材料科学
纳米技术
光热治疗
肌球蛋白
组织工程
生物医学工程
骨骼肌
肌肉收缩
生物物理学
解剖
生物
医学
作者
Lu Liu,Juanyan Wu,Bin Chen,Junbin Gao,Ting Li,Yicheng Ye,Hao Tian,Shuanghu Wang,Fei Wang,Jiamiao Jiang,Juanfeng Ou,Fei Tong,Fei Peng,Yingfeng Tu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2022-03-15
卷期号:16 (4): 6515-6526
被引量:47
标识
DOI:10.1021/acsnano.2c00833
摘要
Various strategies have been designed for myotube contraction and skeletal muscle stimulation in recent years, aiming in the field of skeletal muscle tissue engineering and bionics. However, most of the current approaches lack controllability and adaptability for precise stimulation, especially at the microlevel. Herein, wireless and precise activation of muscle by using magnetic biohybrid microswimmers in combination with near-infrared (NIR) laser irradiation is successfully demonstrated. Biohybrid microswimmers are fabricated by dip-coating superparamagnetic Fe3O4 nanoparticles onto the chlorella microalgae, thus endowing robust navigation in various biological media due to magnetic actuation. Under the guidance of a rotating magnetic field, the engineered microswimmer can achieve precise motion toward a single C2C12-derived myotube. Upon NIR irradiation, the photothermal effect from the incorporated Fe3O4 nanoparticles results in local temperature increments of approximately 5 °C in the targeted myotube, which could efficiently trigger the contraction of myotube. The mechanism underlying this phenomenon is a Ca2+-independent case involving direct actin–myosin interactions. In vivo muscle fiber contraction and histological test further demonstrate the effectiveness and biosafety of our design. The as-developed biohybrid microswimmer-based strategy is possible to provide a renovation for tissue engineering and bionics.
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