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Magnetic microposts as an approach to apply forces to living cells

机译:磁性微柱作为对生命细胞施加力的一种方法

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Cells respond to mechanical forces whether applied externally or generated internally via the cytoskeleton. To study the cellular response to forces separately, we applied external forces to cells via microfabricated magnetic posts containing cobalt nanowires interspersed among an array of elastomeric posts, which acted as independent sensors to cellular traction forces. A magnetic field induced torque in the nanowires, which deflected the magnetic posts and imparted force to individual adhesions of cells attached to the array. Using this system, we examined the cellular reaction to applied forces and found that applying a step force led to an increase in local focal adhesion size at the site of application but not at nearby nonmagnetic posts. Focal adhesion recruitment was enhanced further when cells were subjected to multiple force actuations within the same time interval. Recording the traction forces in response to such force stimulation revealed two responses: a sudden loss in contractility that occurred within the first minute of stimulation or a gradual decay in contractility over several minutes. For both types of responses, the subcellular distribution of loss in traction forces was not confined to locations near the actuated micropost, nor uniformly across the whole cell, but instead occurred at discrete locations along the cell periphery. Together, these data reveal an important dynamic biological relationship between external and internal forces and demonstrate the utility of this microfabricated system to explore this interaction.
机译:细胞响应机械力,无论是外部施加还是内部通过细胞骨架产生。为了分别研究细胞对力的反应,我们通过包含钴纳米线的微细磁性桩将外力施加到细胞上,该钴纳米线散布在一系列弹性桩中,充当细胞牵引力的独立传感器。磁场在纳米线上感应出扭矩,该扭矩使磁柱偏转,并向附着在阵列上的细胞的各个粘附力施加作用力。使用该系统,我们检查了细胞对施加力的反应,发现施加阶跃力会导致施加部位的局部粘着力增大,但附近的非磁性桩则没有。当在相同的时间间隔内对细胞进行多次力驱动时,局部粘着募集会进一步增强。记录响应于这样的力刺激的牵引力揭示了两个响应:在刺激的第一分钟内发生收缩力的突然损失或在几分钟内收缩力逐渐衰减。对于这两种类型的响应,牵引力损失的亚细胞分布不仅限于致动的微柱附近,也不是整个细胞均匀分布,而是发生在沿细胞外围的离散位置。总之,这些数据揭示了外力和内力之间重要的动态生物学关系,并证明了这种微细加工系统探索这种相互作用的实用性。

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