兴奋毒性
阿皮拉酶
生物
谷氨酸受体
泛连接蛋白
嘌呤能受体
缺血
少突胶质细胞
神经科学
髓鞘
细胞生物学
药理学
受体
内科学
医学
生物化学
中枢神经系统
细胞外
连接蛋白
缝隙连接
细胞内
作者
Marı́a Domercq,Alberto Pérez-Samartı́n,David Aparício,Elena Alberdi,Olatz Pampliega,Carlos Matute
出处
期刊:Glia
[Wiley]
日期:2009-12-22
卷期号:58 (6): 730-740
被引量:217
摘要
Abstract Brain ischemia leading to stroke is a major cause of disability in developed countries. Therapeutic strategies have most commonly focused on protecting neurons from ischemic damage. However, ischemic damage to white matter causes oligodendrocyte death, myelin disruption, and axon dysfunction, and it is partially mediated by glutamate excitotoxicity. We have previously demonstrated that oligodendrocytes express ionotropic purinergic receptors. The objective of this study was to investigate the role of purinergic signaling in white matter ischemia. We show that, in addition to glutamate, enhanced ATP signaling during ischemia is also deleterious to oligodendrocytes and myelin, and impairs white matter function. Thus, ischemic oligodendrocytes in culture display an inward current and cytosolic Ca 2+ overload, which is partially mediated by P2X7 receptors. Indeed, oligodendrocytes release ATP after oxygen and glucose deprivation through the opening of pannexin hemichannels. Consistently, ischemia‐induced mitochondrial depolarization as well as oxidative stress culminating in cell death are partially reversed by P2X7 receptor antagonists, by the ATP degrading enzyme apyrase and by blockers of pannexin hemichannels. In turn, ischemic damage in isolated optic nerves, which share the properties of brain white matter, is greatly attenuated by all these drugs. Ultrastructural analysis and electrophysiological recordings demonstrated that P2X7 antagonists prevent ischemic damage to oligodendrocytes and myelin, and improved action potential recovery after ischemia. These data indicate that ATP released during ischemia and the subsequent activation of P2X7 receptor is critical to white matter demise during stroke and point to this receptor type as a therapeutic target to limit tissue damage in cerebrovascular diseases. © 2009 Wiley‐Liss, Inc.
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