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Glutathione deficit impairs myelin maturation: relevance for white matter integrity in schizophrenia patients.

机译:谷胱甘肽缺乏会损害髓磷脂的成熟:精神分裂症患者白质完整性的相关性。

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摘要

Schizophrenia pathophysiology implies both abnormal redox control and dysconnectivity of the prefrontal cortex, partly related to oligodendrocyte and myelin impairments. As oligodendrocytes are highly vulnerable to altered redox state, we investigated the interplay between glutathione and myelin. In control subjects, multimodal brain imaging revealed a positive association between medial prefrontal glutathione levels and both white matter integrity and resting-state functional connectivity along the cingulum bundle. In early psychosis patients, only white matter integrity was correlated with glutathione levels. On the other side, in the prefrontal cortex of peripubertal mice with genetically impaired glutathione synthesis, mature oligodendrocyte numbers, as well as myelin markers, were decreased. At the molecular levels, under glutathione-deficit conditions induced by short hairpin RNA targeting the key glutathione synthesis enzyme, oligodendrocyte progenitors showed a decreased proliferation mediated by an upregulation of Fyn kinase activity, reversed by either the antioxidant N-acetylcysteine or Fyn kinase inhibitors. In addition, oligodendrocyte maturation was impaired. Interestingly, the regulation of Fyn mRNA and protein expression was also impaired in fibroblasts of patients deficient in glutathione synthesis. Thus, glutathione and redox regulation have a critical role in myelination processes and white matter maturation in the prefrontal cortex of rodent and human, a mechanism potentially disrupted in schizophrenia.
机译:精神分裂症的病理生理学表现为异常的氧化还原控制和前额叶皮层的不连通,部分与少突胶质细胞和髓鞘损害有关。由于少突胶质细胞极易受到氧化还原状态改变的影响,因此我们研究了谷胱甘肽和髓磷脂之间的相互作用。在对照受试者中,多模式脑成像显示内侧前额谷胱甘肽水平与沿扣带束的白质完整性和静止状态功能连接性之间呈正相关。在早期精神病患者中,只有白质完整性与谷胱甘肽水平相关。另一方面,在具有遗传受损的谷胱甘肽合成的青春期前小鼠的前额叶皮层中,成熟的少突胶质细胞数量以及髓磷脂标记物减少。在分子水平上,在短发夹RNA靶向关键的谷胱甘肽合成酶诱导的谷胱甘肽缺乏条件下,少突胶质细胞祖细胞显示出由Fyn激酶活性上调介导的增殖减少,被抗氧化剂N-乙酰半胱氨酸或Fyn激酶抑制剂逆转。另外,少突胶质细胞成熟受到损害。有趣的是,在缺乏谷胱甘肽合成的患者的成纤维细胞中,Fyn mRNA和蛋白质表达的调节也受到损害。因此,谷胱甘肽和氧化还原调节在啮齿动物和人的前额叶皮层的髓鞘形成过程和白质成熟中起关键作用,这是精神分裂症潜在的破坏机制。

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