执行机构
材料科学
纳米技术
微流控
结构着色
仿生学
软机器人
各向异性
人工肌肉
基质(水族馆)
生物医学工程
光电子学
计算机科学
光子晶体
光学
人工智能
工程类
海洋学
物理
地质学
作者
Yixuan Shang,Zhuoyue Chen,Fanfan Fu,Lingyu Sun,Changmin Shao,Wei Jin,Hong Liu,Yuanjin Zhao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2018-12-19
卷期号:13 (1): 796-802
被引量:116
标识
DOI:10.1021/acsnano.8b08230
摘要
Biohybrid actuators composed of living tissues and artificial materials have attracted increasing interest in recent years because of their extraordinary function of dynamically sensing and interacting with complex bioelectrical signals. Here, a compound biohybrid actuator with self-driven actuation and self-reported feedback is designed based on an anisotropic inverse opal substrate with periodical elliptical macropores and a hydrogel filling. The benefit of the anisotropic surface topography and high biocompatibility of the hydrogel is that the planted cardiomyocytes could be induced into a highly ordered alignment with recovering autonomic beating ability on the elastic substrate. Because of the cell elongation and contraction during cardiomyocyte beating, the anisotropic inverse opal substrates undergo a synchronous cycle of deformation actuations, which can be reported as corresponding shifts of their photonic band gaps and structural colors. These self-driven biohybrid actuators could be used as elements for the construction of a soft-bodied structural color robot, such as a biomimetic guppy with a swinging tail. Besides, with the integration of a self-driven biohybrid actuator and microfluidics, the advanced heart-on-a-chip system with the feature of microphysiological visuality has been developed for integrated cell monitoring and drug testing. This anisotropic inverse opal-derived biohybrid actuator could be widely applied in biomedical engineering.
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