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肌萎缩侧索硬化症中兴奋性氨基酸、N-乙酰天门冬氨酸和N-乙酰天门冬氨酰谷氨酸的代谢改变。

Altered metabolism of excitatory amino acids, N-acetyl-aspartate and N-acetyl-aspartyl-glutamate in amyotrophic lateral sclerosis.

作者信息

Plaitakis A, Constantakakis E

机构信息

Department of Neurology, Mount Sinai School of Medicine, New York, NY 10029.

出版信息

Brain Res Bull. 1993;30(3-4):381-6. doi: 10.1016/0361-9230(93)90269-h.

Abstract

Since recent studies provided evidence for abnormal glutamate metabolism in amyotrophic lateral sclerosis, we measured amino acid levels in the fasting plasma of 52 ALS patients and an equal number of controls of a similar age. In addition, the content of amino acids, N-acetyl-aspartate (NAA) and N-acetyl-aspartyl-glutamate (NAAG) were measured in spinal cord and brain tissue obtained at autopsy from patients dying of ALS. Results showed significant elevations (by about 70%) in the plasma levels of glutamate in the ALS patients as compared to controls. In contrast, glutamate levels were significantly decreased in all CNS regions studied of ALS patients (by 21-40%), with the greatest changes occurring in the spinal cord. The ratio of glutamine to glutamate was altered significantly in the spinal cord ALS tissue. In addition, reductions in the levels of aspartate (by 32-35%), NAA, and NAAG (by 40-48%) were found in the spinal cord of ALS patients. These results are consistent with a generalized defect in the metabolism of neuroexcitotoxic amino acids. An altered distribution of these compounds may occur between their intracellular and extracellular pools with resultant abnormal potentiation of excitatory transmission mediated by glutamate receptors and selective degeneration of motor neurons.

摘要

由于近期研究为肌萎缩侧索硬化症(ALS)中谷氨酸代谢异常提供了证据,我们检测了52例ALS患者及同等数量、年龄相仿的对照者空腹血浆中的氨基酸水平。此外,还检测了死于ALS的患者尸检时获取的脊髓和脑组织中氨基酸、N-乙酰天门冬氨酸(NAA)和N-乙酰天门冬氨酰谷氨酸(NAAG)的含量。结果显示,与对照组相比,ALS患者血浆中谷氨酸水平显著升高(约70%)。相反,在ALS患者所有研究的中枢神经系统区域中,谷氨酸水平显著降低(21%-40%),其中脊髓变化最大。脊髓ALS组织中谷氨酰胺与谷氨酸的比例发生了显著改变。此外,在ALS患者的脊髓中还发现天冬氨酸水平降低(32%-35%)、NAA和NAAG水平降低(40%-48%)。这些结果与神经兴奋性毒性氨基酸代谢的普遍缺陷一致。这些化合物在细胞内和细胞外池之间的分布可能发生改变,导致谷氨酸受体介导的兴奋性传递异常增强以及运动神经元选择性退化。

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