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Functional Modulation of the Glutamate Transporter Variant GLT1b by the PDZ Domain Protein PICK1

机译:PDZ域蛋白PICK1对谷氨酸转运蛋白变体GLT1b的功能性调节。

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摘要

The dominant glutamate transporter isoform in the mammalian brain, GLT1, exists as at least three splice variants, GLT1a, GLT1b, and GLT1c. GLT1b interacts with the scaffold protein PICK1 (protein interacting with kinase C1), which is implicated in glutamatergic neurotransmission via its regulatory effect on trafficking of AMPA-type glutamate receptors. The 11 extreme C-terminal residues specific for the GLT1b variant are essential for its specific interaction with the PICK1 PDZ domain, but a functional consequence of this interaction has remained unresolved. To identify a functional effect of PICK1 on GLT1a or GLT1b separately, we employed the Xenopus laevis expression system. GLT1a and GLT1b displayed similar electrophysiological properties and EC50 for glutamate. Co-expressed PICK1 localized efficiently to the plasma membrane and resulted in a 5-fold enhancement of the leak current in GLT1b-expressing oocytes with only a minor effect on [3H]glutamate uptake. Three different GLT1 substrates all caused a slow TBOA-sensitive decay in the membrane current upon prolonged application, which provides support for the leak current being mediated by GLT1b itself. Leak and glutamate-evoked currents in GLT1a-expressing oocytes were unaffected by PICK1 co-expression. PKC activation down-regulated GLT1a and GLT1b activity to a similar extent, which was not affected by co-expression of PICK1. In conclusion, PICK1 may not only affect glutamatergic neurotransmission by its regulatory effect on glutamate receptors but may also affect neuronal excitability via an increased GLT1b-mediated leak current. This may be particularly relevant in pathological conditions such as amyotrophic lateral sclerosis and cerebral hypoxia, which are associated with neuronal GLT1b up-regulation.
机译:哺乳动物脑中的主要谷氨酸转运蛋白同工型GLT1以至少三个剪接变体GLT1a,GLT1b和GLT1c的形式存在。 GLT1b与支架蛋白PICK1(与激酶C1相互作用的蛋白)相互作用,该蛋白通过其对AMPA型谷氨酸受体转运的调节作用而参与谷氨酸能神经传递。 GLT1b变体特异的11个极端C末端残基对于其与PICK1 PDZ结构域的特异性相互作用至关重要,但这种相互作用的功能性后果仍未解决。若要分别确定PICK1对GLT1a或GLT1b的功能作用,我们采用非洲爪蟾(Xenopus laevis)表达系统。 GLT1a和GLT1b对谷氨酸盐表现出相似的电生理特性和EC50。共表达的PICK1有效地定位在质膜上,并导致表达GLT1b的卵母细胞的漏电流增加了5倍,对[ 3 H]谷氨酸的摄取只有很小的影响。长时间使用后,三种不同的GLT1底物都会引起TBOA敏感的缓慢的膜电流衰减,这为GLT1b自身介导的泄漏电流提供了支持。在表达GLT1a的卵母细胞中泄漏和谷氨酸引起的电流不受PICK1共表达的影响。 PKC激活将GLT1a和GLT1b活性下调到相似的程度,这不受PICK1共表达的影响。总之,PICK1不仅可以通过其对谷氨酸受体的调节作用来影响谷氨酸能神经传递,还可以通过增加GLT1b介导的漏电流来影响神经元兴奋性。这在与神经元GLT1b上调相关的肌萎缩性侧索硬化和脑缺氧等病理状况中可能特别相关。

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