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It is crucial to understand how neuronal activity supports cognitive process, such as learning and memory, by investigating how different brain regions dynamically interact with each other. To elucidate dynamics of the neural activity underlying cognitive tasks, large-scale extracellular electrophysiology has been conducted in freely moving animals with the aid of microdrive arrays1,2,3,4. In the past two decades, several types of microdrive array have been developed to implant electrodes into multiple brain regions for rats5,6,7,8 and mice9,10,11,12. Nonetheless, current microdrive designs generally do not allow for the use of multiple probe types, forcing researchers to choose a single electrode type with specific benefits and limitations. For example, tetrode arrays work well for densely populated brain regions such as the dorsal hippocampus CA11,13, while silicon probes give a better geometrical profile for studying anatomical connections14,15.
Tetrodes and silicon probes are often used for in vivo chronic recording, and each has its own advantages and disadvantages. Tetrodes have been proven to have significant advantages in better single unit isolation than single electrodes16,17, in addition to cost effectiveness and mechanical rigidity. They also provide higher yields of single unit activities when combined with microdrives8,18,19,20. It is essential to increase the number of simultaneously recorded neurons for understanding the function of neural circuits21. For example, large numbers of cells are needed to investigate small populations of functionally heterogeneous cell types such as time-related22 or reward coding23 cells. Much higher cell numbers are required to improve the decoding quality of spike sequences13,24,25.
Tetrodes, however, have a disadvantage in recording spatially distributed cells, such as in the cortex or thalamus. In contrast to tetrodes, silicon probes can provide spatial distribution and interaction of local field potentials (LFPs) and spiking activities within a local structure14,26. Multi-shank silicon probes further increase the number of recording sites and allow recording across single or neighboring structures27. However, such arrays are less flexible in the positioning of electrode sites compared to tetrodes. In addition, complex spike sorting algorithms are required in high-density probes to extract information about action potentials of neighboring channels to mirror the data acquired by tetrodes28,29,30. Hence, the overall yield of single units is often less than tetrodes. Moreover, silicon probes are disadvantageous due to their fragility and high cost. Thus, the choice of tetrodes vs. silicon probes depends on the aim of the recording, which is a question of whether obtaining a high yield of single-units or spatial profiling at the recording sites is prioritized.
In addition to recording neural activity, optogenetic manipulation has become one of the more powerful tools in neuroscience to examine how specific cell types and/or pathways contribute to neural circuit functions13,31,32,33. However, optogenetic experiments require additional consideration in microdrive array design to attach the fiber connector to stimulation light sources34,35,36. Often, connecting fiber-optics requires a relatively large force, which may lead to a mechanical shift of the probe in the brain. Therefore, it is not a trivial task to combine an implantable optical fiber to conventional microdrive arrays.
For the above reasons, researchers are required to optimize the selection of the type of electrode or to implant an optical fiber depending on the aim of the recording. For example tetrodes are used to achieve higher unit yield in hippocampus1,13, while silicon probes are used to investigate the laminar depth profile of cortical areas, such as the medial entorhinal cortex (MEC)37. Currently, microdrives for simultaneous implantation of tetrodes and silicon probes had been reported for rats5,11. However, it is extremely challenging to implant multiple tetrodes and silicon probes in mice because of the weight of the microdrives, limited space on the mouse head, and spatial requirements for designing the microdrive to employ different probes. Although it is possible to implant silicon probes without a microdrive, this procedure does not allow for adjustment of the probe and lowers the success rate of silicon-probe recovery12,38. Furthermore, optogenetic experiments require additional considerations in microdrive array design. This protocol demonstrates how to construct and implant a microdrive array for chronic recording in freely moving mice, which allows implantation of nine independently adjustable tetrodes and one adjustable opto-silicon probe. This microdrive array also facilitates optogenetic experiments and recovery of the silicon probe.