Conductive polymer "molecular wires" increase conductance across artificial cell membranes

A. Widge, M. Jeffries‐EL, Y. Matsuoka
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引用次数: 1

Abstract

Highly intimate contact between an electrode and a living neuron is strongly desired by both basic neuroscientists and engineers seeking to develop more effective neural prostheses. The net resistance between electrode and cell must be decreased in order to improve the quality of recordings and deliver the minimum necessary stimulating current specifically to the target cell. The ideal situation would be to establish chronic intracellular contact, bypassing the resistance of the cell membrane and the surrounding tissue. We present here evidence that regioregular polythiophene conductive polymers increase the electrical conductance of an artificial lipid bilayer that simulates a cell membrane. Our initial data on its behavior suggest that the polymer is freely diffusing within the lipid phase. This implies that these polymers, if tethered to a larger microelectrode, could permit long-term sustainable intracellular stimulation and recording. We therefore believe that this new molecule, when further developed, has the potential to significantly improve the performance of existing chronic electrode systems and possibly to enable new types of biosensors.
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导电聚合物“分子线”增加了人工细胞膜的导电性
基础神经科学家和寻求开发更有效的神经假体的工程师都强烈希望电极和活神经元之间的高度密切接触。电极和电池之间的净电阻必须降低,以提高记录的质量,并提供最小的必要的刺激电流,专门为目标细胞。理想的情况是建立慢性细胞内接触,绕过细胞膜和周围组织的阻力。我们在这里提出的证据表明,区域规则的聚噻吩导电聚合物增加了模拟细胞膜的人工脂质双分子层的电导率。我们对其行为的初步数据表明,聚合物在脂质相内自由扩散。这意味着这些聚合物,如果拴在一个更大的微电极上,可以允许长期可持续的细胞内刺激和记录。因此,我们相信,当进一步开发时,这种新分子有可能显著提高现有慢性电极系统的性能,并可能使新型生物传感器成为可能。
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