{"title":"微流控纺丝辅助制备可调中空复合微纤维及其在体外神经模型构建中的应用","authors":"Jingyun Ma, Wei Li, Li Tian, Xinghua Gao","doi":"10.36922/ijb.1797","DOIUrl":null,"url":null,"abstract":"Microfluidic spinning, which has recently emerged as an important approach to processing hydrogels, can handle the flow in the fluid channel and generate microfibers in a controlled and mild manner, and therefore, it is suitable for cell loading, long-term culture, and tissue engineering. In this study, we utilized three-dimensional (3D) printing technology to prepare microfluidic chip templates with different microchannel heights in a one-step manner and obtained microfluidic spinning and microfiber assembly microchips. Hollow calcium alginate (CaA)/gelatin methacrylate (GelMA) composite microfibers were successfully prepared using a microfluidic spinning microchip combined with different fluid-injection strategies. The obtained hollow microfibers had one, two, or three lumens, and different inclusions could be added to the fiber walls. Hollow microfibers with a single lumen were used to load human umbilical vein endothelial cells (HUVECs) and exhibited good cell compatibility and barrier functions. We constructed a neural model based on the HUVEC-loaded hollow microfibers using a customized 3D printer. Using this established neural model, we induced the neural differentiation of rat adrenal medullary pheochromocytoma cells (PC12) using nerve growth factor. Axonal length, tubulin expression, and related gene (GAP-43 and TH) expression in PC12 cells were assessed. The current findings underscore the potential of utilizing microfluidic spinning in in vitro blood–brain barrier simulation, neuropharmaceutical and toxin evaluation, and brain-on-a-chip construction.","PeriodicalId":48522,"journal":{"name":"International Journal of Bioprinting","volume":null,"pages":null},"PeriodicalIF":6.8000,"publicationDate":"2024-01-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Preparation of tunable hollow composite microfibers assisted by microfluidic spinning and its application in the construction of in vitro neural models\",\"authors\":\"Jingyun Ma, Wei Li, Li Tian, Xinghua Gao\",\"doi\":\"10.36922/ijb.1797\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Microfluidic spinning, which has recently emerged as an important approach to processing hydrogels, can handle the flow in the fluid channel and generate microfibers in a controlled and mild manner, and therefore, it is suitable for cell loading, long-term culture, and tissue engineering. 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Axonal length, tubulin expression, and related gene (GAP-43 and TH) expression in PC12 cells were assessed. 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引用次数: 0
摘要
微流体纺丝是近年来兴起的一种加工水凝胶的重要方法,它能以可控和温和的方式处理流体通道中的流动并生成微纤维,因此适用于细胞装载、长期培养和组织工程。在这项研究中,我们利用三维(3D)打印技术一步制备了不同微通道高度的微流体芯片模板,并获得了微流体纺丝和微纤维组装微芯片。利用微流体纺丝微芯片结合不同的液体注入策略,成功制备了中空海藻酸钙(CaA)/甲基丙烯酸明胶(GelMA)复合微纤维。所制备的中空微纤维具有一个、两个或三个内腔,并可在纤维壁上添加不同的夹杂物。单腔中空微纤维用于负载人脐静脉内皮细胞(HUVEC),表现出良好的细胞相容性和屏障功能。我们使用定制的 3D 打印机,在装载了 HUVEC 的空心微纤维的基础上构建了一个神经模型。利用这一已建立的神经模型,我们使用神经生长因子诱导了大鼠肾上腺髓质嗜铬细胞瘤细胞(PC12)的神经分化。我们对 PC12 细胞的轴突长度、管蛋白表达和相关基因(GAP-43 和 TH)表达进行了评估。目前的研究结果凸显了利用微流体纺丝技术进行体外血脑屏障模拟、神经药物和毒素评估以及构建脑芯片的潜力。
Preparation of tunable hollow composite microfibers assisted by microfluidic spinning and its application in the construction of in vitro neural models
Microfluidic spinning, which has recently emerged as an important approach to processing hydrogels, can handle the flow in the fluid channel and generate microfibers in a controlled and mild manner, and therefore, it is suitable for cell loading, long-term culture, and tissue engineering. In this study, we utilized three-dimensional (3D) printing technology to prepare microfluidic chip templates with different microchannel heights in a one-step manner and obtained microfluidic spinning and microfiber assembly microchips. Hollow calcium alginate (CaA)/gelatin methacrylate (GelMA) composite microfibers were successfully prepared using a microfluidic spinning microchip combined with different fluid-injection strategies. The obtained hollow microfibers had one, two, or three lumens, and different inclusions could be added to the fiber walls. Hollow microfibers with a single lumen were used to load human umbilical vein endothelial cells (HUVECs) and exhibited good cell compatibility and barrier functions. We constructed a neural model based on the HUVEC-loaded hollow microfibers using a customized 3D printer. Using this established neural model, we induced the neural differentiation of rat adrenal medullary pheochromocytoma cells (PC12) using nerve growth factor. Axonal length, tubulin expression, and related gene (GAP-43 and TH) expression in PC12 cells were assessed. The current findings underscore the potential of utilizing microfluidic spinning in in vitro blood–brain barrier simulation, neuropharmaceutical and toxin evaluation, and brain-on-a-chip construction.
期刊介绍:
The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.