Tkachev Dmitri, Mimmack Michael L, Huffaker Stephen J, Ryan Margaret, Bahn Sabine
Institute of Biotechnology, Tennis Court Road, Cambridge, UK.
Int J Neuropsychopharmacol. 2007 Aug;10(4):557-63. doi: 10.1017/S1461145706007334. Epub 2007 Feb 12.
Recent studies have provided evidence for neuronal and oligodendrocyte-related abnormalities being associated with schizophrenia. However, the functional interplay and causal relationship between these two abnormalities is poorly understood. In this report, we provide data that identify myelin and fatty-acid biosynthesis dysfunction in schizophrenia based on post-mortem brain studies (prefrontal cortex) utilizing parallel metabolic and transcriptomics investigations. We detected a significant up-regulation of N-acetylaspartate (NAA) by HPLC analysis. Microarray and Q-PCR investigations revealed mRNA abnormalities for several enzymes involved in NAA metabolism. Additionally, glutamatergic neurotransmission components were also found to be affected. Our results suggest that, apart from the previously reported alterations in myelin-related protein synthesis, myelin synthesis itself may be directly affected in schizophrenia as indicated by changes in key enzymes involved in NAA metabolism. A decrease in NAA catabolism in oligodendrocytes would severely reduce acetate levels required to produce myelin lipids and may subsequently affect glutamatergic neurotransmission.
最近的研究为神经元和少突胶质细胞相关异常与精神分裂症有关提供了证据。然而,这两种异常之间的功能相互作用和因果关系却知之甚少。在本报告中,我们提供的数据表明,基于利用平行代谢和转录组学研究的死后大脑研究(前额叶皮质),精神分裂症存在髓鞘和脂肪酸生物合成功能障碍。通过高效液相色谱分析,我们检测到N-乙酰天门冬氨酸(NAA)显著上调。微阵列和定量聚合酶链反应研究揭示了几种参与NAA代谢的酶的mRNA异常。此外,还发现谷氨酸能神经传递成分也受到影响。我们的结果表明,除了先前报道的髓鞘相关蛋白质合成改变外,如参与NAA代谢的关键酶的变化所示,精神分裂症中髓鞘合成本身可能直接受到影响。少突胶质细胞中NAA分解代谢的减少将严重降低产生髓鞘脂质所需的乙酸盐水平,并可能随后影响谷氨酸能神经传递。