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多功能温敏微载体用于高通量细胞培养和无酶细胞收获。

Multifunctional Thermoresponsive Microcarriers for High-Throughput Cell Culture and Enzyme-Free Cell Harvesting.

机构信息

Laboratory for Innovations in Micro Engineering (LiME), Department of Mechanical Engineering, University of Victoria, Victoria, V8P 5C2, Canada.

Center for Advanced Materials and Related Technologies, University of Victoria, Victoria, V8P 5C2, Canada.

出版信息

Small. 2021 Nov;17(44):e2103192. doi: 10.1002/smll.202103192. Epub 2021 Sep 23.

DOI:10.1002/smll.202103192
PMID:34558181
Abstract

An effective treatment of human diseases using regenerative medicine and cell therapy approaches requires a large number of cells. Cultivation of cells on microcarriers is a promising approach due to the high surface-to-volume ratios that these microcarriers offer. Here, multifunctional temperature-responsive microcarriers (cytoGel) made of an interpenetrating hydrogel network composed of poly(N-isopropylacrylamide) (PNIPAM), poly(ethylene glycol) diacrylate (PEGDA), and gelatin methacryloyl (GelMA) are developed. A flow-focusing microfluidic chip is used to produce microcarriers with diameters in the range of 100-300 μm and uniform size distribution (polydispersity index of ≈0.08). The mechanical properties and cells adhesion properties of cytoGel are adjusted by changing the composition hydrogel composition. Notably, GelMA regulates the temperature response and enhances microcarrier stiffness. Human-derived glioma cells (U87) are grown on cytoGel in static and dynamic culture conditions with cell viabilities greater than 90%. Enzyme-free cell detachment is achieved at room temperature with up to 70% detachment efficiency. Controlled release of bioactive molecules from cytoGel is accomplished for over a week to showcase the potential use of microcarriers for localized delivery of growth factors to cell surfaces. These microcarriers hold great promise for the efficient expansion of cells for the industrial-scale culture of therapeutic cells.

摘要

采用再生医学和细胞治疗方法有效治疗人类疾病需要大量的细胞。在微载体上培养细胞是一种很有前途的方法,因为这些微载体提供了高的表面积与体积比。在这里,开发了由互穿水凝胶网络组成的多功能温敏微载体(cytoGel),该网络由聚(N-异丙基丙烯酰胺)(PNIPAM)、聚乙二醇二丙烯酸酯(PEGDA)和明胶甲基丙烯酰(GelMA)组成。使用流聚焦微流控芯片可生产直径在 100-300 μm 范围内且具有均匀尺寸分布(多分散指数约为 0.08)的微载体。通过改变水凝胶组成来调整 cytoGel 的机械性能和细胞粘附性能。值得注意的是,GelMA 调节温度响应并增强微载体的刚度。人源性神经胶质瘤细胞(U87)在静态和动态培养条件下在 cytoGel 上生长,细胞活力大于 90%。在室温下可实现无酶细胞脱离,脱离效率高达 70%。通过控制从 cytoGel 中释放生物活性分子,可以持续一周以上,展示了微载体在将生长因子局部递送到细胞表面的局部递送中的潜在用途。这些微载体为高效扩展细胞以用于治疗细胞的工业规模培养提供了巨大的潜力。

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