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Messore, F.

Publications and source records attributed to Messore, F..

3 recordsLinked to original sources

Morphoelectric properties of inhibitory neurons shift gradually and regardless of cell type along the depth of the cerebral cortex

How can we understand the enormous diversity of the GABAergic inhibitory neurons in the cerebral cortex? To address this question, we quantify the electrophysiological and morphological properties of inhibitory neurons across the depth of an entire cortical column in the rat barrel cortex. We find properties that shift gradually with the cortical depth of the cell bodies across all inhibitory neurons, regardless of their cell types. By isolating morphoelectric variations from their shifts along the cortical depth, we find that the same simple relationships between morphoelectric properties distinguish between the four main molecular cell types of inhibitory neurons at any cortical depth, and in both the rat barrel cortex and mouse primary visual cortex. We provide converging evidence from dense electron-microscopic reconstructions of inhibitory neurons in the mouse visual cortex, and observe comparable depth-dependent shifts in additional datasets from the mouse primary motor cortex and the middle temporal gyrus of the human cortex. Our findings indicate that two different sources of morphoelectric variations can account for the diversity of cortical inhibitory neurons. The first source is molecular cell type-specific, but cortical depth-independent. The second source is cortical depth-dependent, but affects inhibitory neurons similarly across all cell types. We propose that intrinsic developmental specification vs. extrinsic environmental modulation leads to such a decoupling of inhibitory type-specific properties from gradual shifts of these properties with cortical depth.

neuroscience↗

An orexin-sensitive subpopulation of layer 6 neurons regulates cortical excitability and anxiety behaviour.

Cortical layer 6 (L6) neurons uniquely respond to orexin - a neuropeptide influencing arousal and emotion. We show that Drd1a-Cre+ neurons in the prefrontal cortex are selectively sensitive to orexin and regulate prefrontal network activation in vitro and in vivo. Chronically silencing these neurons impairs orexin-induced prefrontal activation and reduces anxiety-like behaviour, indicating that orexin-responsive L6 neurons modulate emotional states and may be a substrate for anxiety regulation.

neuroscience↗

FOXP2-immunoreactive, corticothalamic pyramidal cells in neocortical layers 6a and 6b are tightly regulated by neuromodulatory systems

The FOXP2/Foxp2 gene is involved in fine motor control in many vertebrate species; in humans, it is one of the candidate genes thought to play a prominent role in language production. Several studies suggest that in the neocortex, Foxp2 is exclusively expressed in a subset of corticothalamic (CT) pyramidal cells (PCs) in layer 6 (L6). However, the morphological and intrinsic electrophysiological, synaptic and neuromodulatory properties of Foxp2-expressing L6 PCs remain largely unknown. Here we systematically characterise these properties for FOXP2-positive (FOXP2+) PCs across L6 in the rat somatosensory cortex. We find that L6 FOXP2+ PCs are distinct in all of these properties from those of L6 FOXP2-negative (FOXP2-) neuronal cell types. We show that L6 FOXP2+ PCs project exclusively to thalamus. In upper L6 (L6a), FOXP2+ PCs innervate either the first-order thalamus or both first and higher-order thalamic nuclei. FOXP2+ PCs in deep L6 (L6b) project almost exclusively to higher-order thalamus. Synaptic connections established by L6a and L6b FOXP2+ PCs exhibit low synaptic release probability, whereas L6 corticocortical PCs have a high release probability. Both L6a and L6b FOXP2+ PCs respond strongly to acetylcholine (ACh), which in the absence of TTX results in firing of action potential (AP) trains. Notably, L6b but not L6a FOXP2- PCs are highly sensitive to ACh. In addition, L6b FOXP2+ PCs close to the white matter border show strong responses to dopamine that develop into prolonged AP firing. Our data suggest that FOXP2 is a marker for CT PCs in L6 that are strongly controlled by neurotransmitters such as ACh and dopamine. These findings are in line with a pivotal role for both L6a and L6b CT PCs as modulators of thalamic activity.

neuroscience↗