Physiology and Physiopathology Team, Faculty of Sciences, Genomic of Human Pathologies Research Centre, Mohammed V University in Rabat, Rabat, Morocco.
Department of Human Biology, Faculty of Health Sciences, Nelson Mandela University, Gqeberha, South Africa.
Neurotox Res. 2023 Dec;41(6):615-626. doi: 10.1007/s12640-023-00671-2. Epub 2023 Oct 2.
Cerebral metabolic abnormalities are common in neurodegenerative diseases. Previous studies have shown that mitochondrial damage alters ATP production and increases reactive oxygen species (ROS) release which may contribute to neurodegeneration. In the present study, we investigated the neuroprotective effects of cannabidiol (CBD), a non-psychoactive component derived from marijuana (Cannabis sativa L.), on astrocytic bioenergetic balance in a primary cell culture model of lipopolysaccharide (LPS)-induced neurotoxicity. Astrocytic metabolic profiling using an extracellular flux analyzer demonstrated that CBD decreases mitochondrial proton leak, increased spare respiratory capacity and coupling efficiency in LPS-stimulated astrocytes. Simultaneously, CBD increased astrocytic glycolytic capacity and glycolysis reserve in a cannabinoid receptor type 1 (CB1)-dependent manner. CBD-restored metabolic changes were correlated with a significant decrease in the pro-inflammatory cytokines tumor necrosis factor α (TNFα) and interleukin-6 (IL-6) concentration and reduction of ROS production in LPS-stimulated astrocytes. These results suggest that CBD may inhibit LPS-induced metabolic impairments and inflammation by enhancing astrocytic metabolic glycolysis versus oxidative phosphorylation through its action on CB1 receptors. The present findings suggest CBD as a potential anti-inflammatory treatment in metabolic pathologies and highlight a possible role for the cannabinoidergic system in the modulation of mitochondrial oxidative stress. CBD enhances mitochondrial bioenergetic profile, attenuates proinflammatory cytokines release, and ROS overproduction of astrocytes stimulated by LPS. These effects are not mediated directly by CB1 receptors, while these receptors seem to have a key role in the anti-inflammatory response of the endocannabinoid system on astrocytes, as their specific inhibition by SR141716A led to increased pro-inflammatory cytokines release and ROS production. The graphical abstract is created with BioRender.com.
脑代谢异常在神经退行性疾病中很常见。先前的研究表明,线粒体损伤改变了 ATP 的产生并增加了活性氧(ROS)的释放,这可能导致神经退行性变。在本研究中,我们研究了大麻素(大麻的非精神活性成分)大麻二酚(CBD)对脂多糖(LPS)诱导的神经毒性原代细胞培养模型中天 鼠神经细胞代谢平衡的神经保护作用。使用细胞外通量分析仪对星形胶质细胞代谢特征进行分析表明,CBD 可降低 LPS 刺激的星形胶质细胞中线粒体质子泄漏,增加备用呼吸能力和偶联效率。同时,CBD 以依赖于大麻素受体 1(CB1)的方式增加了星形胶质细胞的糖酵解能力和糖酵解储备。CBD 恢复的代谢变化与促炎细胞因子肿瘤坏死因子 α(TNFα)和白细胞介素 6(IL-6)浓度的显著降低以及 LPS 刺激的星形胶质细胞中 ROS 产生的减少相关。这些结果表明,CBD 可能通过增强星形胶质细胞代谢糖酵解而不是氧化磷酸化来抑制 LPS 诱导的代谢损伤和炎症,其作用机制是通过作用于 CB1 受体。本研究结果表明,CBD 可能是一种治疗代谢相关疾病的抗炎药物,并强调了大麻素能系统在调节线粒体氧化应激方面的可能作用。CBD 可增强 LPS 刺激的星形胶质细胞中线粒体生物能谱,减轻促炎细胞因子的释放和 ROS 的过度产生。这些作用不是由 CB1 受体直接介导的,而这些受体似乎在星形胶质细胞中内源性大麻素系统的抗炎反应中起着关键作用,因为它们通过 SR141716A 的特异性抑制导致促炎细胞因子的释放和 ROS 的产生增加。图表摘要由 BioRender.com 创建。