白藜芦醇负载聚氨酯纳米纤维支架:内皮细胞和平滑肌细胞的活力

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL Biomedical materials Pub Date : 2019-11-15 DOI:10.1088/1748-605X/ab4e23
Shiva Asadpour, H. Yeganeh, F. Khademi, H. Ghanbari, J. Ai
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引用次数: 21

摘要

由于血栓形成和内膜增生等并发症,无细胞小口径组织工程血管移植物的通畅率较低。快速内皮化、抗血栓形成和抗增殖方法适用于消除这些并发症。然而,常见的抗血栓和抗增殖技术通常与血管移植物的快速内皮化不兼容。为了克服这些障碍,我们开发了负载白藜芦醇药物的纳米纤维聚氨酯支架,白藜芦醇是一种从植物中提取的天然化合物,在心血管保护方面表现出多方面的作用。研究发现,白藜芦醇在膜中的负载显著提高了改性支架的拉伸强度和杨氏模量。负载白藜芦醇的支架的拉伸强度和断裂应变接近天然血管。白藜芦醇从纳米纤维支架中的释放是以持续的方式发生的。与单独的聚氨酯相比,负载白藜芦醇的纳米纤维的抗血栓形成性增加,结果在这些支架上检测到延长了人体凝血时间和降低了溶血性。评估了人脐静脉内皮细胞和平滑肌细胞在负载白藜芦醇的支架上的生存能力。我们的研究结果表明,负载白藜芦醇的纳米纤维不仅具有适当的抗血栓特性,而且在支架表面形成单层内皮细胞,降低平滑肌细胞的生长。这些负载白藜芦醇的纳米纤维被认为是SCTEVG的潜在支架。
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Resveratrol-loaded polyurethane nanofibrous scaffold: viability of endothelial and smooth muscle cells
Acellular small-caliber tissue-engineered vascular grafts (SCTEVGs) have low patency rate due to complications including thrombosis and intimal hyperplasia. Rapid endothelialization, antithrombosis and antiproliferation approaches are suitable for dispelling these complications. Nevertheless, common antithrombosis and antiproliferation techniques are usually incompatible with rapid endothelialization on vascular grafts. To overcome these obstacles, we developed nanofibrous polyurethane scaffolds loaded with resveratrol drug, which is a natural compound extracted from plants and shows multifaceted effects in cardiovascular protection. It was found that the tensile strength and Young’s modulus in modified scaffolds were significantly increased by resveratrol loading into membranes. The tensile strengths and breaking strains of resveratrol-loaded scaffolds were close to that of native vessels. The resveratrol release profile from the nanofibrous scaffolds occurred in a sustained manner. The anti-thrombogenicity of resveratrol-loaded nanofibers increased compared to polyurethane alone, with the result that prolonged human blood clotting time and lower hemolysis were detected on these scaffolds. The viability of human umbilical vein endothelial cells and smooth muscle cells on resveratrol-loaded scaffolds was evaluated. Our findings demonstrated that resveratrol-loaded nanofibers resulted in not only appropriate antithrombotic properties, but the formation of a monolayer of endothelial cells on the scaffold surface and lower smooth muscle cell growth. These resveratrol-loaded nanofibers are suggested as potential scaffolds for SCTEVGs.
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来源期刊
Biomedical materials
Biomedical materials 工程技术-材料科学:生物材料
CiteScore
6.70
自引率
7.50%
发文量
294
审稿时长
3 months
期刊介绍: The goal of the journal is to publish original research findings and critical reviews that contribute to our knowledge about the composition, properties, and performance of materials for all applications relevant to human healthcare. Typical areas of interest include (but are not limited to): -Synthesis/characterization of biomedical materials- Nature-inspired synthesis/biomineralization of biomedical materials- In vitro/in vivo performance of biomedical materials- Biofabrication technologies/applications: 3D bioprinting, bioink development, bioassembly & biopatterning- Microfluidic systems (including disease models): fabrication, testing & translational applications- Tissue engineering/regenerative medicine- Interaction of molecules/cells with materials- Effects of biomaterials on stem cell behaviour- Growth factors/genes/cells incorporated into biomedical materials- Biophysical cues/biocompatibility pathways in biomedical materials performance- Clinical applications of biomedical materials for cell therapies in disease (cancer etc)- Nanomedicine, nanotoxicology and nanopathology- Pharmacokinetic considerations in drug delivery systems- Risks of contrast media in imaging systems- Biosafety aspects of gene delivery agents- Preclinical and clinical performance of implantable biomedical materials- Translational and regulatory matters
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