Neuroscience, University of Rochester.
Brain and Cognitive Sciences, University of Rochester.
J Vis Exp. 2023 Aug 4(198). doi: 10.3791/65397.
The marmoset monkey provides an ideal model for examining laminar cortical circuits due to its smooth cortical surface, which facilitates recordings with linear arrays. The marmoset has recently grown in popularity due to its similar neural functional organization to other primates and its technical advantages for recording and imaging. However, neurophysiology in this model poses some unique challenges due to the small size and lack of gyri as anatomical landmarks. Using custom-built micro-drives, researchers can manipulate linear array placement to sub-millimeter precision and reliably record at the same retinotopically targeted location across recording days. This protocol describes the step-by-step construction of the micro-drive positioning system and the neurophysiological recording technique with silicon linear electrode arrays. With precise control of electrode placement across recording sessions, researchers can easily traverse the cortex to identify areas of interest based on their retinotopic organization and the tuning properties of the recorded neurons. Further, using this laminar array electrode system, it is possible to apply a current source density analysis (CSD) to determine the recording depth of individual neurons. This protocol also demonstrates examples of laminar recordings, including spike waveforms isolated in Kilosort, which span multiple channels on the arrays.
狨猴为研究层状皮质回路提供了理想的模型,因为其皮质表面光滑,便于使用线性阵列进行记录。由于狨猴在神经功能组织上与其他灵长类动物相似,并且在记录和成像方面具有技术优势,因此其最近越来越受欢迎。然而,由于其体积小且缺乏作为解剖学标志的脑回,该模型中的神经生理学存在一些独特的挑战。使用定制的微驱动器,研究人员可以将线性阵列的放置精确到亚毫米级,并在整个记录日可靠地在同一视敏度靶向位置进行记录。本方案描述了微驱动器定位系统的逐步构建以及硅线性电极阵列的神经生理学记录技术。通过在记录过程中对电极位置进行精确控制,研究人员可以轻松地遍历皮质,根据其视敏度组织和记录神经元的调谐特性来识别感兴趣的区域。此外,使用这种层状阵列电极系统,可以进行电流源密度分析 (CSD) 以确定单个神经元的记录深度。该方案还展示了层状记录的示例,包括在 Kilosort 中隔离的尖峰波形,这些波形跨越了阵列上的多个通道。