Laboratory of Bioactive Polymeric Materials for Biomedical and Environmental Applications, UdR INSTM, Department of Chemistry and Industrial Chemistry, University of Pisa, Via Vecchia Livornese 1291, 56122, San Piero a Grado, Pisa, Italy.
J Mater Sci Mater Med. 2010 May;21(5):1761-9. doi: 10.1007/s10856-010-4006-8. Epub 2010 Feb 5.
Novel polymeric micro-nanostructure meshes as blood vessels substitute have been developed and investigated as a potential solution to the lack of functional synthetic small diameter vascular prosthesis. A commercial elastomeric polyurethane (Tecoflex EG-80A) and a natural biopolymer (gelatin) were successfully co-electrospun from different spinnerets on a rotating mandrel to obtain composite meshes benefiting from the mechanical characteristics of the polyurethane and the natural biopolymer cytocompatibility. Morphological analysis showed a uniform integration of micrometric (Tecoflex) and nanometric (gelatin) fibers. Exposure of the composite meshes to vapors of aqueous glutaraldehyde solution was carried out, to stabilize the gelatin fibers in an aqueous environment. Uniaxial tensile testing in wet conditions demonstrated that the analyzed Tecoflex-Gelatin specimens possessed higher extensibility and lower elastic modulus than conventional synthetic grafts, providing a closer matching to native vessels. Biological evaluation highlighted that, as compared with meshes spun from Tecoflex alone, the electrospun composite constructs enhanced endothelial cells adhesion and proliferation, both in terms of cell number and morphology. Results suggest that composite Tecoflex-Gelatin meshes could be promising alternatives to conventional vascular grafts, deserving of further studies on both their mechanical behaviour and smooth muscle cell compatibility.
新型聚合微纳米结构网格作为血管替代品已经被开发出来,并被研究作为一种解决功能性合成小直径血管假体缺乏的潜在方法。一种商业弹性体聚氨酯(Tecoflex EG-80A)和一种天然生物聚合物(明胶)从不同的喷丝头成功地共电纺到一个旋转芯轴上,以获得受益于聚氨酯的机械特性和天然生物聚合物细胞相容性的复合网格。形态分析显示出微米级(Tecoflex)和纳米级(明胶)纤维的均匀集成。将复合网格暴露于戊二醛水溶液的蒸汽中,以在水环境中稳定明胶纤维。在湿条件下的单轴拉伸测试表明,与传统的合成移植物相比,分析的 Tecoflex-明胶样品具有更高的延展性和更低的弹性模量,与天然血管更匹配。生物评估表明,与单独纺制 Tecoflex 的网格相比,电纺复合结构增强了内皮细胞的黏附和增殖,无论是在细胞数量还是形态方面。结果表明,复合 Tecoflex-明胶网格可能是传统血管移植物的有前途的替代品,值得进一步研究其机械性能和平滑肌细胞相容性。