Department of Neurobiology and Anatomy, W.M. Keck Center for the Neurobiology of Learning and Memory, McGovern Medical School at the University of Texas Health Science Center, Houston, TX 77030, USA.
Department of Biology, Case Western Reserve University, Cleveland, OH 44106-7080, USA.
J Neurosci Methods. 2023 Aug 1;396:109935. doi: 10.1016/j.jneumeth.2023.109935. Epub 2023 Jul 29.
The analyses of neuronal circuits require high-throughput technologies for stimulating and recording many neurons simultaneously with single-neuron precision. Voltage-sensitive dyes (VSDs) have enabled the monitoring of membrane potentials of many (10-100 s) neurons simultaneously. Carbon fiber electrode (CFE) arrays allow for stimulation and recording of many neurons simultaneously, including intracellularly.
Combining CFE with VSD leverages the advantages of both technologies, allowing for stimulation of single neurons while recording the activity of the entire network. 3-D printing technology was used to develop a chamber to simultaneously perform VSD imaging, CFE array recording, and extracellular recording from individual glass electrodes.
Aplysia buccal ganglia were stained with VSD and imaged while also recording using a CFE array and extracellular nerve electrodes. Coincident spiking activity was recorded by VSD, CFE, and extracellular nerve electrodes. Current injection with CFE electrodes could activate and inhibit individual neurons as detected by VSD and nerve recordings.
The large size of traditional manipulators limits the number of electrodes used and the number of neurons recorded during an experiment. Here we present a method to build a 3-D printed recording chamber that includes a 3-axis micromanipulator to position a CFE array and eight 2-axis manipulators to position eight extracellular electrodes.
3-D printing technology can be used to build a custom recording chamber and micromanipulators. Combining these technologies allows for the direct modulation of the activity of neurons while recording the activity of 100 s of neurons simultaneously.
神经元回路的分析需要高通量技术,以便能够以单细胞精度同时刺激和记录大量神经元。电压敏感染料(VSD)能够同时监测多个(10-100)个神经元的膜电位。碳纤维电极(CFE)阵列允许同时刺激和记录大量神经元,包括细胞内记录。
CFE 与 VSD 相结合利用了这两种技术的优势,允许对单个神经元进行刺激,同时记录整个网络的活动。3D 打印技术被用于开发一个同时进行 VSD 成像、CFE 阵列记录和单个玻璃电极细胞外记录的腔室。
用 VSD 对海兔口腔神经节进行染色,并在使用 CFE 阵列和细胞外神经电极进行记录的同时进行成像。通过 VSD、CFE 和细胞外神经电极记录到同时发生的尖峰活动。CFE 电极的电流注入可以激活和抑制单个神经元,这可以通过 VSD 和神经记录检测到。
传统操纵器的尺寸较大,限制了实验过程中使用的电极数量和记录的神经元数量。在这里,我们提出了一种方法来构建一个 3D 打印记录腔室,该腔室包括一个 3 轴微操纵器来定位 CFE 阵列和 8 个 2 轴操纵器来定位 8 个细胞外电极。
3D 打印技术可用于构建定制记录腔室和微操纵器。将这些技术结合使用,可以直接调制神经元的活动,同时记录 100 多个神经元的活动。