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In Vivo Visualization of Spontaneous Activity in Neonatal Mouse Sensory Cortex at a Single-Neuron Resolution
Published on: November 21, 2023
Thalamic-evoked synaptic interactions in barrel cortex revealed by optical imaging
N Laaris1, G C Carlson, A Keller
1Department of Anatomy, Program in Neuroscience, University of Maryland School of Medicine, Baltimore, Maryland 21201, USA.
Insights
Neural activity spread in the mouse barrel cortex is modulated by thalamic input timing. NMDA receptor activity influences this spread, impacting sensory processing during behaviors like whisking.
Area of Science:
- Neuroscience
- Systems Neuroscience
- Cortical Circuits
Background:
- The barrel cortex processes sensory information from the thalamus.
- Understanding the spatiotemporal dynamics of cortical activity is crucial.
Purpose of the Study:
- To investigate how thalamocortical input patterns influence activity spread in the mouse barrel cortex.
- To elucidate the role of NMDA receptors in modulating cortical network dynamics.
Main Methods:
- Optical imaging of voltage-sensitive dye signals in an in vitro mouse barrel cortex slice preparation.
- Stimulation of thalamocortical afferents with varying current intensities and temporal patterns.
- Pharmacological manipulation using GABA(A) receptor antagonist bicuculline and NMDA receptor antagonist AP5.
Main Results:
- Low-intensity thalamic stimulation evoked localized activity.
- NMDA receptor activation (Mg(2+) removal) or high-frequency input trains dramatically increased activity spread across layers and columns.
- This enhanced spread was suppressed by AP5.
- Bicuculline modulated signal amplitude but not propagation dynamics at low concentrations; higher concentrations induced paroxysmal activity.
Conclusions:
- Thalamic input timing and NMDA receptor activation are key determinants of spatiotemporal activity spread in the barrel cortex.
- These mechanisms may underlie sensory processing during natural behaviors such as whisking.
Abstract:
We used optical imaging of voltage-sensitive dye signals to study the spatiotemporal spread of activity in the mouse barrel cortex, evoked by stimulation of thalamocortical afferents in an in vitro slice preparation. Stimulation of the thalamus, at low current intensity, results in activity largely restricted to a single barrel, and to the border between layers Vb and VI. Low concentrations of the GABA(A) receptor antagonist bicuculline increase the amplitude of the optical signals, without affecting their spatiotemporal propagation. Higher concentrations of bicuculline result in paroxysmal activity, which propagates via intracolumnar and intercolumnar excitatory pathways. Enhancing the activity of NMDA receptors, by removing Mg(2+) from the extracellular solution, dramatically alters the spatiotemporal pattern of excitation: activity spreads to supragranular and infragranular layers and adjacent barrel columns. This enhanced propagation is suppressed by the NMDA receptor antagonist AP5. A similar enhancement of activity propagation can be produced by stimulating the thalamus with a short, high-frequency pulse train. Application of AP5 suppresses the frequency-dependent spread of activity. These findings indicate that the spatiotemporal spread of activity in the barrel cortex is altered by varying the temporal patterns of thalamic inputs, via an NMDA receptor-mediated mechanism, and suggest that a similar process occurs during repetitive whisking activity.
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