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GIRK channel modulation by assembly with allosterically regulated RGS proteins

机译:通过装配变构调节的RGS蛋白来调节GIRK通道

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G-protein-activated inward-rectifying K~+ (GIRK) channels hyper-polarize neurons to inhibit synaptic transmission throughout the nervous system. By accelerating G-protein deactivation kinetics, the regulator of G-protein signaling (RGS) protein family modulates the timing of GIRK activity. Despite many investigations, whether RGS proteins modulate GIRK activity in neurons by mechanisms involving kinetic coupling, collision coupling, or macromo-lecular complex formation has remained unknown. Here we show that GIRK modulation occurs by channel assembly with R7-RGS/ Gβ5 complexes under allosteric control of R7 RGS-binding protein (R7BP). Elimination of R7BP occludes the Gβ5 subunit that interacts with GIRK channels. R7BP-bound R7-RGS/Gβ5 complexes and Gβy dimers interact noncompetitively with the intracellular domain of GIRK channels to facilitate rapid activation and deactivation of GIRK currents. By disrupting this allosterically regulated assembly mechanism, R7BP ablation augments GIRK activity. This enhanced GIRK activity increases the drug effects of agonists acting at G-protein-coupled receptors that signal via GIRK channels, as indicated by greater antinociceptive effects of GABA(B) or μ-opioid receptor agonists. These findings show that GIRK current modulation in vivo requires channel assembly with allosterically regulated RGS protein complexes, which provide a target for modulating GIRK activity in neurological disorders in which these channels have crucial roles, including pain, epilepsy, Parkinson's disease and Down syndrome.
机译:G蛋白激活的内向整流K〜+(GIRK)通道可使神经元超极化,从而抑制整个神经系统的突触传递。通过加速G蛋白失活动力学,G蛋白信号(RGS)蛋白家族的调节剂可调节GIRK活性的时间。尽管进行了许多研究,RGS蛋白是否通过涉及动力学偶联,碰撞偶联或大分子复合物形成的机制调节神经元中的GIRK活性仍然未知。在这里,我们显示GIRK调制是通过在R7 RGS结合蛋白(R7BP)的变构控制下与R7-RGS /Gβ5复合物进行通道组装而发生的。 R7BP的消除阻塞了与GIRK通道相互作用的Gβ5亚基。与R7BP结合的R7-RGS /Gβ5复合物和Gβy二聚体与GIRK通道的细胞内结构域非竞争性相互作用,以促进GIRK电流的快速激活和失活。通过破坏这种变构调节的组装机制,R7BP消融增强了GIRK的活性。增强的GIRK活性增加了作用于通过GIRK通道发出信号的G蛋白偶联受体的激动剂的药物作用,如GABA(B)或μ阿片类受体激动剂的更大的伤害感受作用所表明。这些发现表明,GIRK在体内的电流调节需要通过变构调节的RGS蛋白复合物进行通道组装,这为调节神经系统疾病中的GIRK活性提供了靶点,其中这些通道具有关键作用,包括疼痛,癫痫,帕金森氏病和唐氏综合症。

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    Departments of Cell Biology and Physiology,Washington University School of Medicine in St. Louis, St. Louis,MO 63110;

    Departments of Psychiatry, and Washington University School of Medicine in St. Louis, St. Louis,MO 63110,Department of Clinical and Molecular Biomedicine, Section of Pharmacology and Biochemistry, University of Catania, 95125 Catania, Italy;

    Departments of Molecular Therapeutics and Neuroscience, The Scripps Research Institute, Jupiter, FL 33458;

    Departments of Cell Biology and Physiology,Washington University School of Medicine in St. Louis, St. Louis,MO 63110;

    Departments of Molecular Therapeutics and Neuroscience, The Scripps Research Institute, Jupiter, FL 33458;

    Departments of Psychiatry, and Washington University School of Medicine in St. Louis, St. Louis,MO 63110,Departments of Anatomy and Neurobiology, Washington University School of Medicine in St. Louis, St. Louis,MO 63110;

    Departments of Cell Biology and Physiology,Washington University School of Medicine in St. Louis, St. Louis,MO 63110;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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