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A vacuum-actuated microtissue stretcher for long-term exposure to oscillatory strain within a 3D matrix

机译:真空启动的微组织担架,用于长期暴露于3D矩阵内的振荡应变

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摘要

Although our understanding of cellular behavior in response to extracellular biological and mechanical stimuli has greatly advanced using conventional 2D cell culture methods, these techniques lack physiological relevance. To a cell, the extracellular environment of a 2D plastic petri dish is artificially flat, extremely rigid, static and void of matrix protein. In contrast, we developed the microtissue vacuum-actuated stretcher (MVAS) to probe cellular behavior within a 3D multicellular environment composed of innate matrix protein, and in response to continuous uniaxial stretch. An array format, compatibility with live imaging and high-throughput fabrication techniques make the MVAS highly suited for biomedical research and pharmaceutical discovery. We validated our approach by characterizing the bulk microtissue strain, the microtissue strain field and single cell strain, and by assessing F-actin expression in response to chronic cyclic strain of 10%. The MVAS was shown to be capable of delivering reproducible dynamic bulk strain amplitudes up to 13%. The strain at the single cell level was found to be 10.4% less than the microtissue axial strain due to cellular rotation. Chronic cyclic strain produced a 35% increase in F-actin expression consistent with cytoskeletal reinforcement previously observed in 2D cell culture. The MVAS may further our understanding of the reciprocity shared between cells and their environment, which is critical to meaningful biomedical research and successful therapeutic approaches.
机译:尽管我们使用常规的2D细胞培养方法已大大了解了响应细胞外生物和机械刺激的细胞行为,但这些技术缺乏生理相关性。对于细胞而言,二维塑料培养皿的细胞外环境是人为地平坦,极度刚性,静态且没有基质蛋白。相反,我们开发了微组织真空致动担架(MVAS),以探测由先天基质蛋白组成的3D多细胞环境中的细胞行为,并响应连续单轴拉伸。阵列格式,与实时成像的兼容性和高通量制造技术使MVAS非常适合生物医学研究和药物发现。我们通过表征大体微组织菌株,微组织菌株场和单细胞菌株,并评估对10%慢性循环菌株的响应性F-肌动蛋白表达,验证了我们的方法。 MVAS被证明能够提供高达13%的可重现动态整体应变幅度。由于细胞旋转,发现单细胞水平的应变比微组织轴向应变小10.4%。慢性循环菌株产生的F-肌动蛋白表达增加了35%,与先前在2D细胞培养中观察到的细胞骨架增强相一致。 MVAS可能会使我们进一步了解细胞与环境之间的互惠性,这对有意义的生物医学研究和成功的治疗方法至关重要。

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