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通过RGD融合的贻贝粘附蛋白原位募集内皮细胞和内皮祖细胞实现管状血管移植物的体内内皮化。

In vivo endothelization of tubular vascular grafts through in situ recruitment of endothelial and endothelial progenitor cells by RGD-fused mussel adhesive proteins.

作者信息

Kang Tae-Yun, Lee Jung Ho, Kim Bum Jin, Kang Jo-A, Hong Jung Min, Kim Byoung Soo, Cha Hyung Joon, Rhie Jong-Won, Cho Dong-Woo

机构信息

Department of Biomedical Engineering, Yale University, New Haven, CT 06520, USA.

出版信息

Biofabrication. 2015 Jan 20;7(1):015007. doi: 10.1088/1758-5090/7/1/015007.

DOI:10.1088/1758-5090/7/1/015007
PMID:25599716
Abstract

The use of tissue mimics in vivo, including patterned vascular networks, is expected to facilitate the regeneration of functional tissues and organs with large volumes. Maintaining patency of channels in contact with blood is an important issue in the development of a functional vascular network. Endothelium is the only known completely non-thrombogenic material; however, results from treatments to induce endothelialization are inconclusive. The present study was designed to evaluate the clinical applicability of in situ recruitment of endothelial cells/endothelial progenitor cells (EC/EPC) and pre-endothelization using a recombinant mussel adhesive protein fused with arginine-glycine-aspartic acid peptide (MAP-RGD) coating in a model of vascular graft implantation. Microporous polycaprolactone (PCL) scaffolds were fabricated with salt leaching methods and their surfaces were modified with collagen and MAP-RGD. We then evaluated their anti-thrombogenicity with an in vitro hemocompatibility assessment and a 4-week implantation in the rabbit carotid artery. We observed that MAP-RGD coating reduced the possibility of early in vivo graft failure and enhanced re-endothelization by in situ recruitment of EC/EPC (patency rate: 2/3), while endothelization prior to implantation aggravated the formation of thrombosis and/or IH (patency rate: 0/3). The results demonstrated that in situ recruitment of EC/EPC by MAP-RGD could be a promising strategy for vascular applications. In addition, it rules out several issues associated with pre-endothelization, such as cell source, purity, functional modulation and contamination. Further evaluation of long term performance and angiogenesis from the luminal surface may lead to the clinical use of MAP-RGD for tubular vascular grafts and regeneration of large-volume tissues with functional vascular networks.

摘要

在体内使用组织模拟物,包括有图案的血管网络,有望促进大体积功能组织和器官的再生。在功能性血管网络的发展中,维持与血液接触的通道通畅是一个重要问题。内皮是唯一已知的完全抗血栓形成的材料;然而,诱导内皮化治疗的结果尚无定论。本研究旨在评估在血管移植物植入模型中,使用与精氨酸 - 甘氨酸 - 天冬氨酸肽融合的重组贻贝粘附蛋白(MAP-RGD)涂层原位募集内皮细胞/内皮祖细胞(EC/EPC)和预内皮化的临床适用性。采用盐析法制备微孔聚己内酯(PCL)支架,并对其表面进行胶原蛋白和MAP-RGD修饰。然后,我们通过体外血液相容性评估和在兔颈动脉中的4周植入来评估其抗血栓形成性。我们观察到,MAP-RGD涂层降低了体内早期移植物失败的可能性,并通过原位募集EC/EPC增强了再内皮化(通畅率:2/3),而植入前的内皮化加剧了血栓形成和/或内膜增生的形成(通畅率:0/3)。结果表明,MAP-RGD原位募集EC/EPC可能是一种有前途的血管应用策略。此外,它排除了与预内皮化相关的几个问题,如细胞来源、纯度、功能调节和污染。对长期性能和管腔表面血管生成的进一步评估可能会导致MAP-RGD在管状血管移植物和具有功能性血管网络的大体积组织再生中的临床应用。

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