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流体流动诱导的牙周膜干细胞球体芯片中细胞活力和成骨分化的调节。

Fluid flow-induced modulation of viability and osteodifferentiation of periodontal ligament stem cell spheroids-on-chip.

机构信息

Faculty of Dentistry, National University of Singapore, Singapore.

State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, Zhejiang, PR China.

出版信息

Biomater Sci. 2023 Nov 7;11(22):7432-7444. doi: 10.1039/d3bm01011b.

Abstract

Developing physiologically relevant models for studying periodontitis is crucial for understanding its pathogenesis and developing effective therapeutic strategies. In this study, we aimed to integrate the spheroid culture of periodontal ligament stem cells (PDLSCs) within a spheroid-on-chip microfluidic perfusion platform and to investigate the influence of interstitial fluid flow on morphogenesis, cellular viability, and osteogenic differentiation of PDLSC spheroids. PDLSC spheroids were seeded onto the spheroid-on-chip microfluidic device and cultured under static and flow conditions. Computational analysis demonstrated the translation of fluid flow rates of 1.2 μl min (low-flow) and 7.2 μl min (high-flow) to maximum fluid shear stress of 59 μPa and 360 μPa for low and high-flow conditions, respectively. The spheroid-on-chip microfluidic perfusion platform allowed for modulation of flow conditions leading to larger PDLSC spheroids with improved cellular viability under flow compared to static conditions. Modulation of fluid flow enhanced the osteodifferentiation potential of PDLSC spheroids, demonstrated by significantly enhanced alizarin red staining and alkaline phosphatase expression. Additionally, flow conditions, especially high-flow conditions, exhibited extensive calcium staining across both peripheral and central regions of the spheroids, in contrast to the predominantly peripheral staining observed under static conditions. These findings highlight the importance of fluid flow in shaping the morphological and functional properties of PDLSC spheroids. This work paves the way for future investigations exploring the interactions between PDLSC spheroids, microbial pathogens, and biomaterials within a controlled fluidic environment, offering insights for the development of innovative periodontal therapies, tissue engineering strategies, and regenerative approaches.

摘要

开发用于研究牙周炎的生理相关模型对于理解其发病机制和开发有效的治疗策略至关重要。在这项研究中,我们旨在将牙周韧带干细胞(PDLSCs)的球体培养物整合到球体芯片微流控灌注平台中,并研究间质液流对 PDLSC 球体形态发生、细胞活力和成骨分化的影响。将 PDLSC 球体接种到球体芯片微流控装置上,并在静态和流动条件下进行培养。计算分析表明,将 1.2 μl min(低流速)和 7.2 μl min(高流速)的流速转化为 59 μPa 和 360 μPa 的最大流体剪切应力,分别适用于低流速和高流速条件。球体芯片微流控灌注平台允许调节流动条件,与静态条件相比,流动条件下 PDLSC 球体更大,细胞活力更高。调节流体流动增强了 PDLSC 球体的成骨分化潜力,通过茜素红染色和碱性磷酸酶表达的显著增强得到证明。此外,与静态条件下主要观察到的外周染色不同,流动条件,特别是高流速条件,在球体的外周和中央区域都表现出广泛的钙染色。这些发现强调了流体流动在塑造 PDLSC 球体形态和功能特性方面的重要性。这项工作为未来在受控流体环境中探索 PDLSC 球体、微生物病原体和生物材料之间的相互作用的研究铺平了道路,为开发创新的牙周治疗、组织工程策略和再生方法提供了见解。

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