首页> 美国卫生研究院文献>Springer Open Choice >The Mitochondrial Targets of Neuroprotective Drug Vinpocetine on Primary Neuron Cultures Brain Capillary Endothelial Cells Synaptosomes and Brain Mitochondria
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The Mitochondrial Targets of Neuroprotective Drug Vinpocetine on Primary Neuron Cultures Brain Capillary Endothelial Cells Synaptosomes and Brain Mitochondria

机译:神经保护药物长春西汀在主要神经元培养脑毛细血管内皮细胞突触小体和脑线粒体上的线粒体靶标

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摘要

Vinpocetine is considered as neuroprotectant drug and used for treatment of brain ischemia and cognitive deficiencies for decades. A number of enzymes, channels and receptors can bind vinpocetine, however the mechanisms of many effects’ are still not clear. The present study investigated the effects of vinpocetine from the mitochondrial bioenergetic aspects. In primary brain capillary endothelial cells the purinergic receptor-stimulated mitochondrial Ca2+ uptake and efflux were studied. Vinpocetine exerted a partial inhibition on the mitochondrial calcium efflux. In rodent brain synaptosomes vinpocetine (30 μM) inhibited respiration in uncoupler stimulated synaptosomes and decreased H2O2 release from the nerve terminals in resting and in complex I inhibited conditions, respectively. In isolated rat brain mitochondria using either complex I or complex II substrates leak respiration was stimulated, but ADP-induced respiration was inhibited by vinpocetine. The stimulation of oxidation was associated with a small extent of membrane depolarization. Mitochondrial H2O2 production was inhibited by vinpocetine under all conditions investigated. The most pronounced effects were detected with the complex II substrate succinate. Vinpocetine also mitigated both Ca2+-induced mitochondrial Ca2+-release and Ca2+-induced mitochondrial swelling. It lowered the rate of mitochondrial ATP synthesis, while increasing ATPase activity. These results indicate more than a single mitochondrial target of this vinca alkaloid. The relevance of the affected mitochondrial mechanisms in the anti ischemic effect of vinpocetine is discussed.
机译:长春西汀被认为是神经保护药,几十年来一直用于治疗脑缺血和认知缺陷。多种酶,通道和受体可以结合长春西汀,但是许多作用机理尚不清楚。本研究从线粒体生物能方面研究了长春西汀的作用。研究了原发性脑毛细血管内皮细胞中嘌呤能受体刺激的线粒体Ca 2 + 的吸收和流出。长春西汀对线粒体钙外流有部分抑制作用。在啮齿类动物脑突触小体中,长春西汀(30μM)分别在静止和复杂I抑制条件下抑制解偶联剂刺激的突触小体的呼吸作用,并减少神经末梢的H2O2释放。在使用复杂I或复杂II底物的分离大鼠脑线粒体中,刺激了泄漏呼吸,但是长春西汀抑制了ADP诱导的呼吸。氧化的刺激与少量的膜去极化有关。在所有研究的条件下,长春西汀均能抑制线粒体H2O2的产生。用复合物II底物琥珀酸酯检测到最明显的作用。长春西汀还缓解了Ca 2 + 诱导的线粒体Ca 2 + -释放和Ca 2 + 诱导的线粒体肿胀。它降低了线粒体ATP的合成速率,同时增加了ATPase的活性。这些结果表明该长春花生物碱不仅仅是一个线粒体靶标。讨论了影响的线粒体机制与长春西汀抗缺血作用的相关性。

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