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Marin-Blasco, I.

Publications and source records attributed to Marin-Blasco, I..

3 recordsLinked to original sources

Distinct Glutamatergic Inputs to the Nucleus Accumbens Differentially Regulate Vulnerability to Cannabinoid Addiction

Cannabis use disorder (CUD) is a chronic relapsing disorder characterized by compulsive drug seeking, persistent drug use despite adverse consequences, and a high risk of relapse. Although the nucleus accumbens (NAc) is a central hub in the neural circuitry underlying addiction, the specific glutamatergic inputs regulating vulnerability to cannabinoid addiction remain poorly understood. Here, we investigated the contribution of two major limbic glutamatergic projections to the NAc, the dorsal hippocampus (dHPC) to NAc and basolateral amygdala (BLA) to NAc pathways, using a validated mouse model of WIN55,212-2 intravenous self-administration combined with projection-specific chemogenetic inhibition. Male C57BL/6J mice received combinatorial viral vector delivery of inhibitory hM4Di DREADDs selectively targeting either the dHPC to NAc or the BLA to NAc pathway. Chronic pathway inhibition was achieved by continuous administration of deschloroclozapine through osmotic minipumps during the development of cannabinoid addiction-like behavior. Animals were evaluated using a multidimensional behavioral paradigm assessing the three-core addiction-like criteria of persistence of drug seeking, motivation, and compulsive-like behavior, as well as craving-related behaviors and phenotypic vulnerability traits. Chronic inhibition of either the dHPC to NAc or the BLA to NAc pathway significantly increased the proportion of mice developing an addiction-like phenotype. Both manipulations enhanced persistence of drug seeking during periods of drug unavailability, identifying persistence as a shared behavioral consequence of disrupting glutamatergic signaling to the NAc. In contrast, the two pathways differentially regulated other addiction-related behaviors. Inhibition of the dHPC to NAc pathway increased motivation to obtain WIN55,212-2, impulsivity, reward sensitivity, and resistance to extinction, whereas inhibition of the BLA to NAc pathway selectively enhanced cue-induced drug seeking. Neither manipulation altered compulsive-like responding, locomotor activity, or body weight. These findings demonstrate that distinct glutamatergic afferents to the NAc differentially regulate vulnerability to cannabinoid addiction-like behavior while converging on persistence as a common circuit-level mechanism. Our results establish the NAc as an integrative hub coordinating complementary contextual and emotional information during the transition to cannabinoid addiction and provide a circuit-based framework for understanding the neural mechanisms underlying Cannabis Use Disorder.

neuroscience↗

Selective Shank3 Deletion in Glutamatergic Neurons of the Anterior Insular Cortex Induces Autism-Related Behavior and Circuit Dysfunction

Mutations in the synaptic scaffold protein SHANK3 represent one of the most frequent genetic causes of autism spectrum disorder (ASD), yet the circuit mechanisms through which SHANK3 dysfunction leads to behavioral alterations remain incompletely understood. The anterior insular cortex (aINS) is a key integrative hub involved in socio-emotional processing, anxiety regulation, and social cognition, a group of behaviors frequently disrupted in ASD. Here, we investigated whether selective deletion of SHANK3 signaling in glutamatergic neurons of the aINS is sufficient to produce ASD-relevant behavioral and circuit phenotypes. Using conditional Shank3flox4-22 mice combined with stereotaxic viral delivery of Cre recombinase under the CaMKII promoter, we selectively deleted Shank3 in glutamatergic neurons of the aINS. Behavioral phenotyping revealed increased anxiety-like behavior, enhanced repetitive behavior, and impaired social memory, while sociability and locomotor activity were largely preserved. These behavioral alterations were accompanied by genotype-dependent differences in neuronal activity revealed by calcium imaging, indicating disrupted activity dynamics in insular glutamatergic neurons following Shank3 deletion. To assess the broader relevance of these findings, we evaluated the behavioral profile of BTBR T+ Itpr3tf/J mice, a model of idiopathic ASD, in the same battery of behavioral tests. Several behavioral alterations observed following insular Shank3 deletion partially overlapped with those present in BTBR mice, supporting the relevance of aINS Shank3 in ASD-related phenotypes. Together, these findings identify glutamatergic neurons of the aINS as a critical locus through which Shank3 dysfunction can disrupt socio-emotional, cognitive, and repetitive behaviors. Our results highlight the aINS as a key circuit node contributing to ASD-related behavioral alterations and provide mechanistic insight into how synaptic scaffold disruption leads to circuit dysfunction and produces behavioral alterations.

neuroscience↗

Involvement of the medial prefrontal cortex in food addiction: new insights from in vivo calcium Imaging

Food addiction is a multifactorial disorder characterized by a loss of control over food intake, contributing to the development of obesity. To investigate the involvement of the prelimbic (PL) medial prefrontal cortex (mPFC) in the transition to food addiction, we examined PL calcium dynamics in mice exhibiting addicted versus non-addicted behavioral phenotypes. Our behavioral results allowed the identification of two distinct subpopulations of addicted and non-addicted mice, enabling direct comparison of their neural activity profiles. Addicted and non-addicted mice showed significant differences across several PL calcium activity parameters. These findings demonstrate a strong association between PL mPFC calcium activity dynamics and key addiction criteria, highlighting a critical role of this brain region in the development of food addiction. Understanding these neurobiological differences enhances our insight into brain mechanisms underlying loss of eating control and may inform more targeted approaches for studying and ultimately treating food addiction.

neuroscience↗