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Electrically Controlled Neurochemical Release from Dual-Layer Conducting Polymer Films for Precise Modulation of Neural Network Activity in Rat Barrel Cortex

机译:从双层导电聚合物膜中电控神经化学释放用于精确调制大鼠桶状皮质的神经网络活动

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摘要

Implantable microelectrode arrays (MEAs) are important tools for investigating functional neural circuits and treating neurological diseases. Precise modulation of neural activity may be achieved by controlled delivery of neurochemicals directly from coatings on MEA electrode sites. In this study, a novel dual-layer conductive polymer/acid functionalized carbon nanotube (fCNT) microelectrode coating is developed to better facilitate the loading and controlled delivery of the neurochemical 6,7-dinitroquinoxaline-2,3-dione (DNQX). The base layer coating is consisted of poly(3,4-ethylenedioxythiophene/fCNT and the top layer is consisted of polypyrrole/fCNT/DNQX. The dual-layer coating is capable of both loading and electrically releasing DNQX and the release dynamic is characterized with fluorescence microscopy and mathematical modeling. In vivo DNQX release is demonstrated in rat somatosensory cortex. Sensory-evoked neural activity is immediately (<1s) and locally (<446 µm) suppressed by electrically triggered DNQX release. Furthermore, a single DNQX-loaded, dual-layer coating is capable of inducing effective neural inhibition for at least 26 times without observable degradation in efficacy. Incorporation of the novel drug releasing coating onto individual MEA electrodes offers many advantages over alternative methods by increasing spatial-temporal precision and improving drug selection flexibility without increasing the device’s size.
机译:植入式微电极阵列(MEA)是研究功能性神经回路和治疗神经系统疾病的重要工具。可以通过直接从MEA电极位点上的涂层控制神经化学物质的输送来实现神经活动的精确调节。在这项研究中,新型的双层导电聚合物/酸官能化碳纳米管(fCNT)微电极涂层被开发出来,以更好地促进神经化学6,7-二硝基喹喔啉-2,3-二酮(DNQX)的装载和受控递送。基层涂层由聚(3,4-乙撑二氧噻吩/ fCNT组成,顶层由聚吡咯/ fCNT / DNQX组成,该双层涂层既可以负载也可以电释放DNQX,其释放动力学具有荧光显微镜和数学建模。在大鼠体感皮层中证实了体内DNQX释放。电触发的DNQX释放立即(<1s)和局部(<446 µm)抑制了感觉诱发的神经活动。双层涂层能够诱导至少26次有效的神经抑制,而没有明显的功效下降,通过增加时空精度和改善药物选择的灵活性,将新颖的药物释放涂层结合到单个MEA电极上比替代方法具有许多优势而不会增加设备的尺寸。

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