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谷氨酸神经毒性与一氧化氮介导的线粒体功能障碍和谷胱甘肽耗竭有关。

Glutamate neurotoxicity is associated with nitric oxide-mediated mitochondrial dysfunction and glutathione depletion.

作者信息

Almeida A, Heales S J, Bolaños J P, Medina J M

机构信息

Departamento de Bioquímica y Biología Molecular, Universidad de Salamanca, Salamanca, Spain.

出版信息

Brain Res. 1998 Apr 20;790(1-2):209-16. doi: 10.1016/s0006-8993(98)00064-x.

DOI:10.1016/s0006-8993(98)00064-x
PMID:9593899
Abstract

The role of mitochondrial energy metabolism in glutamate mediated neurotoxicity was studied in rat neurones in primary culture. A brief (15 min) exposure of the neurones to glutamate caused a dose-dependent (0.01-1 mM) increase in cyclic GMP levels together with delayed (24 h) neurotoxicity and ATP depletion. These effects were prevented by either the nitric oxide (.NO) synthase (NOS) inhibitor Nomega-nitro-L-arginine methyl ester (NAME; 1 mM) or by the N-methyl-D-aspartate (NMDA) glutamate-subtype receptor antagonist D-(-)-2-amino-5-phosphonopentanoate (APV; 0.1 mM). Glutamate exposure (0.1 mM and 1 mM) followed by 24 h of incubation caused the inhibition of succinate-cytochrome c reductase (20-25%) and cytochrome c oxidase (31%) activities in the surviving neurones, without affecting NADH-coenzyme-Q1 reductase activity. The rate of oxygen consumption was impaired in neurones exposed to 1 mM glutamate, either with glucose (by 26%) or succinate (by 39%) as substrates. These effects on the mitochondrial respiratory chain and neuronal respiration, together with the observed glutathione depletion (20%) by glutamate exposure were completely prevented by NAME or APV. Our results suggest that mitochondrial dysfunction and impairment of antioxidant status may account for glutamate-mediated neurotoxicity via a mechanism involving .NO biosynthesis.

摘要

在原代培养的大鼠神经元中研究了线粒体能量代谢在谷氨酸介导的神经毒性中的作用。将神经元短暂(15分钟)暴露于谷氨酸会导致环鸟苷酸水平呈剂量依赖性(0.01 - 1 mM)升高,同时伴有延迟(24小时)的神经毒性和ATP耗竭。一氧化氮(·NO)合酶(NOS)抑制剂Nω-硝基-L-精氨酸甲酯(NAME;1 mM)或N-甲基-D-天冬氨酸(NMDA)谷氨酸亚型受体拮抗剂D-(-)-2-氨基-5-磷酸戊酸(APV;0.1 mM)可预防这些效应。谷氨酸暴露(0.1 mM和1 mM)后孵育24小时会导致存活神经元中琥珀酸 - 细胞色素c还原酶(20 - 25%)和细胞色素c氧化酶(31%)活性受到抑制,而不影响NADH - 辅酶Q1还原酶活性。以葡萄糖(降低26%)或琥珀酸(降低39%)作为底物时,暴露于1 mM谷氨酸的神经元的耗氧率受损。NAME或APV可完全预防这些对线粒体呼吸链和神经元呼吸的影响,以及谷氨酸暴露所观察到的谷胱甘肽耗竭(20%)。我们的结果表明,线粒体功能障碍和抗氧化状态受损可能通过涉及·NO生物合成的机制解释谷氨酸介导的神经毒性。

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