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Parrot, S.

Publications and source records attributed to Parrot, S..

3 recordsLinked to original sources

Pallidin function in drosophila surface glia regulates sleep and is dependent on amino acid availability

The Pallidin protein is a component of a multimeric complex named the Biogenesis of Lysosome-related Organelles Complex 1 (BLOC1) that regulates specific endosomal function and transmembrane protein trafficking in many different cell types. In the brain, defective BLOC1 function has been linked to schizophrenia, a neuropsychiatric disorder with highly prevalent sleep disruptions, and to impaired cognitive abilities in healthy subjects. In animal models, defective BLOC1 function also impairs behavior, memory, neurotransmission systems and metabolism. This growing body of experimental evidence suggest an involvement of BLOC1 in sleep/wake regulation. Here, we used Drosophila molecular genetics and conditional, cell-type specific knockdown strategy to address this question. We show that down-regulation of a central subunit of BLOC1, Pallidin, in the surface glia, the Drosophila equivalent of the blood brain barrier, is sufficient to reduce, fragment and delay nighttime sleep at the adult stage and in a circadian clock dependent manner. Other members of the BLOC1 complex appear to be involved in this surface glia-dependent sleep regulation. In agreement with a BLOC1 involvement in amino acid transport, down-regulation of the Large neutral Amino acid Transporter 1 (LAT1)-like transporters JhI-21 and minidiscs, phenocopy the down-regulation of pallidin. Similar results were obtained by inhibiting the TOR amino acid signaling pathway. Supplementing food with essential amino acids normalizes the sleep/wake phenotypes of pallidin and JhI-21 down-regulation. Furthermore, we identify a role for pallidin in the subcellular trafficking of JhI-21 in surface glial cells. Finally, we provide evidence that Pallidin function in surface glia is required for GABAergic neurons activation involved in promoting sleep. Taken together, these data identify a novel role for BLOC1 that, through LAT1-like transporters subcellular trafficking modulates essential amino acid availability and GABAergic sleep/wake regulation.

neuroscience↗

Serotonin, Etonogestrel and breathing activity in murine Congenital Central Hypoventilation Syndrome

Congenital Central Hypoventilation Syndrome, a rare disease caused by PHOX2B mutation, is associated with absent or blunted CO2/H+ chemosensitivity due to the dysfunction of PHOX2B neurons of the retrotrapezoid nucleus. No pharmacological treatment is available. Clinical observations have reported non-systematic CO2/H+ chemosensitivity recovery under desogestrel. Here, we used a preclinical model of Congenital Central Hypoventilation Syndrome, the retrotrapezoid nucleus conditional Phox2b mutant mouse, to investigate whether etonogestrel, the active metabolite of desogestrel, led to a restoration of chemosensitivity by acting on serotonin neurons known to be sensitive to etonogestrel, or retrotrapezoid nucleus PHOX2B residual cells that persist despite the mutation. The effect of etonogestrel, alone or combined with serotonin drugs, on the respiratory rhythm of medullary-spinal cord preparations from Phox2b mutants and wildtype mice was analyzed under metabolic acidosis. c-FOS, serotonin and PHOX2B were immunodetected. Serotonin metabolic pathways were characterized by ultra-high-performance liquid chromatography. We observed etonogestrel restored chemosensitivity in Phox2b mutants in a non-systematic way. Histological differences between Phox2b mutants with restored chemosensitivity and others indicated greater activation of serotonin neurons of the raphe obscurus nucleus but no effect on retrotrapezoid nucleus PHOX2B residual cells. Pharmacology of serotonin systems modulated the respiratory effect of etonogestrel differently according to serotonin metabolic pathways. Etonogestrel induced a restoration of chemosensitivity in Phox2b mutants by acting on serotonin neurons. Our work thus highlights that the state of serotonin systems was critically important for the occurrence of an etonogestrel-restoration, an element to consider in potential therapeutic intervention in Congenital Central Hypoventilation Syndrome patients.

physiology↗

Dorsal striatum and the temporal expectancy of an aversive event in Pavlovian odor fear learning

Interval timing, the ability to encode and retrieve the memory of intervals from seconds to minutes, guides fundamental animal behaviors across the phylogenetic tree. In Pavlovian fear conditioning, an initially neutral stimulus (conditioned stimulus, CS) predicts the arrival of an aversive unconditioned stimulus (US, generally a mild foot-shock) at a fixed time interval. Although some studies showed that temporal relations between CS and US events are learned from the outset of conditioning, the question of the memory of time and its underlying neural network in fear conditioning is still poorly understood. The aim of the present study was to investigate the role of the dorsal striatum in timing intervals in odor fear conditioning in male rats. To assess the animals interval timing ability in this paradigm, we used the respiratory frequency. This enabled us to detect the emergence of temporal patterns related to the odor-shock time interval from the early stage of learning, confirming that rats are able to encode the odor-shock time interval after few training trials. We carried out reversible inactivation of the dorsal striatum before the acquisition session and before a shift in the learned time interval, and measured the effects of this treatment on the temporal pattern of the respiratory rate. In addition, using intracerebral microdialysis, we monitored extracellular dopamine level in the dorsal striatum throughout odor-shock conditioning and in response to a shift of the odor-shock time interval. Contrary to our initial predictions based on the existing literature on interval timing, we found evidence suggesting that transient inactivation of the dorsal striatum may favor a more precocious buildup of the respiratory frequencys temporal pattern during the odor-shock interval in a manner that reflected the duration of the interval. Our data further suggest that the conditioning and the learning of a novel time interval were associated with a decrease in dopamine level in the dorsal striatum, but not in the nucleus accumbens. These findings prompt a reassessment of the role of the striatum and striatal dopamine in interval timing, at least when considering Pavlovian aversive conditioning.

neuroscience↗