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谷氨酸/天冬氨酸转运体基因敲除小鼠中视网膜穆勒细胞的谷氨酸转运

Glutamate transport by retinal Muller cells in glutamate/aspartate transporter-knockout mice.

作者信息

Sarthy Vijay P, Pignataro Leonardo, Pannicke Thomas, Weick Michael, Reichenbach Andreas, Harada Takayuki, Tanaka Kohichi, Marc Robert

机构信息

Department of Ophthalmology, Northwestern University Feinberg School of Medicine, Chicago, Illinois 60093, USA.

出版信息

Glia. 2005 Jan 15;49(2):184-96. doi: 10.1002/glia.20097.

Abstract

Glutamate transporters are involved in maintaining extracellular glutamate at a low level to ensure a high signal-to-noise ratio for glutamatergic neurotransmission and to protect neurons from excitotoxic damage. The mammalian retina is known to express the excitatory amino acid transporters, EAAT1-5; however, their specific role in glutamate homeostasis is poorly understood. To examine the role of the glial glutamate/aspartate transporter (GLAST) in the retina, we have studied glutamate transport by Muller cells in GLAST-/- mice, using biochemical, electrophysiological, and immunocytochemical techniques. Glutamate uptake assays indicated that the Km value for glutamate uptake was similar in wild-type and GLAST-/- mouse retinas, but the Vmax was approximately 50% lower in the mutant. In Na+-free medium, the Vmax was further reduced by 40%. In patch-clamp recordings of dissociated Muller cells from GLAST-/- mice, application of 0.1 mM glutamate evoked no current showing that the cells lacked functional electrogenic glutamate transporters. The result also indicated that there was no compensatory upregulation of EAATs in Muller cells. [3H]D-Aspartate uptake autoradiography, however, showed that Na+-dependent, high-affinity transporters account for most of the glutamate uptake by Muller cells, and that Na+-independent glutamate transport is negligible. Additional experiments showed that the residual glutamate uptake in Muller cells in the GLAST-/- mouse retina is not due to known glutamate transporters-cystine-glutamate exchanger, ASCT-1, AGT-1, or other heteroexchangers. The present study shows that while several known glutamate transporters are expressed by mammalian Muller cells, new Na+-dependent, high-affinity glutamate transporters remain to be identified.

摘要

谷氨酸转运体参与维持细胞外谷氨酸处于低水平,以确保谷氨酸能神经传递的高信噪比,并保护神经元免受兴奋性毒性损伤。已知哺乳动物视网膜表达兴奋性氨基酸转运体EAAT1 - 5;然而,它们在谷氨酸稳态中的具体作用尚不清楚。为了研究神经胶质谷氨酸/天冬氨酸转运体(GLAST)在视网膜中的作用,我们利用生化、电生理和免疫细胞化学技术,研究了GLAST基因敲除小鼠中穆勒细胞的谷氨酸转运情况。谷氨酸摄取试验表明,野生型和GLAST基因敲除小鼠视网膜中谷氨酸摄取的Km值相似,但突变体中的Vmax值降低了约50%。在无钠培养基中,Vmax值进一步降低了40%。在对GLAST基因敲除小鼠分离的穆勒细胞进行膜片钳记录时,施加0.1 mM谷氨酸未诱发电流,表明这些细胞缺乏功能性电生性谷氨酸转运体。结果还表明,穆勒细胞中EAATs没有代偿性上调。然而,[3H]D - 天冬氨酸摄取放射自显影显示,钠依赖性高亲和力转运体占穆勒细胞谷氨酸摄取的大部分,而钠非依赖性谷氨酸转运可忽略不计。额外的实验表明,GLAST基因敲除小鼠视网膜中穆勒细胞的残余谷氨酸摄取并非由于已知的谷氨酸转运体——胱氨酸 - 谷氨酸交换体、ASCT - 1、AGT - 1或其他异源交换体。本研究表明,虽然哺乳动物的穆勒细胞表达几种已知的谷氨酸转运体,但仍有待鉴定新的钠依赖性高亲和力谷氨酸转运体。

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