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一种动态细胞模型,作为一种新兴的平台,可在体外再现人类血管钙化的复杂性。

A Dynamic Cellular Model as an Emerging Platform to Reproduce the Complexity of Human Vascular Calcification In Vitro.

机构信息

Institute of Clinical Physiology, National Research Council, 56124 Pisa, Italy.

Department of Clinical and Experimental Medicine, University of Pisa, 56126 Pisa, Italy.

出版信息

Int J Mol Sci. 2024 Jul 6;25(13):7427. doi: 10.3390/ijms25137427.

Abstract

Vascular calcification (VC) is a cardiovascular disease characterized by calcium salt deposition in vascular smooth muscle cells (VSMCs). Standard in vitro models used in VC investigations are based on VSMC monocultures under static conditions. Although these platforms are easy to use, the absence of interactions between different cell types and dynamic conditions makes these models insufficient to study key aspects of vascular pathophysiology. The present study aimed to develop a dynamic endothelial cell-VSMC co-culture that better mimics the in vivo vascular microenvironment. A double-flow bioreactor supported cellular interactions and reproduced the blood flow dynamic. VSMC calcification was stimulated with a DMEM high glucose calcification medium supplemented with 1.9 mM NaHPO/NaHPO (1:1) for 7 days. Calcification, cell viability, inflammatory mediators, and molecular markers (SIRT-1, TGFβ1) related to VSMC differentiation were evaluated. Our dynamic model was able to reproduce VSMC calcification and inflammation and evidenced differences in the modulation of effectors involved in the VSMC calcified phenotype compared with standard monocultures, highlighting the importance of the microenvironment in controlling cell behavior. Hence, our platform represents an advanced system to investigate the pathophysiologic mechanisms underlying VC, providing information not available with the standard cell monoculture.

摘要

血管钙化 (VC) 是一种心血管疾病,其特征是血管平滑肌细胞 (VSMC) 中钙盐沉积。用于 VC 研究的标准体外模型基于静态条件下的 VSMC 单层培养。尽管这些平台易于使用,但缺乏不同细胞类型之间的相互作用和动态条件使得这些模型不足以研究血管病理生理学的关键方面。本研究旨在开发一种更好地模拟体内血管微环境的动态内皮细胞-VSMC 共培养物。双液流生物反应器支持细胞相互作用并再现血流动力学。用补充有 1.9 mM NaHPO/NaHPO(1:1)的 DMEM 高葡萄糖钙化培养基刺激 VSMC 钙化 7 天。评估钙化、细胞活力、炎症介质和与 VSMC 分化相关的分子标志物(SIRT-1、TGFβ1)。我们的动态模型能够重现 VSMC 钙化和炎症,并证明与标准单层培养相比,参与 VSMC 钙化表型的效应物的调节存在差异,突出了微环境在控制细胞行为方面的重要性。因此,我们的平台代表了一种先进的系统,可以研究 VC 背后的病理生理机制,提供标准细胞单层培养无法获得的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc38/11242604/843e22965508/ijms-25-07427-g001.jpg

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