之,基于设想的特定应用,需要从每个参数提供的选项库中对酶促马达进行合理选择和智能设计。