The EU-funded ThaCSIS project aims to reveal neural circuits that allow selecting the right information at the right time. My approach towards achieving this goal is first uncovering how sensory signal flow in a cortex-wide network is shaped by different contexts and then testing whether the higher-order thalamic nucleus plays a role in the reorganization and sensory gating. To answer these questions, we have successfully developed a behavioral assay in which head-restrained mice learn to perform visual or tactile detection tasks in sequential blocks. Optogenetic suppression of posterior cortical areas deteriorated behavioral performance, indicating that cortical activity is necessary for performing the task. We measured responses to the same sensory stimuli under different behavioral conditions (passive, visual, tactile context) to identify differential cortical activity patterns in task-dependent sensory signal processing. We observed that behavioral training decreases sensory responses to sensory stimulation, and overall cortical activity patterns vary across contexts, although sensory stimulation remains identical. We are also employing correlation-based analysis to identify differences in functionally connected networks (using transfer entropy) to reveal key brain regions that exhibit differential connectivity, suggesting their involvement in task-dependent modulations of sensory signal processing. We aim to finalize our results on changes in cortical dynamics by the end of 2024.
We have established chronic electrophysiological recordings using multi-shank Neuropixel 2.0 probes to characterize task-dependent modulations of thalamic activity. This approach will allow us to acquire data from thalamic nuclei and an extensive set of subcortical regions at the cellular level with high temporal resolution. To investigate the causal role of thalamic nuclei in sensory selection and driving changes in cortical activity patterns, we established optogenetic suppression of the thalamic nuclei while simultaneously observing behavior and cortical activity through imaging methods.
The results of this project were communicated to the expert audience at an international neuroscience meetings (International Multisensory Research Forum 2023) and through invited talks (Brain Research Institute, University of Zurich, Switzerland 2022 and Turkish Neuroscience Meeting, 2023). Two manuscripts for disseminating results of the project are in preparation: one publication on the context-dependent reorganization of cortical activity patterns and cellular responses underlying global dynamics and the second one on the role of higher-order thalamic nucleus. The project activities are communicated to the general public via press releases, social media outlets, and on the project webpage.