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平滑肌细胞表型的调控促进组织工程血管移植物的转化。

Modulation of Smooth Muscle Cell Phenotype for Translation of Tissue-Engineered Vascular Grafts.

机构信息

Biomechanics and Biomaterials Design Laboratory, School of Aerospace and Mechanical Engineering, The University of Oklahoma, Norman, Oklahoma, USA.

Stephenson School of Biomedical Engineering, The University of Oklahoma, Norman, Oklahoma, USA.

出版信息

Tissue Eng Part B Rev. 2023 Oct;29(5):574-588. doi: 10.1089/ten.TEB.2023.0006. Epub 2023 May 30.

Abstract

Translation of small-diameter tissue-engineered vascular grafts (TEVGs) for the treatment of coronary artery disease (CAD) remains an unfulfilled promise. This is largely due to the limited integration of TEVGs into the native vascular wall-a process hampered by the insufficient smooth muscle cell (SMC) infiltration and extracellular matrix deposition, and low vasoactivity. These processes can be promoted through the judicious modulation of the SMC toward a synthetic phenotype to promote remodeling and vascular integration; however, the expression of synthetic markers is often accompanied by a decrease in the expression of contractile proteins. Therefore, techniques that can precisely modulate the SMC phenotypical behavior could have the potential to advance the translation of TEVGs. In this review, we describe the phenotypic diversity of SMCs and the different environmental cues that allow the modulation of SMC gene expression. Furthermore, we describe the emerging biomaterial approaches to modulate the SMC phenotype in TEVG design and discuss the limitations of current techniques. In addition, we found that current studies in tissue engineering limit the analysis of the SMC phenotype to a few markers, which are often the characteristic of early differentiation only. This limited scope has reduced the potential of tissue engineering to modulate the SMC toward specific behaviors and applications. Therefore, we recommend using the techniques presented in this review, in addition to modern single-cell proteomics analysis techniques to comprehensively characterize the phenotypic modulation of SMCs. Expanding the holistic potential of SMC modulation presents a great opportunity to advance the translation of living conduits for CAD therapeutics.

摘要

将小直径组织工程血管移植物 (TEVG) 用于治疗冠状动脉疾病 (CAD) 的转化仍然是一个未实现的承诺。这主要是由于 TEVG 与天然血管壁的整合有限——这一过程受到平滑肌细胞 (SMC) 浸润和细胞外基质沉积不足以及血管活性低的阻碍。这些过程可以通过明智地调节 SMC 向合成表型来促进重塑和血管整合来促进;然而,合成标志物的表达通常伴随着收缩蛋白表达的下降。因此,能够精确调节 SMC 表型行为的技术有可能推进 TEVG 的转化。在这篇综述中,我们描述了 SMC 的表型多样性以及允许调节 SMC 基因表达的不同环境线索。此外,我们描述了新兴的生物材料方法来调节 TEVG 设计中的 SMC 表型,并讨论了当前技术的局限性。此外,我们发现,组织工程学中的当前研究将 SMC 表型的分析限制在少数几个标志物上,这些标志物通常仅代表早期分化的特征。这种有限的范围降低了组织工程学调节 SMC 向特定行为和应用的潜力。因此,我们建议除了现代单细胞蛋白质组学分析技术外,还使用本综述中介绍的技术来全面表征 SMC 的表型调节。扩大 SMC 调节的整体潜力为推进 CAD 治疗的活导管转化提供了很好的机会。

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