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Differential Regulation of Kainate Receptor Trafficking by Phosphorylation of Distinct Sites on GluR6

机译:GluR6上不同位点的磷酸化对空港受体运输的差异调节。

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摘要

Kainate receptors are widely expressed in the brain, and are present at pre- and postsynaptic sites where they play a prominent role in synaptic plasticity and the regulation of network activity. Within individual neurons, kainate receptors of different subunit compositions are targeted to various locations where they serve distinct functional roles. Despite this complex targeting, relatively little is known about the molecular mechanisms regulating kainate receptor subunit trafficking. Here we investigate the role of phosphorylation in the trafficking of the GluR6 kainate receptor subunit. We identify two specific residues on the GluR6 C terminus, Ser846 and Ser868, which are phosphorylated by protein kinase C (PKC) and dramatically regulate GluR6 surface expression. By using GluR6 containing phosphomimetic and nonphosphorylatable mutations for these sites expressed in heterologous cells or in neurons lacking endogenous GluR6, we show that phosphorylation of Ser846 or Ser868 regulates receptor trafficking through the biosynthetic pathway. Additionally, Ser846 phosphorylation dynamically regulates endocytosis of GluR6 at the plasma membrane. Our findings thus demonstrate that phosphorylation of PKC sites on GluR6 regulates surface expression of GluR6 at distinct intracellular trafficking pathways, providing potential molecular mechanisms for the PKC-dependent regulation of synaptic kainate receptor function observed during various forms of synaptic plasticity.
机译:海藻酸盐受体在脑中广泛表达,并存在于突触前和突触后的位置,在突触可塑性和网络活动的调节中起着重要作用。在单个神经元内,不同亚基组成的红藻氨酸盐受体被定位到它们发挥不同功能作用的各个位置。尽管有这种复杂的靶向作用,但对调节海藻酸酯受体亚基运输的分子机制知之甚少。在这里,我们研究了磷酸化在GluR6海藻酸酯受体亚基的运输中的作用。我们在GluR6 C末端鉴定出两个特定的残基,Ser 846 和Ser 868 ,它们被蛋白激酶C(PKC)磷酸化并显着调节GluR6的表面表达。通过在异源细胞或缺乏内源性GluR6的神经元中表达的这些位点使用含有拟磷酸化和不可磷酸化突变的GluR6,我们表明Ser 846 或Ser 868 的磷酸化通过生物合成途径。此外,Ser 846 磷酸化可动态调节质膜上GluR6的胞吞作用。因此,我们的发现表明,GluR6上PKC位点的磷酸化可调节GluR6在不同的细胞内运输途径中的表面表达,从而为各种形式的突触可塑性中观察到的PKC依赖性突触红藻酸酯受体功能提供了潜在的分子机制。

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