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Comprehensive chronic laminar single-unit, multi-unit, and local field potential recording performance with planar single shank electrode arrays

机译:平面单柄电极阵列全面的慢性层流单单位,多单位和局部场电势记录性能

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摘要

Background:\udIntracortical electrode arrays that can record extracellular action potentials from small, targeted groups of neurons are critical for basic neuroscience research and emerging clinical applications. In general, these electrode devices suffer from reliability and variability issues, which have led to comparative studies of existing and emerging electrode designs to optimize performance. Comparisons of different chronic recording devices have been limited to single-unit (SU) activity and employed a bulk averaging approach treating brain architecture as homogeneous with respect to electrode distribution.\udNew method:\udIn this study, we optimize the methods and parameters to quantify evoked multi-unit (MU) and local field potential (LFP) recordings in eight mice visual cortices.\udResults:\udThese findings quantify the large recording differences stemming from anatomical differences in depth and the layer dependent relative changes to SU and MU recording performance over 6-months. For example, performance metrics in Layer V and stratum pyramidale were initially higher than Layer II/III, but decrease more rapidly. On the other hand, Layer II/III maintained recording metrics longer. In addition, chronic changes at the level of layer IV are evaluated using visually evoked current source density.\udComparison with existing method(s):\udThe use of MU and LFP activity for evaluation and tracking biological depth provides a more comprehensive characterization of the electrophysiological performance landscape of microelectrodes.\udConclusions:\udA more extensive spatial and temporal insight into the chronic electrophysiological performance over time will help uncover the biological and mechanical failure mechanisms of the neural electrodes and direct future research toward the elucidation of design optimization for specific applications.
机译:背景:皮质内电极阵列可以记录来自小的,有针对性的神经元组的细胞外动作电位,对基础神经科学研究和新兴临床应用至关重要。通常,这些电极装置遭受可靠性和可变性问题的困扰,这导致了对现有和新兴电极设计的比较研究以优化性能。比较不同的慢性记录设备仅限于单个单位(SU)活动,并采用整体平均方法将大脑结构在电极分布方面视为均匀。\ ud新方法:\ ud在本研究中,我们优化了方法和参数以对八只小鼠视觉皮层中诱发的多单位(MU)和局部场电位(LFP)记录进行量化。表现超过6个月。例如,第V层和金字塔层的性能指标最初高于第II / III层,但下降得更快。另一方面,第II / III层保持记录指标的时间更长。此外,使用目测诱发的电流源密度评估IV层水平的慢性变化。\ ud与现有方法的比较:\ ud使用MU和LFP活性评估和跟踪生物深度提供了更全面的特征微电极的电生理性能概况。 。

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