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谷氨酸通过诱导小鼠脑内皮细胞中 NAADP 和 InsP3 依赖性 Ca2+释放来触发细胞内 Ca2+振荡和一氧化氮释放。

Glutamate triggers intracellular Ca oscillations and nitric oxide release by inducing NAADP- and InsP -dependent Ca release in mouse brain endothelial cells.

机构信息

Laboratory of General Physiology, Department of Biology and Biotechnology "Lazzaro Spallanzani," University of Pavia, Pavia, Italy.

Department of Biology, University of Zakho, Duhok, Kurdistan-Region of Iraq.

出版信息

J Cell Physiol. 2019 Apr;234(4):3538-3554. doi: 10.1002/jcp.26953. Epub 2018 Nov 19.

Abstract

The neurotransmitter glutamate increases cerebral blood flow by activating postsynaptic neurons and presynaptic glial cells within the neurovascular unit. Glutamate does so by causing an increase in intracellular Ca concentration ([Ca ] ) in the target cells, which activates the Ca /Calmodulin-dependent nitric oxide (NO) synthase to release NO. It is unclear whether brain endothelial cells also sense glutamate through an elevation in [Ca ] and NO production. The current study assessed whether and how glutamate drives Ca -dependent NO release in bEND5 cells, an established model of brain endothelial cells. We found that glutamate induced a dose-dependent oscillatory increase in [Ca ] , which was maximally activated at 200 μM and inhibited by α-methyl-4-carboxyphenylglycine, a selective blocker of Group 1 metabotropic glutamate receptors. Glutamate-induced intracellular Ca oscillations were triggered by rhythmic endogenous Ca mobilization and maintained over time by extracellular Ca entry. Pharmacological manipulation revealed that glutamate-induced endogenous Ca release was mediated by InsP -sensitive receptors and nicotinic acid adenine dinucleotide phosphate (NAADP) gated two-pore channel 1. Constitutive store-operated Ca entry mediated Ca entry during ongoing Ca oscillations. Finally, glutamate evoked a robust, although delayed increase in NO levels, which was blocked by pharmacologically inhibition of the accompanying intracellular Ca signals. Of note, glutamate induced Ca -dependent NO release also in hCMEC/D3 cells, an established model of human brain microvascular endothelial cells. This investigation demonstrates for the first time that metabotropic glutamate-induced intracellular Ca oscillations and NO release have the potential to impact on neurovascular coupling in the brain.

摘要

神经递质谷氨酸通过激活神经血管单元中的突触后神经元和突触前神经胶质细胞来增加脑血流。谷氨酸通过在靶细胞中增加细胞内 Ca 浓度 ([Ca]) 来实现这一点,这会激活 Ca/钙调蛋白依赖性一氧化氮 (NO) 合酶以释放 NO。目前尚不清楚脑内皮细胞是否也通过 [Ca] 的升高和 NO 产生来感知谷氨酸。本研究评估了谷氨酸是否以及如何在 bEND5 细胞(脑内皮细胞的一种成熟模型)中驱动 Ca 依赖性 NO 释放。我们发现谷氨酸诱导 [Ca] 的剂量依赖性振荡增加,在 200μM 时最大激活,并被 Group 1 代谢型谷氨酸受体的选择性阻断剂 α-甲基-4-羧基苯甘氨酸抑制。谷氨酸诱导的细胞内 Ca 振荡是由节律性内源性 Ca 动员触发的,并随时间推移由细胞外 Ca 内流维持。药理学操作表明,谷氨酸诱导的内源性 Ca 释放是由 InsP 敏感受体和烟酰胺腺嘌呤二核苷酸磷酸 (NAADP) 门控双孔通道 1 介导的。组成型储存操纵的 Ca 内流在持续的 Ca 振荡期间介导 Ca 内流。最后,谷氨酸引发了强大的,尽管延迟的 NO 水平增加,这被伴随的细胞内 Ca 信号的药理学抑制所阻断。值得注意的是,谷氨酸还诱导 hCMEC/D3 细胞(人脑血管内皮细胞的成熟模型)中 Ca 依赖性 NO 释放。这项研究首次表明,代谢型谷氨酸诱导的细胞内 Ca 振荡和 NO 释放有可能影响大脑中的神经血管偶联。

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