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细菌生物杂交微游动器

Bacterial Biohybrid Microswimmers.

作者信息

Bastos-Arrieta Julio, Revilla-Guarinos Ainhoa, Uspal William E, Simmchen Juliane

机构信息

Physikalische Chemie, Technische Universität Dresden, Dresden, Germany.

Department of General Microbiology, Institute of Microbiology, Technische Universität Dresden, Dresden, Germany.

出版信息

Front Robot AI. 2018 Aug 29;5:97. doi: 10.3389/frobt.2018.00097. eCollection 2018.

Abstract

Over millions of years, Nature has optimized the motion of biological systems at the micro and nanoscales. Motor proteins to motile single cells have managed to overcome Brownian motion and solve several challenges that arise at low Reynolds numbers. In this review, we will briefly describe naturally motile systems and their strategies to move, starting with a general introduction that surveys a broad range of developments, followed by an overview about the physical laws and parameters that govern and limit motion at the microscale. We characterize some of the classes of biological microswimmers that have arisen in the course of evolution, as well as the hybrid structures that have been constructed based on these, ranging from Montemagno's ATPase motor to the SpermBot. Thereafter, we maintain our focus on bacteria and their biohybrids. We introduce the inherent properties of bacteria as a natural microswimmer and explain the different principles bacteria use for their motion. We then elucidate different strategies that have been employed for the coupling of a variety of artificial microobjects to the bacterial surface, and evaluate the different effects the coupled objects have on the motion of the "biohybrid." Concluding, we give a short overview and a realistic evaluation of proposed applications in the field.

摘要

在数百万年的时间里,大自然优化了生物系统在微观和纳米尺度上的运动。从驱动蛋白到游动单细胞,都成功克服了布朗运动,并解决了在低雷诺数下出现的若干挑战。在本综述中,我们将简要描述自然游动系统及其运动策略,首先进行一个广泛涵盖众多进展的总体介绍,接着概述支配和限制微观尺度运动的物理定律及参数。我们将描述一些在进化过程中出现的生物微游动器类别,以及基于这些构建的混合结构,从蒙特马尼奥的ATP酶马达到精子机器人。此后,我们将重点放在细菌及其生物杂交体上。我们介绍细菌作为天然微游动器的固有特性,并解释细菌用于运动的不同原理。然后,我们阐明将各种人造微物体与细菌表面耦合所采用的不同策略,并评估耦合物体对“生物杂交体”运动的不同影响。最后,我们对该领域中提出的应用进行简要概述和实际评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5d5/7805739/c5033b522582/frobt-05-00097-g0001.jpg

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