Center for Psychiatric Neuroscience, Department of Psychiatry, Lausanne University Hospital (CHUV), Prilly, Switzerland.
CIBM Center for Biomedical Imaging, Lausanne, Switzerland.
Transl Psychiatry. 2023 Aug 5;13(1):275. doi: 10.1038/s41398-023-02568-2.
Defects in essential metabolic regulation for energy supply, increased oxidative stress promoting excitatory/inhibitory imbalance and phospholipid membrane dysfunction have been implicated in the pathophysiology of schizophrenia (SZ). The knowledge about the developmental trajectory of these key pathophysiological components and their interplay is important to develop new preventive and treatment strategies. However, this assertion is so far limited. To investigate the developmental regulations of these key components in the brain, we assessed, for the first time, in vivo redox state from the oxidized (NAD) and reduced (NADH) form of Nicotinamide Adenine Dinucleotide (NAD), energy and membrane metabolites, inhibitory and excitatory neurotransmitters by P and H MRS during the neurodevelopment of an SZ animal model with genetically compromised glutathione synthesis (gclm-KO mice). When compared to age-matched wild type (WT), an increase in NAD/NADH redox ratio was found in gclm-KO mice until early adulthood, followed by a decrease in full adults as observed in patients. Especially, in early postnatal life (P20, corresponding to childhood), levels of several metabolites were altered in gclm-KO mice, including NAD, NAD/NADH, ATP, and glutamine + glutamate, suggesting an interactive compensation for redox dysregulation between NAD, energy metabolism, and neurotransmission. The identified temporal neurometabolic regulations under deficits in redox regulation provide insights into preventive treatment targets for at-risk individuals, and other neurodevelopmental disorders involving oxidative stress and energetic dysfunction.
能量供应的基本代谢调节缺陷、促进兴奋性/抑制性失衡的氧化应激增加以及磷脂膜功能障碍与精神分裂症 (SZ) 的病理生理学有关。了解这些关键病理生理成分的发育轨迹及其相互作用对于开发新的预防和治疗策略非常重要。然而,到目前为止,这一说法还很有限。为了研究这些关键成分在大脑中的发育规律,我们首次通过 P 和 H MRS 评估了遗传上谷胱甘肽合成受损 (gclm-KO 小鼠) 的 SZ 动物模型的神经发育过程中的氧化 (NAD) 和还原 (NADH) 形式的烟酰胺腺嘌呤二核苷酸 (NAD)、能量和膜代谢物、抑制性和兴奋性神经递质的还原状态。与年龄匹配的野生型 (WT) 相比,gclm-KO 小鼠的 NAD/NADH 氧化还原比在早期成年期增加,随后在成年期下降,正如患者所见。特别是,在新生后生命早期 (P20,相当于儿童期),gclm-KO 小鼠的几种代谢物水平发生改变,包括 NAD、NAD/NADH、ATP 和谷氨酰胺+谷氨酸,表明 NAD、能量代谢和神经递质之间的氧化还原失调存在交互补偿。在氧化还原调节缺陷下确定的时间神经代谢调节为处于危险中的个体提供了预防治疗目标,并为涉及氧化应激和能量功能障碍的其他神经发育障碍提供了见解。