膜
材料科学
聚二甲基硅氧烷
磁场
曲率
聚合物
复合材料
变形(气象学)
执行机构
化学
几何学
物理
工程类
生物化学
数学
量子力学
电气工程
作者
Valentin Chalut,Damien Le Roy,Thibault Mercier,Marie‐Charlotte Audry,Victor Vieille,Thibaut Devillers,Anne‐Laure Deman,Caterina Tomba
标识
DOI:10.1002/smsc.202400141
摘要
Magnetic polymer composites are very versatile candidates to fabricate soft robots and actuators thanks to their unique properties such as flexibility and shape memory effect. Thus, the possibility to reproduce natural shapes provides new tools for bioengineering applications. The wide panel of deformations of magnetic polymer composites can be implemented to mimic the movements and curvatures of living tissue. Herein, magnetic polymer membranes are developed to explore cell growth under curved, reversible, and controlled deformations. NdFeB/polydimethylsiloxane composite membranes (86 μm and 46 μm thick) are obtained by soft lithography and magnetized in rolled position under 3 T. Once actuated by a low magnetic field (5–86 mT), the membranes are deformed in wavy shapes with a deformation height of maximum 1.4 and 1.7 mm and a curvature radius of minimum 1.8 and 0.6 mm (86 μm and 46 μm thick membranes, respectively), for a maximum magnetic field of 86 mT. Then, Caco‐2 cell viability is studied on deformed substrates under a static (106 mT) and varying (8–78 mT) magnetic field. No increase in cell death is observed, validating a well‐characterized and promising approach for a new generation of dynamic and curved substrates for cell culture.
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