首页> 外文期刊>Scientific reports. >Enhanced Flexible Tubular Microelectrode with Conducting Polymer for Multi-Functional Implantable Tissue-Machine Interface
【24h】

Enhanced Flexible Tubular Microelectrode with Conducting Polymer for Multi-Functional Implantable Tissue-Machine Interface

机译:增强柔性管状微电极,具有用于多功能植入式组织界面的电导聚合物

获取原文
           

摘要

Implantable biomedical microdevices enable the restoration of body function and improvement of health condition. As the interface between artificial machines and natural tissue, various kinds of microelectrodes with high density and tiny size were developed to undertake precise and complex medical tasks through electrical stimulation and electrophysiological recording. However, if only the electrical interaction existed between electrodes and muscle or nerve tissue without nutrition factor delivery, it would eventually lead to a significant symptom of denervation-induced skeletal muscle atrophy. In this paper, we developed a novel flexible tubular microelectrode integrated with fluidic drug delivery channel for dynamic tissue implant. First, the whole microelectrode was made of biocompatible polymers, which could avoid the drawbacks of the stiff microelectrodes that are easy to be broken and damage tissue. Moreover, the microelectrode sites were circumferentially distributed on the surface of polymer microtube in three dimensions, which would be beneficial to the spatial selectivity. Finally, the in vivo results confirmed that our implantable tubular microelectrodes were suitable for dynamic electrophysiological recording and simultaneous fluidic drug delivery, and the electrode performance was further enhanced by the conducting polymer modification.
机译:可植入的生物医学微生物能够恢复身体功能和改善健康状况。作为人造机器和天然组织之间的界面,通过电刺激和电生理记录开发了具有高密度和微小尺寸的各种微电极,以进行精确和复杂的医疗任务。然而,如果在没有营养因子输送的情况下只有电极和肌肉或神经组织之间存在电相互作用,则最终将导致不良诱导的骨骼肌萎缩的显着症状。在本文中,我们开发了一种与流体药物输送通道集成的新型柔性管状微电极,用于动态组织植入物。首先,整个微电极由生物相容性聚合物制成,其可以避免易于破碎和损伤组织的硬微电极的缺点。此外,微电极位点在三维聚合物微管的表面上周向分布,这将有利于空间选择性。最后,体内结果证实,我们的可植入管状微电极适用于动态电生理记录和同时流体输送,通过导电聚合物改性进一步增强电极性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号