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Three-dimensional microfiber devices that mimic physiological environments to probe cell mechanics and signaling

机译:模仿生理环境的三维微纤维设备,可探测细胞力学和信号传导

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Many physiological systems are regulated by cells that alter their behavior in response to changes in their biochemical and mechanical environment. These cells experience this dynamic environment through an endogenous biomaterial matrix that transmits mechanical force and permits chemical exchange with the surrounding tissue. As a result, in vitro systems that mimic three-dimensional, in vivo cellular environments can enable experiments that reveal the nuanced interplay between biomechanics and physiology. Here we report the development of a minimal-profile, three-dimensional (MP3D) experimental microdevice that confines cells to a single focal plane, while allowing the precise application of mechanical displacement to cells and concomitant access to the cell membrane for perfusion with biochemical agonists. The MP3D device - an ordered microfiber scaffold erected on glass - provides a cellular environment that induces physiological cell morphologies. Small manipulations of the scaffold's microfibers allow attached cells to be mechanically probed. Due to the scaffold's minimal height profile, MP3D devices confine cells to a single focal plane, facilitating observation with conventional epifluorescent microscopy. When examining fibroblasts within MP3D devices, we observed robust cellular calcium responses to both a chemical stimulus as well as mechanical displacement of the cell membrane. The observed response differed significantly from previously reported, mechanically-induced calcium responses in the same cell type. Our findings demonstrate a key link between environment, cell morphology, mechanics, and intracellular signal transduction. We anticipate that this device will broadly impact research in fields including biomaterials, tissue engineering, and biophysics.
机译:许多生理系统受到细胞的调节,这些细胞会根据其生化和机械环境的变化而改变其行为。这些细胞通过传递机械力并允许与周围组织进行化学交换的内源性生物材料基质来经历这种动态环境。结果,模仿三维体内细胞环境的体外系统可以实现揭示生物力学与生理学之间细微相互作用的实验。在这里,我们报告了一种最小轮廓的三维(MP3D)实验微器件的开发,该器件将细胞限制在单个焦平面上,同时允许对细胞进行机械置换的精确应用以及伴随生化激动剂的灌注同时进入细胞膜。 MP3D设备-一种竖立在玻璃上的有序超细纤维支架-提供了诱导生理细胞形态的细胞环境。脚手架微纤维的细微操作可对附着的细胞进行机械探测。由于支架的最小高度轮廓,MP3D设备将细胞限制在单个焦平面上,从而便于使用常规落射荧光显微镜进行观察。当检查MP3D设备中的成纤维细胞时,我们观察到了对化学刺激以及细胞膜机械移位的强大细胞钙反应。在相同的细胞类型中,观察到的反应与先前报道的机械诱导的钙反应显着不同。我们的发现证明了环境,细胞形态,力学和细胞内信号转导之间的关键联系。我们预计该设备将广泛影响包括生物材料,组织工程和生物物理学等领域的研究。

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