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Prolonged activation of NMDA receptors promotes dephosphorylation and alters postendocytic sorting of GABAB receptors.NMDA 受体的持续激活促进了 GABAB 受体的去磷酸化和内化后分拣的改变。
Proc Natl Acad Sci U S A. 2010 Aug 3;107(31):13918-23. doi: 10.1073/pnas.1000853107. Epub 2010 Jul 19.
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Ubiquitin-dependent lysosomal targeting of GABA(A) receptors regulates neuronal inhibition.泛素依赖性γ-氨基丁酸A受体的溶酶体靶向作用调节神经元抑制。
Proc Natl Acad Sci U S A. 2009 Oct 13;106(41):17552-7. doi: 10.1073/pnas.0905502106. Epub 2009 Oct 6.
3
Identification of a novel region of the GABA(B2) C-terminus that regulates surface expression and neuronal targeting of the GABA(B) receptor.鉴定γ-氨基丁酸B2(GABA(B2))羧基末端的一个新区域,该区域调节γ-氨基丁酸B(GABA(B))受体的表面表达和神经元靶向。
Eur J Neurosci. 2009 Mar;29(5):869-78. doi: 10.1111/j.1460-9568.2009.06636.x.
4
Constitutive, agonist-accelerated, recycling and lysosomal degradation of GABA(B) receptors in cortical neurons.皮质神经元中GABA(B)受体的组成性、激动剂加速性、循环利用及溶酶体降解
Mol Cell Neurosci. 2008 Dec;39(4):628-37. doi: 10.1016/j.mcn.2008.09.004. Epub 2008 Oct 2.
5
Tracking cell surface GABAB receptors using an alpha-bungarotoxin tag.使用α-银环蛇毒素标签追踪细胞表面的GABAB受体。
J Biol Chem. 2008 Dec 12;283(50):34745-52. doi: 10.1074/jbc.M803197200. Epub 2008 Sep 23.
6
GISP binding to TSG101 increases GABA receptor stability by down-regulating ESCRT-mediated lysosomal degradation.GISP与TSG101的结合通过下调ESCRT介导的溶酶体降解来增加GABA受体的稳定性。
J Neurochem. 2008 Oct;107(1):86-95. doi: 10.1111/j.1471-4159.2008.05580.x. Epub 2008 Jul 17.
7
The availability of surface GABA B receptors is independent of gamma-aminobutyric acid but controlled by glutamate in central neurons.中枢神经元中,表面GABA B受体的可利用性不依赖于γ-氨基丁酸,而是受谷氨酸调控。
J Biol Chem. 2008 Sep 5;283(36):24641-8. doi: 10.1074/jbc.M802419200. Epub 2008 Jun 25.
8
Cell-surface protein-protein interaction analysis with time-resolved FRET and snap-tag technologies: application to GPCR oligomerization.利用时间分辨荧光共振能量转移和快速标记技术进行细胞表面蛋白质-蛋白质相互作用分析:应用于G蛋白偶联受体寡聚化
Nat Methods. 2008 Jun;5(6):561-7. doi: 10.1038/nmeth.1213. Epub 2008 May 18.
9
Functioning of the dimeric GABA(B) receptor extracellular domain revealed by glycan wedge scanning.聚糖楔形扫描揭示二聚体GABA(B)受体胞外结构域的功能
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10
Gamma-aminobutyric acid type B receptors are constitutively internalized via the clathrin-dependent pathway and targeted to lysosomes for degradation.γ-氨基丁酸B型受体通过网格蛋白依赖途径持续内化,并靶向溶酶体进行降解。
J Biol Chem. 2007 Aug 17;282(33):24157-65. doi: 10.1074/jbc.M702626200. Epub 2007 Jun 20.

γ-氨基丁酸 B 型(GABA(B)) 受体内化受 R2 亚基调节。

Gamma-aminobutyric acid type B (GABA(B)) receptor internalization is regulated by the R2 subunit.

机构信息

Department of Neuroscience, Physiology and Pharmacology, University College London, Gower Street, London WC1E 6BT, United Kingdom.

出版信息

J Biol Chem. 2011 Jul 8;286(27):24324-35. doi: 10.1074/jbc.M110.220814.

DOI:10.1074/jbc.M110.220814
PMID:21724853
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3129212/
Abstract

γ-Aminobutyric acid type B (GABA(B)) receptors are important for slow synaptic inhibition in the CNS. The efficacy of inhibition is directly related to the stability of cell surface receptors. For GABA(B) receptors, heterodimerization between R1 and R2 subunits is critical for cell surface expression and signaling, but how this determines the rate and extent of receptor internalization is unknown. Here, we insert a high affinity α-bungarotoxin binding site into the N terminus of the R2 subunit and reveal its dominant role in regulating the internalization of GABA(B) receptors in live cells. To simultaneously study R1a and R2 trafficking, a new α-bungarotoxin binding site-labeling technique was used, allowing α-bungarotoxin conjugated to different fluorophores to selectively label R1a and R2 subunits. This approach demonstrated that R1a and R2 are internalized as dimers. In heterologous expression systems and neurons, the rates and extents of internalization for R1aR2 heteromers and R2 homomers are similar, suggesting a regulatory role for R2 in determining cell surface receptor stability. The fast internalization rate of R1a, which has been engineered to exit the endoplasmic reticulum, was slowed to that of R2 by truncating the R1a C-terminal tail or by removing a dileucine motif in its coiled-coil domain. Slowing the rate of internalization by co-assembly with R2 represents a novel role for GPCR heterodimerization whereby R2 subunits, via their C terminus coiled-coil domain, mask a dileucine motif on R1a subunits to determine the surface stability of the GABA(B) receptor.

摘要

γ-氨基丁酸 B 型 (GABA(B)) 受体对于中枢神经系统中的慢突触抑制非常重要。抑制的效力与细胞表面受体的稳定性直接相关。对于 GABA(B) 受体,R1 和 R2 亚基的异二聚化对于细胞表面表达和信号转导至关重要,但这种异二聚化如何决定受体内化的速度和程度尚不清楚。在这里,我们将高亲和力α-银环蛇毒素结合位点插入 R2 亚基的 N 端,并揭示其在调节活细胞中 GABA(B) 受体内化中的主导作用。为了同时研究 R1a 和 R2 的转运,我们使用了一种新的 α-银环蛇毒素结合位点标记技术,允许不同荧光团缀合的 α-银环蛇毒素选择性标记 R1a 和 R2 亚基。这种方法表明 R1a 和 R2 作为二聚体内化。在异源表达系统和神经元中,R1aR2 异源二聚体和 R2 同源二聚体的内化速度和程度相似,这表明 R2 在决定细胞表面受体稳定性方面起着调节作用。通过工程改造使 R1a 从内质网中逸出的快速内化速率通过截断 R1a C 端尾巴或去除其卷曲螺旋域中的双亮氨酸基序而被减缓至 R2 的内化速率。通过与 R2 共同组装来减缓内化速度代表了 GPCR 异二聚化的一个新作用,其中 R2 亚基通过其 C 端卷曲螺旋域掩盖 R1a 亚基上的双亮氨酸基序,从而确定 GABA(B) 受体的表面稳定性。