支架细胞几何形状影响内皮化性能的潜力:现有研究综述和未来展望。

Kuang Yee Ng, Noorhafiza Muhammad, Mohd Shuhidan Saleh, Siti Noor Fazliah Mohd Noor, Nur Amalina Muhammad, Kamalakanta Muduli, V K Bupesh Raja, Kah Vui Chong
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引用次数: 0

摘要

内皮化对于冠状动脉支架的成功至关重要,因为它可以降低血栓形成的风险,并确保长期的血管愈合。虽然支架材料、表面修饰和表面涂层的进步提高了支架的性能,但支架细胞几何形状(特别是细胞形状和大小)对内皮化的影响仍未得到充分探讨。这篇综述检查了受几何形状影响的细胞生长原理,从非冠状动脉支架应用中得出见解,以确定冠状动脉支架应用中的研究空白。虽然最近的研究强调了表面微观结构在内皮化中的作用,但支架细胞几何形状的影响在很大程度上仍未被探索。此外,组织工程(TE)的见解表明,优化支架几何形状可以增强内皮细胞(ECs)的粘附和增殖,从而加速再内皮化。基于这些考虑,本综述假设优化支架细胞的几何形状可以直接调节内皮细胞的行为,从而影响内皮化的性能。最后,本文批判性地评估了现有研究的局限性,并提出了利用细胞几何结构开发下一代支架的未来方向,这些支架具有更好的生物相容性和内皮化性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Potential of Stent Cell Geometry to Affect Endothelialisation Performance: A Review of Existing Research and Future Perspective.

Endothelialisation is critical for the success of coronary stents, as it mitigates thrombosis risk and ensures long-term vascular healing. While advancements in stent materials, surface modifications and surface coatings have improved stent performance, the influence of stent cell geometry (particularly cell shape and size) on endothelialisation remains underexplored. This review examines the principles of cell growth influenced by geometry, drawing insights from non-coronary stent applications to identify research gaps in coronary stent applications. While recent studies highlight the role of surface microstructure in endothelialisation, the impact of stent cell geometry remains largely unexplored. Moreover, insights from tissue engineering (TE) suggest that optimising scaffold geometry could enhance endothelial cells (ECs) adhesion and proliferation, thereby accelerating re-endothelialisation. Based on these considerations, this review hypothesizes that optimising stent cell geometry could directly regulate ECs behaviour, thereby influencing endothelialisation performance. Finally, this paper critically evaluates the limitations of existing research and proposes future directions for leveraging cell geometry in the development of next-generation stents with improved biocompatibility and endothelialisation performance.

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