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1.
Nat Commun ; 15(1): 5691, 2024 Jul 07.
Article in English | MEDLINE | ID: mdl-38971801

ABSTRACT

Cholinergic striatal interneurons (ChIs) express the vesicular glutamate transporter 3 (VGLUT3) which allows them to regulate the striatal network with glutamate and acetylcholine (ACh). In addition, VGLUT3-dependent glutamate increases ACh vesicular stores through vesicular synergy. A missense polymorphism, VGLUT3-p.T8I, was identified in patients with substance use disorders (SUDs) and eating disorders (EDs). A mouse line was generated to understand the neurochemical and behavioral impact of the p.T8I variant. In VGLUT3T8I/T8I male mice, glutamate signaling was unchanged but vesicular synergy and ACh release were blunted. Mutant male mice exhibited a reduced DA release in the dorsomedial striatum but not in the dorsolateral striatum, facilitating habit formation and exacerbating maladaptive use of drug or food. Increasing ACh tone with donepezil reversed the self-starvation phenotype observed in VGLUT3T8I/T8I male mice. Our study suggests that unbalanced dopaminergic transmission in the dorsal striatum could be a common mechanism between SUDs and EDs.


Subject(s)
Corpus Striatum , Dopamine , Animals , Male , Dopamine/metabolism , Mice , Corpus Striatum/metabolism , Humans , Acetylcholine/metabolism , Substance-Related Disorders/metabolism , Substance-Related Disorders/genetics , Signal Transduction/drug effects , Glutamic Acid/metabolism , Interneurons/metabolism , Interneurons/drug effects , Feeding and Eating Disorders/metabolism , Feeding and Eating Disorders/genetics , Feeding and Eating Disorders/physiopathology , Mice, Inbred C57BL , Amino Acid Transport Systems, Acidic/metabolism , Amino Acid Transport Systems, Acidic/genetics , Mutation , Mutation, Missense , Vesicular Acetylcholine Transport Proteins
2.
Neuropsychopharmacology ; 49(7): 1129-1139, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38326457

ABSTRACT

Treatments are only partially effective in major depressive disorders (MDD) but no biomarker exists to predict symptom improvement in patients. Animal models are essential tools in the development of antidepressant medications, but while recent genetic studies have demonstrated the polygenic contribution to MDD, current models are limited to either mimic the effect of a single gene or environmental factor. We developed in the past a model of depressive-like behaviors in mice (H/Rouen), using selective breeding based on behavioral reaction after an acute mild stress in the tail suspension test. Here, we propose a new mouse model of depression (H-TST) generated from a more complex genetic background and based on the same selection process. We first demonstrated that H/Rouen and H-TST mice had similar phenotypes and were more sensitive to glutamate-related antidepressant medications than selective serotonin reuptake inhibitors. We then conducted an exome sequencing on the two mouse models and showed that they had damaging variants in 174 identical genes, which have also been associated with MDD in humans. Among these genes, we showed a higher expression level of Tmem161b in brain and blood of our two mouse models. Changes in TMEM161B expression level was also observed in blood of MDD patients when compared with controls, and after 8-week treatment with duloxetine, mainly in good responders to treatment. Altogether, our results introduce H/Rouen and H-TST as the two first polygenic animal models of MDD and demonstrate their ability to identify biomarkers of the disease and to develop rapid and effective antidepressant medications.


Subject(s)
Antidepressive Agents , Biomarkers , Depressive Disorder, Major , Disease Models, Animal , Multifactorial Inheritance , Depressive Disorder, Major/genetics , Depressive Disorder, Major/drug therapy , Animals , Humans , Mice , Male , Antidepressive Agents/pharmacology , Antidepressive Agents/therapeutic use , Biomarkers/blood , Female , Adult , Membrane Proteins/genetics , Mice, Inbred C57BL , Middle Aged , Brain/metabolism
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