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Ultrafast (400 Hz) Network Oscillations Induced in Mouse Barrel Cortex by Optogenetic Activation of Thalamocortical Axons

Overview
Journal Elife
Specialty Biology
Date 2023 May 9
PMID 37158691
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Abstract

Oscillations of extracellular voltage, reflecting synchronous, rhythmic activity in large populations of neurons, are a ubiquitous feature in the mammalian brain, and are thought to subserve important, if not fully understood roles in normal and abnormal brain function. Oscillations at different frequency bands are hallmarks of specific brain and behavioral states. At the higher end of the spectrum, 150-200 Hz ripples occur in the hippocampus during slow-wave sleep, and ultrafast (400-600 Hz) oscillations arise in the somatosensory cortices of humans and several other mammalian species in response to peripheral nerve stimulation or punctate sensory stimuli. Here we report that brief optogenetic activation of thalamocortical axons, in brain slices from mouse somatosensory (barrel) cortex, elicited in the thalamorecipient layer local field potential (LFP) oscillations which we dubbed "ripplets". Ripplets originated in the postsynaptic cortical network and consisted of a precisely repeating sequence of 2‑5 negative transients, closely resembling hippocampal ripples but, at ~400 Hz, over twice as fast. Fast-spiking (FS) inhibitory interneurons fired highly synchronous 400 Hz spike bursts entrained to the LFP oscillation, while regular-spiking (RS), excitatory neurons typically fired only 1-2 spikes per ripplet, in antiphase to FS spikes, and received synchronous sequences of alternating excitatory and inhibitory inputs. We suggest that ripplets are an intrinsically generated cortical response to a strong, synchronous thalamocortical volley, and could provide increased bandwidth for encoding and transmitting sensory information. Importantly, optogenetically induced ripplets are a uniquely accessible model system for studying synaptic mechanisms of fast and ultrafast cortical and hippocampal oscillations.

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References
1.
Beaulieu C . Numerical data on neocortical neurons in adult rat, with special reference to the GABA population. Brain Res. 1993; 609(1-2):284-92. DOI: 10.1016/0006-8993(93)90884-p. View

2.
Buzsaki G . Hippocampal sharp wave-ripple: A cognitive biomarker for episodic memory and planning. Hippocampus. 2015; 25(10):1073-188. PMC: 4648295. DOI: 10.1002/hipo.22488. View

3.
Hioki H, Okamoto S, Konno M, Kameda H, Sohn J, Kuramoto E . Cell type-specific inhibitory inputs to dendritic and somatic compartments of parvalbumin-expressing neocortical interneuron. J Neurosci. 2013; 33(2):544-55. PMC: 6704929. DOI: 10.1523/JNEUROSCI.2255-12.2013. View

4.
Kopell N, Kramer M, Malerba P, Whittington M . Are different rhythms good for different functions?. Front Hum Neurosci. 2010; 4:187. PMC: 2987659. DOI: 10.3389/fnhum.2010.00187. View

5.
Curio G . Linking 600-Hz "spikelike" EEG/MEG wavelets ("sigma-bursts") to cellular substrates: concepts and caveats. J Clin Neurophysiol. 2000; 17(4):377-96. DOI: 10.1097/00004691-200007000-00004. View