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Moutkine, I.

Publications and source records attributed to Moutkine, I..

3 recordsLinked to original sources

The fast diffusion of NKCC1 along the axon is driven by glutamatergic activity

NKCC1 and KCC2 transporters regulate neuronal chloride homeostasis and thus synaptic inhibition. KCC2 activity is tuned by diffusion-capture in an activity-dependent manner. The mechanisms controlling NKCC1 in neurons are unknown. We found using super-resolution imaging that NKCC1 like KCC2 form nanodomains in the somato-dendritic membrane at extrasynaptic sites and at the periphery of excitatory and inhibitory synapses. NKCC1 nanoclusters are half the size and density in molecules than KCC2 clusters. This is accompanied by a higher mobility of NKCC1 compared to KCC2 in the dendritic membrane, suggesting a weaker NKCC1 anchoring to the cytoskeleton. In contrast, NKCC1, but not KCC2, is confined to endocytic zones, which would explain its controlled surface expression and the fact that endocytic zones would provide a reservoir from which NKCC1 could be released into the membrane. Finally, we show an increased confinement of NKCC1 in axons but not in dendrites upon glutamatergic activity blockade, indicating a selective mechanism of regulation in the axon. We propose that a rapid regulation of NKCC1 by lateral diffusion in the axon would control presynaptic glutamate release and the firing of action potentials.

neuroscience↗

5-HT1A and 5-HT2B receptor interaction and co-clustering regulates serotonergic neuron excitability

Many psychiatric diseases including depression, schizophrenia and anxiety have been associated with serotonin (5-HT) neuron dysfunction. Pacemaker-like firing of raphe 5-HT neurons was proposed to be under unique 5-HT1A receptor-mediated autoinhibition. We previously showed that 5-HT2B receptors were expressed by 5-HT neurons together with 5-HT1A receptors. However, functional consequences on 5-HT neurons of putative interaction between these receptors are unknown. Using co-immunoprecipitation, BRET, confocal and super-resolution microscopy in hippocampal and 5-HT neurons, we present converging evidence that 5-HT1A and 5-HT2B receptors can form heterodimers and co-cluster at the surface of dendrites. 5-HT2B receptor clusters were redistributed upon 5-HT1A receptor expression supporting functional interactions between the two receptors. Furthermore, 5-HT2B receptor expression prevented agonist-induced internalization of 5-HT1A receptors, whereas 5-HT1A receptors mimicked the clustering effect of 5-HT2B receptor stimulation on its surface expression. The functional impact of this interaction in-vivo was assessed by recording 5-HT neuron excitability from mice lacking 5-HT2B receptors in 5-HT neurons. Upon 5-HT1A receptor stimulation, the firing activity of 5-HT neurons was increased in the absence of 5-HT2B receptors and decreased in their presence through regulation of SK channels, thus demonstrating functional output of this interaction in controlling 5-HT neuron firing activity.

neuroscience↗

Silencing KCC2 in mouse dorsal hippocampus compromises spatial and contextual memory

Delayed upregulation of the neuronal chloride extruder KCC2 underlies the progressive shift in GABA signaling polarity during development. Conversely, KCC2 downregulation is observed in a variety of neurological and psychiatric disorders often associated with cognitive impairment. Reduced KCC2 expression and function in mature networks may disrupt GABA signaling and promote anomalous network activities underlying these disorders. However, the causal link between KCC2 downregulation, altered brain rhythmogenesis and cognitive function remains elusive. Here, by combining behavioral exploration with in vivo electrophysiology we assessed the impact of chronic KCC2 silencing in mouse dorsal hippocampus and showed it compromises both spatial and contextual memory. This was associated with altered hippocampal rhythmogenesis and neuronal hyperexcitability, with increased CA1 pyramidal cell burst firing during non-REM sleep. Reducing neuronal excitability with terbinafine, a specific Task-3 leak potassium channel activator, occluded the impairment of contextual memory upon KCC2 silencing. Our results establish a causal relationship between KCC2 expression and cognitive performance and suggest that impaired rhythmopathies and neuronal hyperexcitability are central to the deficits caused by KCC2 silencing in the adult mouse brain.

neuroscience↗