11 research outputs found

    Role of protein kinase C in bipolar disorders : towards novel therapeutic targets

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    Le trouble bipolaire est une maladie invalidante caractérisée par une alternance d’épisodes maniaques et dépressifs. Malgré des efforts de recherche notables, la physiopathologie et les mécanismes d’action des traitements du trouble bipolaire demeurent peu connus. La protéine kinase C (PKC) est récemment apparue comme une cible moléculaire potentielle pour le traitement du trouble bipolaire. Dans ce travail de thèse, nous avons cherché à étudier le rôle de la PKC dans les phases maniaque et dépressive du trouble bipolaire. Nous avons montré que l’inhibition de la PKC a un effet antimaniaque non seulement chez le rat naïf, mais aussi dans un modèle de manie basé sur une privation de sommeil, que nous avons validé au cours de notre étude. De plus, les inhibiteurs de la PKC sont capables de rétablir les déficits de prolifération cellulaire hippocampique que présentent les rats privés de sommeil. Ces effets prolifératifs et antimaniaques seraient indépendants, puisque le blocage de la prolifération cellulaire n’abolit pas l’efficacité antimaniaque des inhibiteurs de la PKC dans le modèle de privation de sommeil. En parallèle, nous avons montré que l’activation de la PKC a un effet antidépresseur chez le rat naïf, alors que son inhibition provoque un phénotype pseudodépressif qui s’accompagne d’une diminution de la prolifération cellulaire hippocampique. L’ensemble de ces données révèle une implication de la PKC dans les deux phases du trouble bipolaire, et soutient l’hypothèse qu’une suractivation du système PKC serait à l’origine des perturbations de neuroplasticité associées à la manie.Bipolar disorder is a devastating long-term disease characterized by alternate episodes of mania and depression. Despite extensive research, the molecular and cellular underpinnings of bipolar disorder remain to be fully elucidated. Protein kinase C (PKC) has emerged as a potential molecular target for the treatment of bipolar disorder. The present study investigated the role of PKC in manic- and depressive-like behaviors. Our results showed that PKC inhibition produced an antimanic-like effect not only in naive rats, but also in an animal model of mania based on sleep deprivation, that we have validated in our study. Interestingly, PKC inhibitors rescued the hippocampal cell proliferation deficits displayed by sleep-deprived animals. These proliferative and antimanic effects were independent, since blockade of cell proliferation did not abolish the antimanic efficacy of PKC inhibitors in the sleep deprivation model. At the same time, we showed that PKC activation had an antidepressant-like effect in naive rats, whereas its inhibition caused a depressive-like phenotype accompanied by a decrease in hippocampal cell proliferation. Taken together, our results demonstrate the involvement of the PKC system in regulating opposite facets of bipolar disorder, and support the hypothesis that an overactivation of the PKC signaling system may be crucial for the deficits of neuroplasticity associated with mania

    Thèse Médecine

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    The Role of Signal Transduction Systems in the Pathophysiology and Treatment of Bipolar Disorder

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    Signal transduction systems mediate cellular responses to changes in the environment, and there is increasing evidence of perturbations in signaling systems in bipolar disorder. Studies in the 1970s revealed that the prototypical mood stabilizer lithium directly modulates the phosphoinositide signal transduction system, which regulates protein kinase C and intracellular calcium, and stimulated research on signaling systems in bipolar disorder. Subsequently, lithium was found to directly inhibit glycogen synthase kinase3. Because glycogen synthase kinase3 regulates a broad spectrum of cellular functions implicated in bipolar disorder, this discovery provided a mechanism to link disparate observations to a cohesive mechanistic basis, including advances in understanding signaling mediated by neurotrophins, implications of altered adult hippocampal neurogenesis linked to the treatment of mood disorders, and altered immune system actions, particularly inflammation, that are linked to mood disorders. Further clarification of perturbed signaling pathways in bipolar disorder may plausibly lead to the development of improved therapies

    Protein Kinase C Inhibition Rescues Manic-Like Behaviors and Hippocampal Cell Proliferation Deficits in the Sleep Deprivation Model of Mania

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    International audienceBackground: Recent studies revealed that bipolar disorder may be associated with deficits of neuroplasticity. Additionally, accumulating evidence has implicated alterations of the intracellular signaling molecule protein kinase C (PKC) in mania.Methods: Using sleep deprivation (SD) as an animal model of mania, this study aimed to examine the possible relationship between PKC and neuroplasticity in mania. Rats were subjected to SD for 72 h and tested behaviorally. In parallel, SD-induced changes in hippocampal cell proliferation were evaluated with bromodeoxyuridine (BrdU) labeling. We then examined the effects of the mood stabilizer lithium, the antipsychotic agent aripiprazole, and the PKC inhibitors chelerythrine and tamoxifen on both behavioral and cell proliferation impairments induced by SD. The antidepressant fluoxetine was used as a negative control.Results: We found that SD triggered the manic-like behaviors such as hyperlocomotion and increased sleep latency, and reduced hippocampal cell proliferation. These alterations were counteracted by an acute administration of lithium and aripiprazole but not of fluoxetine, and only a single administration of aripiprazole increased cell proliferation on its own. Importantly, SD rats exhibited increased levels of phosphorylated synaptosomal-associated protein 25 (SNAP-25) in the hippocampus and prefrontal cortex, suggesting PKC overactivity. Moreover, PKC inhibitors attenuated manic-like behaviors and rescued cell proliferation deficits induced by SD.Conclusions: Our findings confirm the relevance of SD as a model of mania, and provide evidence that antimanic agents are also able to prevent SD-induced decrease of hippocampal cell proliferation. Furthermore, they emphasize the therapeutic potential of PKC inhibitors, as revealed by their antimanic-like and pro-proliferative properties

    Chemogenetic activation of prefrontal astroglia enhances recognition memory performance in rat

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    Prefrontal cortex (PFC) inputs to the hippocampus are supposed to be critical in memory processes. Astrocytes are involved in several brain functions, such as homeostasis, neurotransmission, synaptogenesis. However, their role in PFC-mediated modulation of memory has yet to be studied. The present study aims at uncovering the role of PFC astroglia in memory performance and synaptic plasticity in the hippocampus. Using chemogenetic and lesions approaches of infralimbic PFC (IL-PFC) astrocytes, we evaluated memory performance in the novel object recognition task (NOR) and dorsal hippocampus synaptic plasticity. We uncovered a surprising role of PFC astroglia in modulating object recognition memory. In opposition to the astroglia PFC lesion, we show that chemogenetic activation of IL-PFC astrocytes increased memory performance in the novel object recognition task and facilitated in vivo dorsal hippocampus synaptic metaplasticity. These results redefine the involvement of PFC in recognition mnemonic processing, uncovering an important role of PFC astroglia

    Hippocampal expression of a virus-derived protein impairs memory in mice

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    International audienceThe analysis of the biology of neurotropic viruses, notably of their interference with cellular signaling, provides a useful tool to get further insight into the role of specific pathways in the control of behavioral functions. Here, we exploited the natural property of a viral protein identified as a major effector of behavioral disorders during infection. We used the phosphoprotein (P) of Borna disease virus, which acts as a decoy substrate for protein kinase C (PKC) when expressed in neurons and disrupts synaptic plasticity. By a lentiviral-based strategy, we directed the singled-out expression of P in the dentate gyrus of the hippocampus and we examined its impact on mouse behavior. Mice expressing the P protein displayed increased anxiety and impaired long-term memory in contextual and spatial memory tasks. Interestingly, these effects were dependent on P protein phosphorylation by PKC, as expression of a mutant form of P devoid of its PKC phosphorylation sites had no effect on these behaviors. We also revealed features of behavioral impairment induced by P protein expression but that were independent of its phosphorylation by PKC. Altogether, our findings provide insight into the behavioral correlates of viral infection , as well as into the impact of virus-mediated alterations of the PKC pathway on behavioral functions. dentate gyrus | hippocampus | virus | memory | protein kinase
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