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Reyes-Velasquez, P. A.

Publications and source records attributed to Reyes-Velasquez, P. A..

2 recordsLinked to original sources

Sex-Dependent Modulation of Emotional and Cognitive Processes by Prefrontal CB1 Receptors

The medial Prefrontal Cortex (mPFC) participates in emotional regulation, decision-making and behavioural flexibility. Cannabinoid receptor 1 (CB1) is widely expressed in the mPFC, particularly in GABAergic neurons, where it modulates synaptic transmission, contributing to the mPFC excitation-inhibition balance. Alteration of GABAergic activity and CB1 levels is indeed part of the pathophysiology of many psychiatric disorders, including depression, anxiety, and schizophrenia. Interestingly, both CB1 and mood disorders display important sex differences. In this work, we study the role of CB1 receptors in prefrontal GABAergic interneurons in emotional and cognitive processes in a sex-dependent manner. To achieve this objective, we deleted CB1 from all mPFC neurons and the GABAergic population in adult CB1-flox male and female mice, and GABAergic neuronal activity was assessed via calcium imaging with fiber photometry. Global CB1 deletion in mPFC neurons, specifically in GABAergic cells, altered emotional but not cognitive processes, with opposite patterns. This impairment was sex- and task-dependent. While pan-neuronal CB1 deletion had an anxiolytic effect on females, GABAergic CB1 deletion had the same effect on male mice, linked to increased GABAergic neuronal activity. By contrast, fear conditioning was primarily affected in males with neuronal CB1 depletion and in females with receptor deletion in inhibitory neurons. GABAergic CB1 deletion potentiates females freezing response during acquisition and recall 24 hours later, and is associated with decreased inhibitory neuronal activity during the tone-shock association. In conclusion, mPFC GABAergic CB1 deletion is associated with an anxiolytic phenotype but also heightened responses to conditioned cues in a sex-dependent manner.

neuroscience↗

An in vivo model for transcranial direct current stimulation of the motor cortex in awake mice.

Transcranial direct current stimulation (tDCS) is a non-invasive brain stimulation technique mainly used in humans, in which weak direct currents are applied over the scalp to alter cortical excitability and induce neuroplasticity. Previous studies have demonstrated the value of tDCS for modulating sensory, motor, and cognitive functions, nevertheless, knowledge about how externally applied electric fields affect different components of neuronal networks is still incomplete, and in vivo animal models, which are required for a deeper understanding, are not fully developed. To evaluate the impact of tDCS on cortical excitability, many human experiments assess motor evoked potentials elicited by motor cortex (M1) stimulation. To develop a related in vivo animal model, we recorded electrical activity in M1 of alert mice during and after administration of tDCS over M1. M1 excitability was chronically recorded from layers 2-3, layer 5 and layer 6, evoked by stimulation of the ventral lateral nucleus of the thalamus (VAL). M1-tDCS was applied at 100 and 200 {micro}A for 5 s to test the acute effects on neuronal excitability, and for 15 min to induce after-effects. Acute M1-tDCS increased and decreased the amplitude of VAL-evoked potentials in a polarity-, layer- and intensity-dependent manner. For 15 minutes of anodal or cathodal tDCS, a similar polarity- and intensity-dependent modulation of VAL-evoked potential amplitudes during the 15 minutes of stimulation was observed. After tDCS was switched off, the highest intensity of anodal stimulation induced a significant excitability enhancement during at least two hours after stimulation, whereas the after-effects of cathodal tDCS were less pronounced. The current study demonstrates the feasibility of a mouse model of M1-tDCS to accomplish similar modulatory effects of tDCS on cortical excitability as observed in human experiments. A proper adjustment of tDCS parameters, as compared to application in humans, is however required to obtain these translational effects.

neuroscience↗