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用于神经通讯电极的PEDOT/生物分子复合材料的毒性评估。

Toxicity evaluation of PEDOT/biomolecular composites intended for neural communication electrodes.

机构信息

Division of Neuronic Engineering, School of Technology and Health, Royal Institute of Technology, SE-14152 Huddinge, Sweden.

出版信息

Biomed Mater. 2009 Aug;4(4):045009. doi: 10.1088/1748-6041/4/4/045009. Epub 2009 Jul 28.

DOI:10.1088/1748-6041/4/4/045009
PMID:19636110
Abstract

Electrodes coated with the conducting polymer poly(3,4-ethylene dioxythiophene) (PEDOT) possess attractive electrochemical properties for stimulation or recording in the nervous system. Biomolecules, added as counter ions in electropolymerization, could further improve the biomaterial properties, eliminating the need for surfactant counter ions in the process. Such PEDOT/biomolecular composites, using heparin or hyaluronic acid, have previously been investigated electrochemically. In the present study, their biocompatibility is evaluated. An agarose overlay assay using L929 fibroblasts, and elution and direct contact tests on human neuroblastoma SH-SY5Y cells are applied to investigate cytotoxicity in vitro. PEDOT:heparin was further evaluated in vivo through polymer-coated implants in rodent cortex. No cytotoxic response was seen to any of the PEDOT materials tested. The examination of cortical tissue exposed to polymer-coated implants showed extensive glial scarring irrespective of implant material (Pt:polymer or Pt). However, quantification of immunological response, through distance measurements from implant site to closest neuron and counting of ED1+ cell density around implant, was comparable to those of platinum controls. These results indicate that PEDOT:heparin surfaces were non-cytotoxic and show no marked difference in immunological response in cortical tissue compared to pure platinum controls.

摘要

涂有导电聚合物聚(3,4-亚乙基二氧噻吩)(PEDOT)的电极具有用于刺激或记录神经系统的有吸引力的电化学性质。作为聚合过程中的抗衡离子添加的生物分子可以进一步改善生物材料特性,从而消除了在该过程中使用表面活性剂抗衡离子的需要。先前已经对使用肝素或透明质酸的此类 PEDOT/生物分子复合材料进行了电化学研究。在本研究中,评估了它们的生物相容性。使用 L929 成纤维细胞进行琼脂糖覆盖测定,以及对人神经母细胞瘤 SH-SY5Y 细胞进行洗脱和直接接触测试,以体外研究细胞毒性。通过在啮齿动物皮层中的聚合物涂层植入物进一步评估 PEDOT:肝素。未观察到任何测试的 PEDOT 材料的细胞毒性反应。对暴露于聚合物涂层植入物的皮质组织的检查表明,无论植入物材料(Pt:聚合物或 Pt)如何,都存在广泛的神经胶质瘢痕形成。然而,通过从植入物位置到最近神经元的距离测量和对植入物周围 ED1+细胞密度的计数,对免疫反应的定量与纯铂对照相似。这些结果表明,PEDOT:肝素表面无细胞毒性,并且与纯铂对照相比,在皮质组织中的免疫反应中没有明显差异。

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