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Boisvert, A.

Publications and source records attributed to Boisvert, A..

2 recordsLinked to original sources

Immunoglobulins are rapidly internalized by neurons after CNS injury and cleared through lysosomal degradation

Spinal cord injury (SCI) causes hemorrhage and blood-spinal cord barrier disruption, allowing blood-derived molecules to infiltrate the parenchyma. While immunoglobulins (Ig) are abundant plasma proteins, their distribution and cellular targets within the injured spinal cord remain poorly defined. Here, we show that circulating non-autoimmune immunoglobulins rapidly infiltrate the spinal cord after injury in mice and disseminate beyond the lesion core. IgG, IgM, and IgA accumulate within the parenchyma early post-injury, with IgG displaying the widest spatial distribution, reaching distant spinal segments within hours. Neurons are the predominant cell type internalizing immunoglobulins in the gray matter, whereas astrocytes exhibit moderate uptake in white matter. Intra-cisterna magna administration of fluorescent serum-derived IgG reveals that neurons and astrocytes internalize IgG under physiological conditions, independently of Fc receptor engagement. Although the neonatal Fc receptor (FcRn) has minimal impact on CNS IgG recycling, its genetic deletion significantly improves locomotor recovery after SCI. Both in vitro and in vivo, neurons clear IgG through lysosomal degradation. Following SCI, inhibition of lysosomal proteases with the clinically approved drug E64d increases CNS IgG retention without compromising locomotor recovery. These findings establish neurons as key targets of circulating immunoglobulins after CNS injury and reveal IgG uptake and clearance pathways that may be leveraged to improve therapeutic performance of monoclonal antibody treatments.

neuroscience↗

Chemogenetic Inhibition of the Cortical Amygdala Reduces Alcohol Intake and Restores Thalamic Connectivity in Dependent Female Mice

BackgroundAlcohol use disorder is a chronic relapsing condition characterized by excessive drinking and withdrawal symptoms. Alcohol dependence disrupts function across multiple brain regions, and recent evidence implicates the cortical amygdala (CoA) as a critical node in alcohol-related circuits. However, how CoA activity influences alcohol intake and brain-wide network function during withdrawal remains unclear. MethodsAlcohol dependence was induced using chronic intermittent ethanol vapor (CIE). In one cohort, electrophysiological activity of CoA neurons was assessed during withdrawal. In a second cohort, mice underwent CIE paired with two-bottle choice drinking, and inhibitory DREADDs (hM4Di) were used to suppress CoA activity during drinking and withdrawal while behavioral outcomes were measured. Brains were then collected for Fos immunolabeling and iDISCO+ based whole-brain activity mapping to determine how CoA inhibition during withdrawal altered network organization. ResultsRepeated CIE increased alcohol sensitivity in CoA neurons during withdrawal. Chemogenetic inhibition of the CoA reduced alcohol intake in dependent mice without affecting withdrawal-related behaviors. Whole-brain Fos mapping showed that CoA inhibition reduced activity within the CoA while enhancing functional connectivity across multiple brain regions, particularly in the isocortex, thalamus, and anterior hypothalamic nucleus. During withdrawal without CoA inhibition, thalamic regions exhibited negative connectivity, consistent with disrupted network function; CoA inhibition reversed this pattern, producing strongly positive thalamic and medial prefrontal cortex connectivity. ConclusionsThese findings demonstrate that alcohol dependence alters CoA sensitivity, alcohol dependence-induced drinking and brain-wide network organization during withdrawal. The CoA appears to selectively regulate withdrawal-associated alcohol drinking, and its inhibition may reduce intake by restoring thalamic and cortical connectivity. HighlightsO_LIThis study identifies the cortical amygdala as a previously underexplored brain region involved in alcohol-related behaviors. C_LIO_LIBy integrating chemogenetic inhibition with brain-wide network analysis, the study reveals candidate circuit connections through which the CoA may regulate alcohol dependence-related brain activity. C_LIO_LIThis study establishes the CoA as a potential driver of excessive alcohol drinking and alcohol-related network dysfunction. C_LI

neuroscience↗