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交联明胶仿生涂层改善静电纺 PET 的力学和生物学性能:小口径血管移植物应用的有前途方法。

Biomimetic coating of cross-linked gelatin to improve mechanical and biological properties of electrospun PET: A promising approach for small caliber vascular graft applications.

机构信息

Laboratory for Biomaterials and Bioengineering, CRC-I, Department of Mining, Metallurgical and Materials Engineering and CHU de Quebec Research Centre, Laval University, Quebec City, QC, G1L 3L5, Canada.

Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Milan, 20133, Italy.

出版信息

J Biomed Mater Res A. 2017 Sep;105(9):2405-2415. doi: 10.1002/jbm.a.36098. Epub 2017 May 22.

Abstract

Electrospun PET (ePET) is a promising material for small caliber vascular graft applications owing to its tunable mechanical properties, biocompatibility, and nanofibrous structure that mimic the morphology of natural extracellular matrix. However, the inherent inertness of PET impairs the adhesion and proliferation of endothelial cells on the inner surface of ePET tubular grafts, hindering the formation of a functional endothelium. Gelatin coatings, owing to their ability to promote endothelialization, are a valuable approach to overcome the limitations of ePET. Herein, a novel process for the deposition of stable biomimetic coatings of gelatin on ePET tubular grafts is proposed. Electrospun PET was first aminated by plasma treatment and then coated with a gelatin hydrogel cross-linked in situ by a Michael-type addition reaction. Amination provided a superhydrophilic behavior to the ePET surface, allowing easy gelatin interpenetration along the wall thickness of the tubular structure, and the obtainment of thin coatings that maintained the morphology of ePET fibers. Gelatin coating was stable at long term in a physiological-like environment, noncytotoxic and promoted in vitro cell adhesion and proliferation. Noteworthy, the mechanical properties of gelatin-coated ePET tubular grafts were improved in terms of elastic modulus, compliance, and elastic recoil, finally better matching the characteristics of native blood vessels. Altogether, the proposed coating technique successfully combines the advantages of ePET nanofibrous structure with cross-linked gelatin biological cues and mechanical reinforcement, and emerges as a promising strategy for the development of biocompatible small caliber vascular grafts with superior biomimetic and mechanical properties. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 2405-2415, 2017.

摘要

静电纺丝 PET(ePET)是一种很有前途的材料,适用于小口径血管移植物,因为它具有可调的机械性能、生物相容性和纳米纤维结构,模仿了天然细胞外基质的形态。然而,由于 PET 的固有惰性,会损害内皮细胞在 ePET 管状移植物内表面的黏附和增殖,从而阻碍功能性内皮的形成。明胶涂层由于能够促进内皮化,是克服 ePET 局限性的一种有价值的方法。在此,提出了一种在 ePET 管状移植物上沉积稳定仿生明胶涂层的新方法。首先通过等离子体处理对静电纺丝 PET 进行氨基化,然后通过迈克尔加成反应原位交联涂覆明胶水凝胶。氨基化使 ePET 表面具有超亲水性,使得明胶很容易沿管状结构的壁厚相互渗透,并获得保持 ePET 纤维形态的薄涂层。在类似生理的环境中,明胶涂层在很长时间内保持稳定,无细胞毒性,并促进体外细胞黏附和增殖。值得注意的是,明胶涂层 ePET 管状移植物的机械性能在弹性模量、顺应性和弹性回弹方面得到了改善,最终更好地匹配了天然血管的特性。总之,所提出的涂层技术成功地将 ePET 纳米纤维结构与交联明胶生物信号和机械增强相结合,为开发具有优越仿生和机械性能的生物相容性小口径血管移植物提供了一种很有前途的策略。© 2017 Wiley Periodicals, Inc. J 生物材料研究部分 A:105A:2405-2415,2017。

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