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Responsive Microgrooves for the Formation of Harvestable Tissue Constructs

机译:响应性microgrooves形成可收获的组织结构

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摘要

Given its biocompatibility, elasticity, and gas permeability, poly(dimethylsiloxane) (PDMS) is widely used to fabricate microgrooves and microfluidic devices for three-dimensional (3D) cell culture studies. However, conformal coating of complex PDMS devices prepared by standard microfabrication techniques with desired chemical functionality is challenging. This study describes the conformal coating of PDMS microgrooves with poly(N-isopropylacrylamide) (PNIPAAm) by using initiated chemical vapor deposition (iCVD). These microgrooves guided the formation of tissue constructs from NIH-3T3 fibroblasts that could be retrieved by the temperature-dependent swelling property and hydrophilicity change of the PNIPAAm. The thickness of swollen PNIPAAm films at 24 °C was approximately 3 times greater than at 37 °C. Furthermore, PNIPAAm-coated microgroove surfaces exhibit increased hydrophilicity at 24 °C (contact angle θ = 30° ± 2) compared to 37 °C (θ = 50° ± 1). Thus PNIPAAm film on the microgrooves exhibits responsive swelling with higher hydrophilicity at room temperature, which could be used to retrieve tissue constructs. The resulting tissue constructs were the same size as the grooves and could be used as modules in tissue fabrication. Given its ability to form and retrieve cell aggregates and its integration with standard microfabrication, PNIPAAm-coated PDMS templates may become useful for 3D cell culture applications in tissue engineering and drug discovery.
机译:鉴于其生物相容性,弹性和透气性,聚(二甲基硅氧烷)(PDMS)被广泛用于制造微槽和微流体装置,用于三维(3D)细胞培养研究。然而,通过具有所需化学功能的标准微细加工技术制备的复杂PDMS设备的保形涂层具有挑战性。这项研究描述了通过使用引发化学气相沉积(iCVD)用聚(N-异丙基丙烯酰胺)(PNIPAAm)保形的PDMS微沟槽的保形涂层。这些微槽引导了NIH-3T3成纤维细胞的组织构建体的形成,可以通过PNIPAAm的温度依赖性溶胀特性和亲水性变化来回收它们。在24°C下膨胀的PNIPAAm膜的厚度大约是在37°C下的3倍。此外,与37°C(θ= 50°±1)相比,涂有PNIPAAm的微槽表面在24°C(接触角θ= 30°±2)时表现出更高的亲水性。因此,微槽上的PNIPAAm膜在室温下表现出具有较高亲水性的响应性溶胀,可用于回收组织构造。所得的组织构造与凹槽的尺寸相同,并且可以用作组织制造中的模块。鉴于其形成和回收细胞聚集体的能力以及与标准微细加工的集成,PNIPAAm涂层的PDMS模板对于在组织工程和药物发现中的3D细胞培养应用可能变得有用。

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