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Energy metabolism in astrocytes: high rate of oxidative metabolism and spatiotemporal dependence on glycolysis/glycogenolysis.星形胶质细胞中的能量代谢:高氧化代谢率以及对糖酵解/糖原分解的时空依赖性。
J Cereb Blood Flow Metab. 2007 Feb;27(2):219-49. doi: 10.1038/sj.jcbfm.9600343. Epub 2006 Jul 12.
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Astrocytic contributions to bioenergetics of cerebral ischemia.星形胶质细胞对脑缺血生物能量学的贡献。
Glia. 2005 Jun;50(4):362-388. doi: 10.1002/glia.20157.
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Potassium homeostasis in the ischemic brain.缺血性脑内的钾稳态
Glia. 2005 Jun;50(4):407-416. doi: 10.1002/glia.20145.
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Astrocytic function assessed from 1-14C-acetate metabolism after temporary focal cerebral ischemia in rats.大鼠短暂局灶性脑缺血后通过1-14C-乙酸盐代谢评估星形胶质细胞功能。
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Neurochem Res. 2004 Mar;29(3):601-8. doi: 10.1023/b:nere.0000014830.06376.e6.
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Astrocyte influences on ischemic neuronal death.星形胶质细胞对缺血性神经元死亡的影响。
Curr Mol Med. 2004 Mar;4(2):193-205. doi: 10.2174/1566524043479185.
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Losses of NG2 and NeuN immunoreactivity but not astrocytic markers during early reperfusion following severe focal cerebral ischemia.严重局灶性脑缺血后早期再灌注期间NG2和NeuN免疫反应性丧失,但星形胶质细胞标志物未丧失。
Brain Res. 2003 Nov 7;989(2):221-30. doi: 10.1016/s0006-8993(03)03373-0.
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Early loss of astrocytes after experimental traumatic brain injury.实验性创伤性脑损伤后星形胶质细胞的早期丢失
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Mechanisms, challenges and opportunities in stroke.中风的机制、挑战与机遇
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Astrocytes and stroke: networking for survival?星形胶质细胞与中风:为生存而建立联系?
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星形胶质细胞中线粒体功能的抑制:对神经保护的意义。

Inhibition of mitochondrial function in astrocytes: implications for neuroprotection.

作者信息

Voloboueva Ludmila A, Suh Sang Won, Swanson Raymond A, Giffard Rona G

机构信息

Department of Anesthesia, Stanford University School of Medicine, Stanford, California 94305, USA.

出版信息

J Neurochem. 2007 Aug;102(4):1383-94. doi: 10.1111/j.1471-4159.2007.04634.x.

DOI:10.1111/j.1471-4159.2007.04634.x
PMID:17488276
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3175820/
Abstract

Much evidence suggests that astrocytes protect neurons against ischemic injury. Although astrocytes are more resistant to some insults than neurons, few studies offer insight into the real time changes of astrocytic protective functions with stress. Mitochondria are one of the primary targets of ischemic injury in astrocytes. We investigated the time course of changes in astrocytic ATP levels, plasma membrane potential, and glutamate uptake, a key protective function, induced by mitochondrial inhibition. Our results show that significant functional change precedes reduction in astrocytic viability with mitochondrial inhibition. Using the mitochondrial inhibitor fluorocitrate (FC, 0.25 mmol/L) that is preferentially taken by astrocytes we found that inhibition of astrocyte mitochondria increased vulnerability of co-cultured neurons to glutamate toxicity. In our studies, the rates of FC-induced astrocytic mitochondrial depolarization were accelerated in mixed astrocyte/neuron cultures. We hypothesized that the more rapid mitochondrial depolarization was promoted by an additional energetic demand imposed be the co-cultured neurons. To test this hypothesis, we exposed pure astrocytic cultures to 0.01-1 mmol/L aspartate as a metabolic load. Aspartate application accelerated the rates of FC-induced mitochondrial depolarization, and, at 1 mmol/L, induced astrocytic death, suggesting that strong energetic demands during ischemia can compromise astrocytic function and viability.

摘要

大量证据表明,星形胶质细胞可保护神经元免受缺血性损伤。尽管星形胶质细胞比神经元对某些损伤更具抵抗力,但很少有研究深入探讨应激状态下星形胶质细胞保护功能的实时变化。线粒体是星形胶质细胞缺血性损伤的主要靶点之一。我们研究了线粒体抑制诱导的星形胶质细胞ATP水平、质膜电位和谷氨酸摄取(一种关键的保护功能)变化的时间进程。我们的结果表明,在星形胶质细胞活力因线粒体抑制而降低之前,就已经发生了显著的功能变化。使用星形胶质细胞优先摄取的线粒体抑制剂氟柠檬酸(FC,0.25 mmol/L),我们发现抑制星形胶质细胞线粒体增加了共培养神经元对谷氨酸毒性的易感性。在我们的研究中,混合星形胶质细胞/神经元培养物中FC诱导的星形胶质细胞线粒体去极化速率加快。我们假设,共培养神经元施加的额外能量需求促进了线粒体去极化速度更快。为了验证这一假设,我们将纯星形胶质细胞培养物暴露于0.01 - 1 mmol/L的天冬氨酸作为代谢负荷。施加天冬氨酸加快了FC诱导的线粒体去极化速率,并且在1 mmol/L时诱导星形胶质细胞死亡,这表明缺血期间强烈的能量需求会损害星形胶质细胞的功能和活力。