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Del Pino, I.

Publications and source records attributed to Del Pino, I..

2 recordsLinked to original sources

Serotonergic circuit architecture underlies sex dimorphism in anxiogenic states

The serotonergic system underpins anxiety-like behavior vital for the adaptive response to a new environment. However, our understanding of the neural circuitry underlying the diversity of anxiety-like behaviors across individuals is limited. Whilst previous studies have characterized diverse features related to the neurochemical substrate of serotonergic neurotransmission and behavioral presentation between males and females, no investigations have fully addressed the sexual dimorphism in the structural and functional connectivity of serotonergic circuits. Here, using functional FosTRAP connectivity analysis, we found sex-dependent functional differences in the serotonergic neurons of the dorsal raphe nucleus (DRN), such as enriched connectivity to the amygdala in females, compared to male mice. We also discovered previously unidentified morpho-functional sex-specific differences in DRN serotonergic circuitry that reflects the disparity in behavior presentation. To understand the molecular basis of serotonergic circuit architecture differences between sexes, we leveraged on single-cell RNA sequencing dataset from DRN serotonergic cells taking sex as a biological variable and spotted some gene candidates involved in neural circuit wiring. Altering the expression of the receptor tyrosine kinase Erbb4 in serotonergic circuits, altered the axonal connectivity to downstream targets and shifted sex-specific behavior which. Overall, this study provides an essential foundation to delineate the molecular basis and connectivity pattern mechanisms underlying the serotonergic system-dependent sex-specific behaviors. Since alterations in serotonin function play a vital role in adaptive behavior, as well as various pathologies including chronic anxiety and depression, this study may advance our understanding of sex-biases in presentation and treatment response of neuropsychiatric disorders.

neuroscience↗

Preferential vulnerability of cortical GABAergic interneurons to Nalcn deficiency

Neuronal resting membrane potential (RMP) reflects the balance of leak conductances and varies systematically across cortical cell types. Many GABAergic interneurons exhibit more depolarized RMPs than neighbouring excitatory neurons, but the molecular mechanisms underlying these systematic differences in intrinsic excitability remain incompletely defined. The sodium leak channel non-selective (NALCN) mediates a major fraction of basal sodium conductance and cause neurodevelopmental syndromes characterized by developmental delay and cognitive impairment. Here we define NALCN contribution to cortical circuit development and function with cell-type precision. Using Nalcn-GFP reporter line, we map Nalcn expression across cortical types revealing enrichment in GABAergic hippocampal interneurons relative to hippocampal pyramidal neurons. Using conditional mouse models, we selectively deleted Nalcn in cortical glutamatergic lineages or forebrain GABAergic cells from early embryogenesis. Electrophysiological analysis show that developmental loss of Nalcn preferentially reduces intrinsic excitability across GABAergic interneuron subtypes while sparing pyramidal neurons. To understand the impact of a depolarized GABAergic RMP on brain function, we assessed the behavioral performance of Nalcn-deficient mice that revealed persistent deficits in contextual adaptation and spatial short-term memory. These findings reveal a neuron type-specific function of NALCN in the cerebral cortex and position NALCN as a crucial ion channel regulating basal excitability of GABAergic inhibitory circuits and cortical circuit function.

neuroscience↗