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用于生物活性陶瓷中细胞迁移研究的微流控芯片结构的构建。

Construction of Microfluidic Chip Structure for Cell Migration Studies in Bioactive Ceramics.

机构信息

National Engineering Research Center for Biomaterials, Sichuan University, Chengdu, Sichuan, 610064, China.

Sichuan Testing Centre for Biomaterials and Medical Devices, Chengdu, Sichuan, 610064, China.

出版信息

Small. 2023 Oct;19(40):e2302152. doi: 10.1002/smll.202302152. Epub 2023 Jun 6.

Abstract

Cell migration is an essential bioactive ceramics property and critical for bone induction, clinical application, and mechanism research. Standardized cell migration detection methods have many limitations, including a lack of dynamic fluid circulation and the inability to simulate cell behavior in vivo. Microfluidic chip technology, which mimics the human microenvironment and provides controlled dynamic fluid cycling, has the potential to solve these questions and generate reliable models of cell migration in vitro. In this study, a microfluidic chip is reconstructed to integrate the bioactive ceramic into the microfluidic chip structure to constitute a ceramic microbridge microfluidic chip system. Migration differences in the chip system are measured. By combining conventional detection methods with new biotechnology to analyze the causes of cell migration differences, it is found that the concentration gradients of ions and proteins adsorbed on the microbridge materials are directly related to the occurrence of cell migration behavior, which is consistent with previous reports and demonstrates the effectiveness of the microfluidic chip model. This model provides in vivo environment simulation and controllability of input and output conditions superior to standardized cell migration detection methods. The microfluidic chip system provides a new approach to studying and evaluating bioactive ceramics.

摘要

细胞迁移是生物活性陶瓷的重要特性,对骨诱导、临床应用和机制研究至关重要。标准化的细胞迁移检测方法存在许多局限性,包括缺乏动态流体循环和无法模拟体内细胞行为。微流控芯片技术模拟了人体微环境,并提供了受控的动态流体循环,有潜力解决这些问题,并在体外生成可靠的细胞迁移模型。在本研究中,重构了一种微流控芯片,将生物活性陶瓷整合到微流控芯片结构中,构成陶瓷微桥微流控芯片系统。测量了芯片系统中的迁移差异。通过将传统检测方法与新技术相结合,分析细胞迁移差异的原因,发现吸附在微桥材料上的离子和蛋白质的浓度梯度与细胞迁移行为的发生直接相关,这与之前的报告一致,证明了微流控芯片模型的有效性。该模型提供了优于标准化细胞迁移检测方法的体内环境模拟和输入输出条件的可控性。微流控芯片系统为研究和评估生物活性陶瓷提供了一种新方法。

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