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血小板谷氨酸释放:胞吐作用与谷氨酸转运体反向转运。

Glutamate release from platelets: exocytosis versus glutamate transporter reversal.

机构信息

Department of Neurochemistry, Palladin Institute of Biochemistry, NAS of Ukraine, 9 Leontovicha Street, Kyiv 01601, Ukraine.

出版信息

Int J Biochem Cell Biol. 2013 Nov;45(11):2585-95. doi: 10.1016/j.biocel.2013.08.004. Epub 2013 Aug 30.

Abstract

Platelets express neuronal and glial glutamate transporters EAAT 1-3 in the plasma membrane and vesicular glutamate transporters VGLUT 1,2 in the membrane of secretory granules. This study is focused on the assessment of non-exocytotic glutamate release, that is, the unstimulated release, heteroexchange and glutamate transporter reversal in platelets. Using the glutamate dehydrogenase assay, the absence of unstimulated release of endogenous glutamate from platelets was demonstrated, even after inhibition of glutamate transporters and cytoplasmic enzyme glutamine synthetase by dl-threo-β-benzyloxyaspartate and methionine sulfoximine, respectively. Depolarization of the plasma membrane by exposure to elevated [K(+)] did not induce the release of glutamate from platelets that was shown using the glutamate dehydrogenase assay and radiolabeled l-[(14)C]glutamate. Glutamate efflux by means of heteroexchange with transportable inhibitor of glutamate transporters dl-threo-β-hydroxyaspartate (dl-THA) was not observed. Furthermore, the protonophore cyanide-p-trifluoromethoxyphenyl-hydrazon (FCCP) and inhibitor of V-type H(+)-ATPase bafilomycin A1 also failed to stimulate the release of glutamate from platelets. However, exocytotic release of glutamate from secretory granules in response to thrombin stimulation was not prevented by elevated [K(+)], dl-THA, FCCP and bafilomycin A1. In contrast to nerve terminals, platelets cannot release glutamate in a non-exocytotic manner. Heteroexchange, transporter-mediated and unstimulated release of glutamate are not inherent to platelets. Therefore, platelets may be used as a peripheral marker/model for the analysis of glutamate uptake by brain nerve terminals only (direct function of transporters), whereas the mechanisms of glutamate release are different in platelets and nerve terminals. Glutamate is released by platelets exclusively by means of exocytosis. Also, reverse function of vesicular glutamate transporters of platelets is rather ambiguous.

摘要

血小板在质膜上表达神经元和神经胶质谷氨酸转运体 EAAT1-3,在分泌颗粒的膜上表达囊泡谷氨酸转运体 VGLUT1、2。本研究集中于评估非胞吐谷氨酸释放,即血小板的无刺激释放、异体交换和谷氨酸转运体反向转运。使用谷氨酸脱氢酶测定法,证明即使分别用 dl-threo-β-苯甲氧基天冬氨酸和甲硫氨酸亚砜抑制谷氨酸转运体和细胞质酶谷氨酰胺合成酶,也不存在血小板内源性谷氨酸的无刺激释放。用谷氨酸脱氢酶测定法和放射性标记的 l-[(14)C]谷氨酸证明,升高 [K(+)] 使质膜去极化也不会诱导谷氨酸从血小板中释放。没有观察到通过与可转运的谷氨酸转运体抑制剂 dl-threo-β-羟基天冬氨酸(dl-THA)的异体交换进行谷氨酸外排。此外,质子载体氰化物-p-三氟甲氧基苯腙(FCCP)和 V 型 H(+) -ATP 酶抑制剂巴弗洛霉素 A1 也未能刺激谷氨酸从血小板中释放。然而,升高 [K(+)]、dl-THA、FCCP 和巴弗洛霉素 A1 并不能阻止血小板内的分泌颗粒对凝血酶刺激的谷氨酸的胞吐释放。与神经末梢不同,血小板不能以非胞吐的方式释放谷氨酸。异体交换、转运体介导和无刺激的谷氨酸释放不是血小板固有的。因此,血小板仅可用于分析脑神经末梢摄取谷氨酸的外周标志物/模型(转运体的直接功能),而血小板和神经末梢的谷氨酸释放机制不同。血小板仅通过胞吐作用释放谷氨酸。此外,血小板囊泡谷氨酸转运体的反向功能也不太明确。

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