Department of Chemical Engineering, University of Waterloo, 200 University Avenue West, Waterloo, ON, N2L 3G1, Canada.
Waterloo Institute for Nanotechnology, University of Waterloo, 200 University Avenue West, Waterloo, ON, N2L 3G1, Canada.
Adv Healthc Mater. 2024 Oct;13(27):e2400335. doi: 10.1002/adhm.202400335. Epub 2024 Jul 15.
Cardiovascular diseases (CVDs) are the leading cause of mortality worldwide and represent a pressing clinical need. Vascular occlusions are the predominant cause of CVD and necessitate surgical interventions such as bypass graft surgery to replace the damaged or obstructed blood vessel with a synthetic conduit. Synthetic small-diameter vascular grafts (sSDVGs) are desired to bypass blood vessels with an inner diameter <6 mm yet have limited use due to unacceptable patency rates. The incorporation of biophysical cues such as topography onto the sSDVG biointerface can be used to mimic the cellular microenvironment and improve outcomes. In this review, the utility of surface topography in sSDVG design is discussed. First, the primary challenges that sSDVGs face and the rationale for utilizing biomimetic topography are introduced. The current literature surrounding the effects of topographical cues on vascular cell behavior in vitro is reviewed, providing insight into which features are optimal for application in sSDVGs. The results of studies that have utilized topographically-enhanced sSDVGs in vivo are evaluated. Current challenges and barriers to clinical translation are discussed. Based on the wealth of evidence detailed here, substrate topography offers enormous potential to improve the outcome of sSDVGs and provide therapeutic solutions for CVDs.
心血管疾病(CVDs)是全球范围内导致死亡的主要原因,也是当前面临的紧迫临床需求。血管阻塞是 CVD 的主要原因,需要进行手术干预,例如旁路移植手术,用合成导管替换受损或阻塞的血管。人们希望使用小直径合成血管移植物(sSDVG)来绕过内径<6mm 的血管,但由于通畅率不理想,其应用受到限制。在 sSDVG 生物界面上引入生物物理线索(如拓扑结构)可以模拟细胞微环境,从而改善治疗效果。本综述讨论了表面拓扑结构在 sSDVG 设计中的应用。首先,介绍了 sSDVG 面临的主要挑战以及采用仿生拓扑结构的基本原理。综述了当前关于拓扑结构对血管细胞体外行为影响的文献,深入了解哪些特征最适合应用于 sSDVG。评估了在体内使用具有增强拓扑结构的 sSDVG 的研究结果。讨论了当前临床转化面临的挑战和障碍。基于这里详细介绍的大量证据,基底拓扑结构为改善 sSDVG 的效果并为 CVD 提供治疗解决方案提供了巨大的潜力。