机械生物学
材料科学
原位
体内
扭矩
细胞迁移
岩石1
纳米技术
细胞
生物
细胞生物学
化学
信号转导
物理
热力学
遗传学
生物技术
有机化学
罗亚
作者
Tingting Jiang,Ye Feng,Chao Gao,Jiamiao Jiang,Bin Chen,Suyi Liu,Dailing Du,Miaomiao Ding,Rong Jiang,Zongzhen Liao,Wensheng Li,Daniela A. Wilson,Yingfeng Tu,Shuqin Song,Junqing Wang,Fei Peng
标识
DOI:10.1002/adma.202409769
摘要
Abstract Mechanical force attracts booming attention with the potential to tune the tumor cell behavior, especially in cell migration. However, the current approach for introducing mechanical input is difficult to apply in vivo. How the mechanical force affects cell behavior in situ also remains unclear. In this work, an intelligent miniaturized platform is constructed with magnetic ZnFe 2 O 4 (ZFO) micromotors. The wireless ZFO can self‐assemble in situ and rotate to generate mechanical torque of biologically relevant piconewton‐scale at the target tumor site. It is observed unexpectedly that enhanced in situ mechanical rotating torque from ZFO micromotors and the active fluid inhibit the migration of highly invasive A549 tumor cells. The down‐regulation of the Piezo1 channel and the suppressed signaling of ROCK1 in mechano‐adaptive tumor cells is found to be related to the inhibition effect. With effectiveness confirmed with the zebrafish xenograft model, this platform provides a valuable toolkit for mechanobiology and force‐associated non‐invasive tumor therapy.
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