Department of Chemical Engineering, Auburn University, 212 Ross Hall, Auburn, AL 36849, United States.
Biomedical Engineering Department, Rensselaer Polytechnic Institute, Troy, NY 12180-3590, United States.
Acta Biomater. 2022 Oct 15;152:74-85. doi: 10.1016/j.actbio.2022.08.047. Epub 2022 Aug 26.
The aim of this study was to investigate the ability of peptides and peptide combinations to support circulating endothelial colony forming cell (ECFC) rolling and adhesion under shear flow, informing biomaterial design in moving toward rapid cardiovascular device endothelialization. ECFCs have high proliferative capability and can differentiate into endothelial cells, making them a promising cell source for endothelialization. Both single peptides and peptide combinations designed to target integrins αβ and αβ were coupled to poly(ethylene glycol) hydrogels, and their performance was evaluated by monitoring velocity patterns during the ECFC rolling process, in addition to firm adhesion (capture). Tether percentage and velocity fluctuation, a parameter newly defined here, were found to be valuable in assessing cell rolling velocity patterns and when used in combination were able to predict cell capture. REDV-containing peptides binding integrin αβ have been previously shown to reduce ECFC rolling velocity but not to support firm adhesion. This study finds that the performance of REDV-containing peptides in facilitating ECFC dynamic adhesion and capture can be improved by combination with αβ integrin-binding peptides, which support ECFC static adhesion. Moreover, when similar in length, the peptide combinations may have synergistic effects in capturing ECFCs. With matching lengths, the peptide combinations including CRRETAWAC(cyclic)+REDV, P_RGDS+KSSP_REDV, and P_RGDS+P_REDV showed high values in both tether percentage and velocity fluctuation and improvement in ECFC capture compared to the single peptides at the shear rate of 20 s. These newly identified peptide combinations have the potential to be used as vascular device coatings to recruit ECFCs. STATEMENT OF SIGNIFICANCE: Restoration of functional endothelium following placement of stents and vascular grafts is critical for maintaining long-term patency. Endothelial colony forming cells (ECFCs) circulating in blood flow are a valuable cell source for rapid endothelialization. Here we identify and test novel peptides and peptide combinations that can potentially be used as coatings for vascular devices to support rolling and capture of ECFCs from flow. In addition to the widely used assessment of final ECFC adhesion, we also recorded the rolling process to quantitatively evaluate the interaction between ECFCs and the peptides, obtaining detailed performance of the peptides and gaining insight into effective capture molecule design. Peptide combinations targeting both integrin αβ and integrin αβ showed the highest percentages of ECFC capture.
本研究旨在探究肽和肽组合在切变流条件下支持循环内皮祖细胞(ECFC)滚动和黏附的能力,为快速实现心血管器械内皮化的生物材料设计提供信息。ECFC 具有高增殖能力,并且能够分化为内皮细胞,使其成为内皮化的有前途的细胞来源。将设计用于靶向整合素 αβ 和 αβ 的单一肽和肽组合偶联到聚乙二醇水凝胶上,并通过监测 ECFC 滚动过程中的速度模式来评估它们的性能,除了牢固的黏附(捕获)。发现连接百分比和速度波动(这里新定义的参数)对于评估细胞滚动速度模式非常有价值,并且当组合使用时,它们能够预测细胞捕获。先前已经表明,含有 REDV 的肽可以降低 ECFC 的滚动速度,但不能支持牢固的黏附。本研究发现,通过与支持 ECFC 静态黏附的 αβ 整合素结合肽组合,可以提高含有 REDV 的肽促进 ECFC 动态黏附和捕获的性能。此外,当长度相同时,肽组合可能在捕获 ECFC 方面具有协同作用。对于匹配长度,在剪切速率为 20 s 时,与单个肽相比,包括环状 CRRETAWAC(cyclic)+REDV、P_RGDS+KSSP_REDV 和 P_RGDS+P_REDV 的肽组合在连接百分比和速度波动方面均表现出高值,并且 ECFC 捕获得到改善。这些新鉴定的肽组合具有作为血管器械涂层的潜力,以募集 ECFC。
在放置支架和血管移植物后恢复功能性内皮对于维持长期通畅性至关重要。在血流中循环的内皮祖细胞(ECFCs)是快速内皮化的有价值的细胞来源。在这里,我们鉴定和测试了潜在的新型肽和肽组合,它们可以用作血管设备的涂层,以支持从流动中滚动和捕获 ECFC。除了广泛使用的最终 ECFC 黏附评估之外,我们还记录了滚动过程,以定量评估 ECFC 与肽之间的相互作用,从而获得肽的详细性能并深入了解有效的捕获分子设计。针对整合素 αβ 和整合素 αβ 的肽组合显示出最高的 ECFC 捕获百分比。