EAAT5 谷氨酸转运体能以微摩尔的亲和力迅速与小鼠棒状体中的谷氨酸结合。

IF 3.3 2区 医学 Q1 PHYSIOLOGY
Journal of General Physiology Pub Date : 2023-09-04 Epub Date: 2023-07-21 DOI:10.1085/jgp.202313349
Wallace B Thoreson, Bhavana Chhunchha
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引用次数: 0

摘要

视网膜中杆感光细胞对光的反应是由突触谷氨酸释放的变化所决定的,而谷氨酸释放的变化又是由 EAAT5 质膜谷氨酸转运体的再摄取所决定的。异源表达的 EAAT5 在谷氨酸结合后激活速度太慢,无法支持大量摄取。我们通过紫外线闪光光解 MNI-谷氨酸来刺激谷氨酸转运体阴离子电流(IA(glu)),测试了体内小鼠视杆细胞中 EAAT5 的激活情况。解笼反应以 2-3 毫秒的时间常数迅速上升,与自发释放产生的 IA(glu) 事件相似。自发释放事件和由弱闪光诱发的 IA(glu)也以类似的 40-50 毫秒时间常数下降。较强的闪光诱发的反应衰减得更慢。在 35°C 时,时间常数快了两倍,这表明它们反映的是转运体动力学,而不是扩散。选择性 EAAT1 和 EAAT2 抑制剂没有明显效果,表明棒状体中的 IA(glu) 完全来自 EAAT5。我们通过在培养的上皮细胞中表达荧光谷氨酸传感器 iGluSnFr 来校准闪光光解过程中达到的谷氨酸水平。我们将不同谷氨酸浓度下的荧光与 MNI-谷氨酸光解笼诱发的荧光进行了比较。根据闪光强度和谷氨酸之间的关系,EAAT5 的振幅、衰减时间和上升时间的 EC50 值为 10 μM 左右。EAAT5在棒状体中的微摩尔亲和力和快速激活表明它能快速结合突触谷氨酸。然而,我们也发现,EAAT5 电流只在几个囊泡同步释放时才达到饱和,这表明它的能力有限,而且在较高释放速率时,神经胶质的摄取也会发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EAAT5 glutamate transporter rapidly binds glutamate with micromolar affinity in mouse rods.

Light responses of rod photoreceptor cells in the retina are encoded by changes in synaptic glutamate release that is in turn shaped by reuptake involving EAAT5 plasma membrane glutamate transporters. Heterologously expressed EAAT5 activates too slowly upon glutamate binding to support significant uptake. We tested EAAT5 activation in mouse rods in vivo by stimulating glutamate transporter anion currents (IA(glu)) with UV flash photolysis of MNI-glutamate, varying flash intensity to vary glutamate levels. Responses to uncaging rose rapidly with time constants of 2-3 ms, similar to IA(glu) events arising from spontaneous release. Spontaneous release events and IA(glu) evoked by weak flashes also declined with similar time constants of 40-50 ms. Stronger flashes evoked responses that decayed more slowly. Time constants were twofold faster at 35°C, suggesting that they reflect transporter kinetics, not diffusion. Selective EAAT1 and EAAT2 inhibitors had no significant effect, suggesting IA(glu) in rods arises solely from EAAT5. We calibrated glutamate levels attained during flash photolysis by expressing a fluorescent glutamate sensor iGluSnFr in cultured epithelial cells. We compared fluorescence at different glutamate concentrations to fluorescence evoked by photolytic uncaging of MNI-glutamate. The relationship between flash intensity and glutamate yielded EC50 values for EAAT5 amplitude, decay time, and rise time of ∼10 μM. Micromolar affinity and rapid activation of EAAT5 in rods show it can rapidly bind synaptic glutamate. However, we also found that EAAT5 currents are saturated by the synchronous release of only a few vesicles, suggesting limited capacity and a role for glial uptake at higher release rates.

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来源期刊
CiteScore
6.00
自引率
10.50%
发文量
88
审稿时长
6-12 weeks
期刊介绍: General physiology is the study of biological mechanisms through analytical investigations, which decipher the molecular and cellular mechanisms underlying biological function at all levels of organization. The mission of Journal of General Physiology (JGP) is to publish mechanistic and quantitative molecular and cellular physiology of the highest quality, to provide a best-in-class author experience, and to nurture future generations of independent researchers. The major emphasis is on physiological problems at the cellular and molecular level.
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