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Simonti, M.

Publications and source records attributed to Simonti, M..

2 recordsLinked to original sources

GABAergic neurons can facilitate the propagation of cortical spreading depolarization: experiments in mouse neocortical slices and a novel neural field computational model

Cortical spreading depolarization (CSD) is a wave of depolarization with local onset and extended propagation implicated in several pathological conditions. Its mechanisms have been extensively investigated, including our recent studies showing with experimental and computational approaches that the hyperactivity of GABAergic neurons can initiate migraine-related CSD because of spiking-generated extracellular potassium (K+) build-up. However, less is known about the role played by GABAergic neurons in CSD propagation. Here we studied mechanisms of CSD propagation, focusing on the role of GABAergic neurons, with experiments performed in mouse brain slices and with a new spatially extended neural field computational model. Experimentally, we induced CSD by applying brief puffs of potassium chloride (KCl) in somatosensory cortex slices from wild type and VGAT-ChR2-tdtomato mice, which specifically express the excitatory opsin channelrhodopsin (ChR2) in GABAergic neurons. We evaluated the role of GABAergic neurons in CSD propagation by modulating their activity with optogenetic illumination and their synaptic connections with pharmacological tools. We have developed the computational model to obtain realistic simulations of both initiation and propagation of CSD. It includes large populations of interconnected excitatory and inhibitory neurons, as well as the effect of extracellular ion concentrations on their features. We found that the decrease of the synaptic activity of GABAergic neurons can enhance CSD propagation, because of the reduction of the inhibitory synaptic weight, whereas their spiking activity can enhance CSD propagation because of extracellular K+ upload. However, differently than for CSD initiation, the latter effect is normally hidden by the action of GABAergic synaptic transmission. A reduction of GABAergic synaptic transmission, which can be observed in pathological states, can reveal the potentiating effect of the K+ upload induced by GABAergic activation. The neural field model that we implemented can generate accurate simulations of CSD, providing testable hypotheses on mechanisms, and can also be used for modeling other (patho)-physiological activities of neuronal networks.

neuroscience↗

Gender-specific behavioral features of juvenile and adult haploinsufficient Scn2a+/- female mice, model of Autism Spectrum Disorder

Variants of the SCN2A gene, encoding the NaV1.2 sodium channel, cause a spectrum of neurodevelopmental and epileptic disorders, and are among those that show the strongest association with Autism Spectrum Disorder (ASD). ASD has a male-bias prevalence, but several studies have proposed that female prevalence may be underestimated due to different symptomatic expression compared with males. However, it is unclear whether this is related to actual different pathological features or to greater masking abilities in females. Studies on Scn2a+/- mice, a model of SCN2A haploinsufficiency and ASD, have shown an age-dependent ASD-like phenotype attenuated at adulthood in males. However, little is known about the behavioral features of Scn2a+/- female mice. We performed a battery of behavioral tests that are relevant for assessing ASD-like features, investigating juvenile and adult Scn2a+/- female mice. Our results demonstrate that female Scn2a+/- mice exhibit an overall milder phenotype than males, showing increased sociability and increased risk taking in juveniles, hyper-reactivity to cold stimuli in adults, altered decision-making related behaviors in both. Thus, this is consistent with the male-bias prevalence of ASD and the existence of different ASD phenotypic features in males and females. Both genders should be investigated in studies of mouse models of ASD.

neuroscience↗