首页> 美国卫生研究院文献>The Journal of Neuroscience >Glutamate Receptor δ2 Associates with Metabotropic Glutamate Receptor 1 (mGluR1) Protein Kinase Cγ and Canonical Transient Receptor Potential 3 and Regulates mGluR1-Mediated Synaptic Transmission in Cerebellar Purkinje Neurons
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Glutamate Receptor δ2 Associates with Metabotropic Glutamate Receptor 1 (mGluR1) Protein Kinase Cγ and Canonical Transient Receptor Potential 3 and Regulates mGluR1-Mediated Synaptic Transmission in Cerebellar Purkinje Neurons

机译:谷氨酸受体δ2与代谢型谷氨酸受体1(mGluR1)蛋白激酶Cγ和规范瞬态受体电位3相关联并调节小脑浦肯野神经元中的mGluR1介导的突触传递。

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摘要

Cerebellar motor coordination and cerebellar Purkinje cell synaptic function require metabotropic glutamate receptor 1 (mGluR1, Grm1). We used an unbiased proteomic approach to identify protein partners for mGluR1 in cerebellum and discovered glutamate receptor δ2 (GluRδ2, Grid2, GluΔ2) and protein kinase Cγ (PKCγ) as major interactors. We also found canonical transient receptor potential 3 (TRPC3), which is also needed for mGluR1-dependent slow EPSCs and motor coordination and associates with mGluR1, GluRδ2, and PKCγ. Mutation of GluRδ2 changes subcellular fractionation of mGluR1 and TRPC3 to increase their surface expression. Fitting with this, mGluR1-evoked inward currents are increased in GluRδ2 mutant mice. Moreover, loss of GluRδ2 disrupts the time course of mGluR1-dependent synaptic transmission at parallel fiber–Purkinje cells synapses. Thus, GluRδ2 is part of the mGluR1 signaling complex needed for cerebellar synaptic function and motor coordination, explaining the shared cerebellar motor phenotype that manifests in mutants of the mGluR1 and GluRδ2 signaling pathways.
机译:小脑运动协调和小脑浦肯野细胞突触功能需要代谢型谷氨酸受体1(mGluR1,Grm1)。我们使用无偏蛋白组学方法鉴定小脑中mGluR1的蛋白质伴侣,并发现谷氨酸受体δ2(GluRδ2,Grid2,GluΔ2)和蛋白激酶Cγ(PKCγ)是主要的相互作用因子。我们还发现了规范的瞬时受体电位3(TRPC3),这对于依赖mGluR1的慢速EPSC和运动协调也是必需的,并且与mGluR1,GluRδ2和PKCγ相关。 GluRδ2的突变改变了mGluR1和TRPC3的亚细胞级分,以增加其表面表达。与此相适应,在GluRδ2突变小鼠中,mGluR1引起的内向电流增加。此外,GluRδ2的丧失会破坏平行纤维-Purkinje细胞突触中依赖于mGluR1的突触传递的时间过程。因此,GluRδ2是小脑突触功能和运动协调所需的mGluR1信号复合物的一部分,解释了在mGluR1和GluRδ2信号传导途径的突变体中表现出的共享小脑运动表型。

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