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Selective hydrophilic modification of Parylene C films: a new approach to cell micro-patterning for synthetic biology applications

机译:聚对二甲苯C膜的选择性亲水改性:一种用于合成生物学应用的细胞微图案化新方法

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摘要

We demonstrate a simple, accurate and versatile method to manipulate Parylene C, a material widely known for its high biocompatibility, and transform it to a substrate that can effectively control the cellular microenvironment and consequently affect the morphology and function of the cells in vitro. The Parylene C scaffolds are fabricated by selectively increasing the material's surface water affinity through lithography and oxygen plasma treatment, providing free bonds for attachment of hydrophilic biomolecules. The micro-engineered constructs were tested as culture scaffolds for rat ventricular fibroblasts and neonatal myocytes (NRVM), toward modeling the unique anisotropic architecture of native cardiac tissue. The scaffolds induced the patterning of extracellular matrix compounds and therefore of the cells, which demonstrated substantial alignment compared to typical unstructured cultures. Ca~(2+) cycling properties of the NRVM measured at rates of stimulation 0.5–2 Hz were significantly modified with a shorter time to peak and time to 90% decay, and a larger fluorescence amplitude (p < 0.001). The proposed technique is compatible with standard cell culturing protocols and exhibits long-term pattern durability. Moreover, it allows the integration of monitoring modalities into the micro-engineered substrates for a comprehensive interrogation of physiological parameters.
机译:我们演示了一种简单,准确和通用的方法来处理聚对二甲苯C(一种以其高生物相容性而广为人知的材料),并将其转化为可以有效控制细胞微环境并因此影响体外细胞形态和功能的底物。通过光刻和氧等离子体处理选择性地增加材料的表面水亲和力,从而提供用于结合亲水生物分子的自由键,从而制造出Parylene C支架。测试了微工程构建体作为大鼠心室成纤维细胞和新生儿心肌细胞(NRVM)的培养支架,以模拟天然心脏组织的独特各向异性结构。支架诱导了细胞外基质化合物的图案化,因此诱导了细胞的图案化,与典型的非结构化培养物相比,显示出明显的对齐方式。以0.5–2 Hz的刺激速率测量的NRVM的Ca〜(2+)循环特性得到了显着改善,具有更短的峰​​到达时间和90%衰减时间,以及更大的荧光幅度(p <0.001)。拟议的技术与标准的细胞培养协议兼容,并表现出长期的模式耐久性。此外,它允许将监视模式集成到微工程化的基板中,以全面询问生理参数。

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