Structure and properties of fibrin/polyvinyl alcohol interpenetrating polymer network hydrogel as a modifying coating for small-diameter vascular grafts

V. Matveeva, M. Rezvova, T. V. Glushkova, A. V. Sergeeva, E. Krivkina, L. Antonova, L. Barbarash
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Abstract

Background: Interpenetrating polymer network (IPN) hybrid hydrogels enable regulating their properties by varying the composition and concentration of their components. Fibrin is an available natural polymer with ideal biological properties but low strength and tendency to retraction. Polyvinyl alcohol hydrogels are stable, comparable in strength to biological tissues but bioinert. Fibrin/polyvinyl alcohol (F/PVA) IPN can overcome the shortcomings of each component and create an improved material for tissue engineering.Objective: To assess the possibility of and conditions for obtaining a homogeneous IPN by subsequent fibrin polymerization and polyvinyl alcohol cryostructuring while preserving as much as possible mechanical and biological properties beneficial for tissue engineering.Methods: F/PVA IPN was obtained by subsequent fibrin polymerization (30 mg/mL) and polyvinyl alcohol cryostructuring (15, 30, and 60 mg/mL). We studied the structure using a scanning electron microscope, histology, infrared spectroscopy, and X-ray diffraction analysis. We tested mechanical properties and shrinkage of the samples. Biological features were assessed in vitro in terms of viability, cell count, proliferative and metabolic activity of EA.hy926 endothelial cell culture.Results: Our study found the maximum amount of fibrin on the surface of F30PVA15 IPN and its minimum amount on the surface of F30PVA60. These results were supported by the high biological appeal of F30PVA15 compared with F30PVA30 and F30PVA60. F30PVA60 hydrogels demonstrated shrinkage resistance compared to the template; F30PVA30 and F30PVA15 samples decreased by 1.4 and 2.5 times, respectively. Although the mechanical strength of all monocomponent hydrogels and IPN samples did not compare to that of the internal thoracic vein, F30PVA30 and F30PVA60 demonstrated better results than F30PVA15 and fibrin alone.Conclusion: Our method allows obtaining shrink-resistant IPN hydrogels with improved mechanical and tolerable biological properties at polyvinyl alcohol concentrations of > 15 mg/mL and < 60 mg/mL. However, the insufficient strength of this material limits its use in vascular engineering to a modifying coating. Received 25 January 2023. Revised 17 March 2023. Accepted 29 March 2023. Funding: This research was funded by the complex program of basic research under the Siberian Branch of the Russian Academy of Sciences within the basic research topic of Research Institute for Complex Issues of Cardiovascular Diseases No. 0419-2022-0001 “Molecular, cellular and biomechanical mechanisms of the pathogenesis of cardiovascular diseases in the development of new treatment methods based on personalized pharmacotherapy, minimally invasive medical devices, biomaterials and tissue-engineered implants”. Conflict of interest: The authors declare no conflict of interest. Contribution of the authorsConception and study design: V.G. Matveeva, M.A. RezvovaData collection and analysis: V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, E.O. Krivkina, A.V. SergeevaStatistical analysis: V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, A.V. SergeevaDrafting the article: V.G. MatveevaCritical revision of the article: V.G. Matveeva, M.A. Rezvova, L.V. Antonova, L.S. BarbarashFinal approval of the version to be published: V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, A.V. Sergeeva, E.O. Krivkina, L.V. Antonova, L.S. Barbarash
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纤维蛋白/聚乙烯醇互穿聚合物网络水凝胶小直径血管移植修饰涂层的结构与性能
背景:互穿聚合物网络(IPN)杂化水凝胶可以通过改变其组分的组成和浓度来调节其性能。纤维蛋白是一种可用的天然聚合物,具有理想的生物学性能,但强度低,易收缩。聚乙烯醇水凝胶稳定,强度与生物组织相当,但具有生物惰性。纤维蛋白/聚乙烯醇(F/PVA) IPN可以克服每种组分的缺点,为组织工程创造一种改进的材料。目的:探讨通过纤维蛋白聚合和聚乙烯醇冷冻处理获得均匀IPN的可能性和条件,同时尽可能保留有利于组织工程的力学和生物学特性。方法:采用纤维蛋白聚合(30 mg/mL)和聚乙烯醇冷冻(15、30、60 mg/mL)法制备F/PVA IPN。我们用扫描电镜、组织学、红外光谱和x射线衍射分析对其结构进行了研究。我们测试了样品的机械性能和收缩率。通过体外培养EA.hy926内皮细胞的活力、细胞计数、增殖和代谢活性等生物学特性进行评价。结果:我们的研究发现F30PVA15 IPN表面的纤维蛋白含量最多,F30PVA60表面的纤维蛋白含量最少。与F30PVA30和F30PVA60相比,F30PVA15具有更高的生物学吸引力,这也支持了这些结果。与模板相比,F30PVA60水凝胶具有抗收缩性;F30PVA30和F30PVA15样品分别下降了1.4倍和2.5倍。虽然所有单组分水凝胶和IPN样品的机械强度与胸内静脉样品的机械强度没有比较,但F30PVA30和F30PVA60的效果优于F30PVA15和单独使用纤维蛋白。结论:我们的方法可以在聚乙烯醇浓度> 15 mg/mL和< 60 mg/mL时获得抗收缩IPN水凝胶,具有改善的机械性能和耐受的生物性能。然而,这种材料的强度不足限制了它在血管工程中的应用。2023年1月25日收到。2023年3月17日修订。2023年3月29日录用。资助:本研究由俄罗斯科学院西伯利亚分院基础研究综合项目资助,该项目隶属于“心血管疾病复杂问题研究所”基础研究课题(0419-2022-0001)“基于个性化药物治疗、微创医疗器械的新治疗方法开发中的心血管疾病发病机制的分子、细胞和生物力学机制”。生物材料和组织工程植入物”。利益冲突:作者声明无利益冲突。作者贡献概念和研究设计:V.G. Matveeva, M.A. Rezvova收集和分析:V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, E.O. Krivkina, A.V. sergeev统计分析:V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, A.V. sergeev文章起草:V.G. Matveeva文章的关键修改:V.G. Matveeva, M.A. Rezvova, L.V. Antonova, L.S. barbarash最终批准发布:V.G. Matveeva, M.A. Rezvova, T.V. Glushkova, A.V. Sergeeva, E.O. Krivkina, L.V. Antonova, L.S. Barbarash
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Patologiya krovoobrashcheniya i kardiokhirurgiya
Patologiya krovoobrashcheniya i kardiokhirurgiya Medicine-Cardiology and Cardiovascular Medicine
CiteScore
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发文量
42
审稿时长
12 weeks
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