Novel algae guiding system to robotize algae cells

N. Jiao, Lianqing Liu, Shuangxi Xie, S. Tung
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引用次数: 6

Abstract

Algae cells with natural advantages of sensing and moving at micro scale can be regarded as microrobots. While it is difficult to control the locomotion or harness the bioenergy of the cells. This study develops a novel algae guiding system to robotize the algae cell Chlamydomonas reinhardtii based on the phototaxis. Algae cells' swimming trajectory, speed and force were analyzed. Furthermore, the algae cell could be controlled to swim back and forth, and traverse a crossroad as microrobot obeying a man-made rule. Finally, we successfully controlled the motile algae cells to transport microscale loads by the algae guiding system. The robotized algae cells were expected to function in micro assembly and bring significant breakthrough in bioactuation.
新型藻类引导系统,实现藻类细胞自动化
藻类细胞具有在微观尺度上感知和移动的天然优势,可被视为微型机器人。而控制细胞的运动或利用细胞的生物能是很困难的。本研究开发了一种基于趋光性的海藻细胞莱茵衣藻诱导系统。分析了藻类细胞的游动轨迹、速度和作用力。此外,藻类细胞可以被控制来来回回游泳,并像微型机器人一样遵守人造规则穿越十字路口。最后,我们成功地利用藻类引导系统控制移动的藻类细胞进行微尺度载荷的运输。机器人藻类细胞有望在微组装中发挥作用,并在生物驱动方面取得重大突破。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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