Impact of the gut microbiome on nicotine’s motivational effects and glial cells in the ventral tegmental area in male mice

被盖腹侧区 肠-脑轴 神经科学 尼古丁 多巴胺能 谷氨酸的 肠道菌群 上瘾 腹侧苍白球 小胶质细胞 失调 微生物群 生物 谷氨酸受体 多巴胺 中枢神经系统 免疫学 生物信息学 炎症 遗传学 基底神经节 受体 苍白球
作者
Alina Lakosa,Anaïs Rahimian,Flavio Tomasi,Fabio Marti,Lauren M. Reynolds,Léa Tochon,Vincent David,Anne Danckært,Candice Canonne,Sylvana Tahraoui,Fabrice de Chaumont,Benoît Forget,Uwe Maskos,Morgane Besson
出处
期刊:Neuropsychopharmacology [Springer Nature]
卷期号:48 (6): 963-974 被引量:1
标识
DOI:10.1038/s41386-023-01563-x
摘要

A link between gut dysbiosis and the pathogenesis of brain disorders has been identified. A role for gut bacteria in drug reward and addiction has been suggested but very few studies have investigated their impact on brain and behavioral responses to addictive drugs so far. In particular, their influence on nicotine's addiction-like processes remains unknown. In addition, evidence shows that glial cells shape the neuronal activity of the mesolimbic system but their regulation, within this system, by the gut microbiome is not established. We demonstrate that a lack of gut microbiota in male mice potentiates the nicotine-induced activation of sub-regions of the mesolimbic system. We further show that gut microbiota depletion enhances the response to nicotine of dopaminergic neurons of the posterior ventral tegmental area (pVTA), and alters nicotine's rewarding and aversive effects in an intra-VTA self-administration procedure. These effects were not associated with gross behavioral alterations and the nicotine withdrawal syndrome was not impacted. We further show that depletion of the gut microbiome modulates the glial cells of the mesolimbic system. Notably, it increases the number of astrocytes selectively in the pVTA, and the expression of postsynaptic density protein 95 in both VTA sub-regions, without altering the density of the astrocytic glutamatergic transporter GLT1. Finally, we identify several sub-populations of microglia in the VTA that differ between its anterior and posterior sub-parts, and show that they are re-organized in conditions of gut microbiota depletion. The present study paves the way for refining our understanding of the pathophysiology of nicotine addiction.

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