Sophie Armstrong, Jennifer Dyson, Lingxiao Zeng, Saeedreza Zeibi Shirejini, John Forsythe, Shaun D Gregory
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引用次数: 0
摘要
聚氨酯(PU)-有机硅共聚物因其优异的生物稳定性和耐久性在医疗应用中越来越受到青睐;然而,它们固有的疏水性限制了组织的整合。聚多巴胺(PDA)沉积是一种被广泛接受的增加生物材料表面亲水性的方法,尽管其浓度和方法在已发表的文献中有所不同。本研究探讨了PDA沉积和血浆氧化对fda批准的Elast-Eon E2A (E2A)的协同作用,以促进细胞附着和伤口愈合。E2A底物在不同的血浆氧化周期和PDA浓度(分别为0-5分钟,0-0.5 w v-1%)下处理。0.05 w v-1% PDA和1分钟氧血浆的结合导致水接触角(92°至19°)的显著降低,成纤维细胞粘附(33.0-53.2细胞mm-2)和细胞直径的增加,细胞内和细胞外胶原I和纤维连接蛋白的总体增加。x射线光电子能谱(XPS)显示表面化学变化明显,而表面粗糙度保持不变。全血黏附试验未见血小板黏附及体积变化。这些参数可能为修改pu共聚物提供一种改进的方法,以增强细胞相互作用,用于当前和未来的医疗植入物,包括一套需要材料延展性和快速组织整合的心血管技术。
Combination of Polydopamine and Plasma Oxidation Increases Tissue Integration of Polyurethane-Silicone Copolymers for Cardiovascular Implants.
Polyurethane (PU)-silicone co-polymers are increasingly favored in medical applications due to their excellent biostability and durability; however, their intrinsic hydrophobicity limits tissue integration. Polydopamine (PDA) deposition is a widely accepted method for increasing biomaterial surface hydrophilicity, though concentrations and methods vary across published literature. This study investigates the synergistic effects of PDA deposition and plasma oxidation on FDA-approved Elast-Eon E2A (E2A) to enhance cell attachment and wound healing. E2A substrates are treated with a range of plasma oxidation periods and PDA concentrations (0-5 min, 0-0.5 w v-1% respectively). The combination of 0.05 w v-1% PDA and 1-minute oxygen plasma results in the most significant reduction in water contact angle (92to 19°), increase in fibroblast adhesion (33.0-53.2 cells mm-2) and cell diameter, with an overall increase in intra- and extracellular collagen I and fibronectin. X-ray photoelectron spectroscopy (XPS) reveals significant surface chemical changes, while surface roughness remains unchanged. Whole blood adhesion tests show no change in platelet adhesion or volume. These parameters may offer an improved approach for modifying PU-copolymers to enhance cell interactions for use in current and future medical implants, including a suite of cardiovascular technologies that require both material ductility and rapid tissue integration.
期刊介绍:
Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.