传感器类型
其他(神经记录电极)
检测对象
神经元胞外动作电位(extracellular spikes/neural signals),样品基质:豚鼠听觉皮层脑组织
检测原理
该装置以微加工硅基神经电极和金记录位点作为换能器,藻酸盐水凝胶(HG)包覆电极以缓冲机械失配,PEDOT导电聚合物沉积于金位点以降低界面阻抗和噪声。检测对象为豚鼠听觉皮层神经元在噪声burst刺激下产生的胞外动作电位。神经元放电在电极附近形成局部电位变化,经电极-组织界面转换为电信号并由多通道系统采集。HG再溶胀会增大电极与神经元胞体距离,使胞外尖峰幅度下降、SNR降低;PEDOT通过增大有效表面积、改善电荷传输降低背景噪声,从而提升SNR并恢复可明确检测单元比例。信号经小波分解分离超阈值信号与噪声,计算SNR。
检测灵敏度
未报告LOD、线性范围、灵敏度斜率或R^2。
效应效果
急性记录显示,裸电极可明确检测单元比例为56%,按SNR>3.0计的活动单元约84%。HG涂层使记录质量下降:80 μm厚HG下可明确检测单元比例降至30%,平均SNR为3.91;5 μm HG已使平均SNR从4.39降至4.04,30 μm为3.92。PEDOT单独沉积未明显增加可明确检测单元比例(56%对未修饰49%),但HG+PEDOT可恢复至50%,接近裸电极,HG组为38%;平均SNR:PEDOT为4.52,HG+PEDOT为4.17。PEDOT沉积通常可使阻抗降低约两个数量级。未报告长期稳定性、RSD或实际样品回收率;作者认为HG/PEDOT涂层有望改善慢性神经电极的生物相容性与信号传输。
传感器的构成
- 基底/换能器电极:微加工硅基神经电极,金(Au)记录位点,面积1250 μm²,用于采集胞外电位
- 水凝胶缓冲层:藻酸钠(sodium alginate, MVG)1 wt%经0.5 M CaCl2离子交联形成藻酸盐水凝胶(HG),厚度5、30、80 μm,提供机械缓冲与生物相容界面
- 导电聚合物层:聚(3,4-乙烯二氧噻吩)(PEDOT)在Au位点恒电流沉积,单体EDOT 0.01 M与PSS 0.1 M,降低阻抗与噪声、恢复记录功能
- 识别元件:无特异性生物识别层,依赖邻近神经元产生的胞外动作电位
- 信号读出:Plexon多通道采集处理器(MAP)、National Instruments数据采集卡与RASPUTIN软件,配合噪声burst刺激并计算SNR
中文摘要
近年来,大量研究致力于理解影响生物电子传感器功能性的因素,并开发新型涂层技术以修饰生物传感器表面。海藻酸盐水凝胶(HG)因生物相容性良好,已被用作神经电极涂层,以促进细胞整合、提供局部药物递送支架,并在硬电极与中枢神经系统软组织之间形成机械缓冲。然而,在动物模型中使用HG包覆电极进行神经信号记录的效果仍评估不足。本研究在豚鼠听觉皮层植入微加工电极,系统考察不同厚度HG涂层下源神经元与电极位点邻近关系对记录功能的影响,并评价导电聚合物聚(3,4-乙烯二氧噻吩)(PEDOT)对改善HG包覆神经电极记录功能的作用。结果显示,较厚HG涂层导致记录功能显著下降,以可明确检测单元比例(80 μm厚涂层为30%)和平均信噪比(80 μm厚涂层为3.91)表征。而在电极位点沉积PEDOT可恢复由30 μm HG涂层造成的功能损失。此类导电聚合物/HG涂层有望通过提高电极生物相容性和促进更有效的信号传输,改善神经电极的长期性能。
英文摘要
Recently, a significant amount of effort has been dedicated to understanding factors that influence the functionality of bio-electronic sensors and to development of novel coating technologies for modifying biosensor surfaces. Due to its well-known biocompatibility, alginate hydrogel (HG) has been used as a coating material on neural electrodes for promoting intimate cellular integration, providing a scaffold for local drug delivery, and creating a mechanical buffer between hard electrodes and the soft tissues of the central nervous system. However, neural signal recordings using HG-coated electrodes in animal models are still poorly evaluated. Here, we investigated the effect of the proximity of source neurons around the electrode sites using HG coatings with various thicknesses deposited on microfabricated electrodes, implanted in auditory cortex of guinea pigs. We also evaluated the role of the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) in improving the recording functionality of the HG-coated neural electrodes. A significant loss in recording functionality was observed with thicker HG coatings, as determined by the number of clearly detectable units (30% with 80 microm thick coatings) and average signal-to-noise ratios (3.91 with 80 microm thick coatings). However, deposition of the conducting polymer PEDOT on the electrode sites restored the lost functionality of the electrodes caused by the HG coatings (30 microm). These conducting polymer/HG coatings have the potential to improve long-term performance of the neural electrodes not only by improving the electrode biocompatibility but also by facilitating more efficient signal transmission.