Combining Cortical Voltage Imaging and Hippocampal Electrophysiology for Investigating Global, Multi-Timescale Activity Interactions in the Brain

Int J Mol Sci. 2022 Jun 19;23(12):6814. doi: 10.3390/ijms23126814.

Abstract

A new generation of optogenetic tools for analyzing neural activity has been contributing to the elucidation of classical open questions in neuroscience. Specifically, voltage imaging technologies using enhanced genetically encoded voltage indicators have been increasingly used to observe the dynamics of large circuits at the mesoscale. Here, we describe how to combine cortical wide-field voltage imaging with hippocampal electrophysiology in awake, behaving mice. Furthermore, we highlight how this method can be useful for different possible investigations, using the characterization of hippocampal-neocortical interactions as a case study.

Keywords: GEVI; cortical activity; electrophysiology; hippocampus; mesoscale; voltage imaging.

MeSH terms

  • Animals
  • Brain Mapping / methods
  • Brain* / diagnostic imaging
  • Brain* / physiology
  • Cardiac Electrophysiology
  • Hippocampus / diagnostic imaging
  • Mice
  • Optogenetics*

Grants and funding

This work was funded by the European Union’s Horizon 2020 research and innovation program (M-Gate, grant agreement no. 765549; F.P.B.), and the European Research Council (ERC) Advanced Grant “REPLAY-DMN” (grant agreement no. 833964; F.P.B.). The Knopfel lab has been generously funded by the National Institutes of Health BRAIN Initiative (Grants 1U01-MH-109091 and 5U01-NS-099573).