A ceramic microbridge microfluidic chip to study osteogenic differentiation of mesenchymal stem cells in bioactive ceramic immune microenvironment.

IF 18 1区 医学 Q1 ENGINEERING, BIOMEDICAL Bioactive Materials Pub Date : 2024-12-09 eCollection Date: 2025-03-01 DOI:10.1016/j.bioactmat.2024.11.005
Sheng Ye, Quanle Cao, Panxianzhi Ni, Shuting Xiong, Meng Zhong, Tun Yuan, Jing Shan, Jie Liang, Yujiang Fan, Xingdong Zhang
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Abstract

Bioactive ceramics have been used in bone tissue repair and regeneration. However, because of the complex in vivo osteogenesis process, long cycle, and difficulty of accurately tracking, the mechanism of interaction between materials and cells has yet to be fully understood, hindering its development. The ceramic microbridge microfluidic chip system may solve the problem and provide an in vitro method to simulate the microenvironment in vivo. Nevertheless, the complex microenvironment parameters of the chip system need to be studied in detail. Computer simulation bionics can provide clues for the setting of microenvironment parameters. This study used a computational bionic model to simulate the bone growth process in the presence of immune-related factors. The osteoblast differentiation of mesenchymal stem cells of calcium phosphate ceramics in a macrophage-dominated immune microenvironment was studied using a microfluidic chip system. The computational biomimetic model and microfluidic chip findings were basically consistent with the reported results of the animal experiments. These findings suggest that studying the osteogenic behavior of calcium phosphate ceramics using a microfluidic chip model is feasible. The method model provided in this study can be extended to other biomaterials, providing a viable path for their research and evaluation.

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生物活性陶瓷已被用于骨组织修复和再生。然而,由于体内成骨过程复杂、周期长、难以精确跟踪,材料与细胞之间的相互作用机理尚未完全清楚,阻碍了其发展。陶瓷微桥微流控芯片系统可以解决这一问题,并提供一种体外模拟体内微环境的方法。然而,芯片系统复杂的微环境参数还需要详细研究。计算机模拟仿生学可为微环境参数的设定提供线索。本研究利用计算仿生模型模拟了存在免疫相关因素时的骨生长过程。利用微流控芯片系统研究了在巨噬细胞主导的免疫微环境中磷酸钙陶瓷间充质干细胞的成骨细胞分化过程。计算生物仿真模型和微流控芯片的研究结果与动物实验的结果基本一致。这些发现表明,使用微流控芯片模型研究磷酸钙陶瓷的成骨行为是可行的。本研究提供的方法模型可扩展到其他生物材料,为其研究和评估提供了可行的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioactive Materials
Bioactive Materials Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
28.00
自引率
6.30%
发文量
436
审稿时长
20 days
期刊介绍: Bioactive Materials is a peer-reviewed research publication that focuses on advancements in bioactive materials. The journal accepts research papers, reviews, and rapid communications in the field of next-generation biomaterials that interact with cells, tissues, and organs in various living organisms. The primary goal of Bioactive Materials is to promote the science and engineering of biomaterials that exhibit adaptiveness to the biological environment. These materials are specifically designed to stimulate or direct appropriate cell and tissue responses or regulate interactions with microorganisms. The journal covers a wide range of bioactive materials, including those that are engineered or designed in terms of their physical form (e.g. particulate, fiber), topology (e.g. porosity, surface roughness), or dimensions (ranging from macro to nano-scales). Contributions are sought from the following categories of bioactive materials: Bioactive metals and alloys Bioactive inorganics: ceramics, glasses, and carbon-based materials Bioactive polymers and gels Bioactive materials derived from natural sources Bioactive composites These materials find applications in human and veterinary medicine, such as implants, tissue engineering scaffolds, cell/drug/gene carriers, as well as imaging and sensing devices.
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