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“化学性缺氧”和兴奋性毒性神经元损伤期间的细胞内钙浓度

Intracellular calcium concentrations during "chemical hypoxia" and excitotoxic neuronal injury.

作者信息

Dubinsky J M, Rothman S M

机构信息

Departments of Anatomy, Washington University School of Medicine, St Louis, Missouri 63110.

出版信息

J Neurosci. 1991 Aug;11(8):2545-51. doi: 10.1523/JNEUROSCI.11-08-02545.1991.

Abstract

Because hypoxic/ischemic neurodegeneration appears to be in part linked to glutamate neurotoxicity, we measured intracellular calcium (Ca2+i) levels in cultured hippocampal neurons during exposure to toxic doses of glutamate (GLU) and to an anoxic environment simulated by sodium cyanide (NaCN). Changes in Ca2+i produced by cyanide greatly exceeded those induced by GLU. The NaCN response was mimicked when oxidative metabolism was also disrupted by sodium azide, oligomycin, or dinitrophenol. Noncompetitive NMDA receptor antagonists and enzymatic GLU degradation abolished the GLU-induced Ca2+i increases and attenuated those produced by NaCN. Only NaCN-induced increases were blocked when dantrolene and ruthenium red were applied to prevent release from intracellular pools. All responses were reduced proportionally in the absence of added external calcium. These results suggest that extracellular GLU accumulation and subsequent activation of GLU receptors were involved in the NaCN response. During such metabolic compromise, however, GLU-induced elevations of Ca2+i were enormously amplified. In parallel toxicity studies, NaCN was not neurotoxic despite the large elevations in Ca2+i, indicating that a general elevation in cytoplasmic calcium does not necessarily predict neurodegeneration.

摘要

由于缺氧/缺血性神经变性似乎部分与谷氨酸神经毒性有关,我们在培养的海马神经元暴露于毒性剂量的谷氨酸(GLU)以及由氰化钠(NaCN)模拟的缺氧环境期间,测量了细胞内钙(Ca2 + i)水平。氰化物引起的Ca2 + i变化大大超过了谷氨酸诱导的变化。当氧化代谢也被叠氮化钠、寡霉素或二硝基苯酚破坏时,NaCN反应被模拟。非竞争性NMDA受体拮抗剂和酶促谷氨酸降解消除了谷氨酸诱导的Ca2 + i增加,并减弱了NaCN产生的增加。当应用丹曲林和钌红以防止从细胞内池释放时,只有NaCN诱导的增加被阻断。在没有添加外部钙的情况下,所有反应均成比例降低。这些结果表明,细胞外谷氨酸积累和随后的谷氨酸受体激活参与了NaCN反应。然而,在这种代谢受损期间,谷氨酸诱导的Ca2 + i升高被极大地放大。在平行毒性研究中,尽管Ca2 + i大幅升高,但NaCN并无神经毒性,这表明细胞质钙的普遍升高不一定预示神经变性。

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