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基于明胶-聚三亚甲基碳酸酯共混物的静电纺管状构建体作为一种有潜力的血管生物材料。

Gelatin-polytrimethylene carbonate blend based electrospun tubular construct as a potential vascular biomaterial.

机构信息

Bioengineering Laboratory, Department of Textile Technology, Indian Institute of Technology, New Delhi 110016, India; Centre for Biomedical Engineering, Indian Institute of Technology, New Delhi 110016, India.

INSERM, U1148, LVTS, Université Paris 13, Université Paris Diderot, Sorbonne Paris Cité, Hôpital Bichat, 46 rue Henri Huchard, 75877 Paris Cedex 18, France.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 Jan;106:110178. doi: 10.1016/j.msec.2019.110178. Epub 2019 Sep 10.

Abstract

The present work details the fabrication of electrospun tubular scaffolds based on the biocompatible and unexploited blend of gelatin and polytrimethylene carbonate (PTMC) as a media (middle layer of blood vessel) equivalent for blood vessel regeneration. An attempt to resemble the media stimulated the selection of gelatin as a matrix (substitution for collagen) with the inclusion of the biodegradable elastomer PTMC (substitution for elastin). -The work highlights the variation of electrospinning parameters and its assiduous selection based on fiber diameter distribution and pore size distribution to obtain smooth microfibers and micropores which is reported for the first time for this blend. Electrospun conduits of gelatin-PTMC blend had fibers sized 6-8 μm and pores sized 100-150 μm. Young's modulus of 0.40 ± 0.045 MPa was observed, resembling the tunica media of the native artery (0.5 MPa). An evaluation of the surface properties, topography, and mechanical properties validated its physical requirements for inclusion in a vascular graft. Preliminary biological tests confirmed its minimal in-vitro toxicity and in-vivo biocompatibility. MTT assay (indirect) elucidated cell viability above 70% with scaffold extract, considered to be non-toxic according to the EN ISO-10993-5/12 protocol. The in-vivo subcutaneous implantation in rat showed a marked reduction in macrophages within 15 days revealing its biocompatibility and its possibility for host integration. This comprehensive study presents for the first time the potential of microporous electrospun gelatin and PTMC blend based tubular construct as a potential biomaterial for vascular tissue engineering. The proposed media equivalent included in a bilayer or trilayer polymeric construct can be a promising off-shelf vascular graft.

摘要

本工作详细介绍了基于明胶和聚三亚甲基碳酸酯(PTMC)的可生物降解和未开发的混合物的静电纺管状支架的制造,作为血管再生的等效介质(血管中层)。为了模仿介质,尝试选择明胶作为基质(替代胶原蛋白),并加入可生物降解的弹性体 PTMC(替代弹性蛋白)。-这项工作强调了静电纺丝参数的变化及其根据纤维直径分布和孔径分布的精心选择,以获得光滑的微纤维和微孔,这是该混合物首次报道的。明胶-PTMC 共混物的静电纺丝导管的纤维尺寸为 6-8 μm,孔径尺寸为100-150 μm。观察到 0.40±0.045 MPa 的杨氏模量,类似于天然动脉的中膜(0.5 MPa)。对表面性能、形貌和机械性能的评估验证了其纳入血管移植物的物理要求。初步的生物学测试证实了其在体外的最小毒性和体内的生物相容性。MTT 测定(间接)表明支架提取物的细胞活力超过 70%,根据 EN ISO-10993-5/12 协议,被认为是无毒的。在大鼠皮下植入的体内研究表明,在 15 天内巨噬细胞数量明显减少,这表明其生物相容性和宿主整合的可能性。这项综合研究首次提出了基于明胶和聚三亚甲基碳酸酯(PTMC)的微孔静电纺管状结构作为血管组织工程潜在生物材料的潜力。所提出的包含在双层或三层聚合物结构中的等效介质可以作为一种有前途的现成血管移植物。

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