首页> 外文期刊>Biochimica et Biophysica Acta. General Subjects >Bioelectronics meets nanomedicine for cardiovascular implants: PEDOT-based nanocoatings for tissue regeneration.
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Bioelectronics meets nanomedicine for cardiovascular implants: PEDOT-based nanocoatings for tissue regeneration.

机译:生物电子学与用于心血管植入物的纳米药物相遇:用于组织再生的基于PEDOT的纳米涂层。

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An exciting direction in nanomedicine would be to analyze how living cells respond to conducting polymers. Their application for tissue regeneration may advance the performance of drug eluting stents by addressing the delayed stent re-endothelialization and late stent thrombosis.The suitability of poly (3, 4-ethylenedioxythiophene) (PEDOT) thin films for stents to promote cell adhesion and proliferation is tested in correlation with doping and physicochemical properties. PEDOT doped either with poly (styrenesulfonate) (PSS) or tosylate anion (TOS) was used for films' fabrication by spin coating and vapor phase polymerization respectively. PEGylation of PEDOT: TOS for reduced immunogenicity and biofunctionalization of PEDOT: PSS with RGD peptides for induced cell proliferation was further applied. Atomic Force Microscopy and Spectroscopic Ellipsometry were implemented for nanotopographical, structural, optical and conductivity measurements in parallel with wettability and protein adsorption studies. Direct and extract testing of cell viability and proliferation of L929 fibroblasts on PEDOT samples by MTT assay in line with SEM studies follow.All PEDOT thin films are cytocompatible and promote human serum albumin adsorption. PEDOT:TOS films were found superior regarding cell adhesion as compared to controls. Their nanotopography and hydrophilicity are significant factors that influence cytocompatibility. PEGylation of PEDOT:TOS increases their conductivity and hydrophilicity with similar results on cell viability with bare PEDOT:TOS. The biofunctionalized PEDOT:PSS thin films show enhanced cell proliferation.The application of PEDOT polymers has evolved as a new perspective to advance stents.In this work, nanomedicine involving nanotools and novel nanomaterials merges with bioelectronics to stimulate tissue regeneration for cardiovascular implants. This article is part of a Special Issue entitled Organic Bioelectronics - Novel Applications in Biomedicine.
机译:纳米医学的一个令人兴奋的方向是分析活细胞如何对导电聚合物做出反应。它们在组织再生中的应用可通过解决延迟的支架再内皮化和晚期的支架血栓形成来提高药物洗脱支架的性能。聚(3,4-乙烯二氧噻吩)(PEDOT)薄膜对支架的适用性可促进细胞粘附和增殖。与掺杂和理化性质相关的测试。掺杂有聚苯乙烯磺酸盐(PSS)或甲苯磺酸根阴离子(TOS)的PEDOT分别通过旋涂和气相聚合法用于薄膜的制备。 PEDOT:TOS的聚乙二醇化可降低PEDOT:PSS与RGD肽的免疫原性和生物功能,从而诱导细胞增殖。实施了原子力显微镜和光谱椭偏仪,用于纳米形貌,结构,光学和电导率测量,同时进行了润湿性和蛋白质吸附研究。通过MTT分析和SEM研究,直接和提取物检测PEDOT样品上L929成纤维细胞的细胞活力和增殖。所有PEDOT薄膜均具有细胞相容性并促进人血清白蛋白吸附。发现PEDOT:TOS膜的细胞粘附性优于对照。它们的纳米形貌和亲水性是影响细胞相容性的重要因素。 PEDOT:TOS的聚乙二醇化增加了它们的电导率和亲水性,与裸PEDOT:TOS的细胞生存力相似的结果。生物功能化的PEDOT:PSS薄膜显示出增强的细胞增殖.PEDOT聚合物的应用已成为推进支架发展的新视角。在这项工作中,涉及纳米工具和新型纳米材料的纳米药物与生物电子学融合以刺激心血管植入物的组织再生。本文是《有机生物电子学-生物医学中的新型应用》一期特刊的一部分。

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