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本文引用的文献

1
Rapid kinetic BRET measurements to monitor G protein activation by GPCR and non-GPCR proteins.用于监测G蛋白偶联受体(GPCR)和非GPCR蛋白激活G蛋白的快速动力学生物发光共振能量转移(BRET)测量。
Methods Cell Biol. 2017;142:145-157. doi: 10.1016/bs.mcb.2017.08.001. Epub 2017 Sep 12.
2
Fluorescence polarization assays to measure interactions between Gα subunits of heterotrimeric G proteins and regulatory motifs.用于测量异源三聚体G蛋白的Gα亚基与调控基序之间相互作用的荧光偏振分析。
Methods Cell Biol. 2017;142:133-143. doi: 10.1016/bs.mcb.2017.07.007. Epub 2017 Sep 11.
3
The Gαi-GIV binding interface is a druggable protein-protein interaction.Gαi-GIV 结合界面是一个可成药的蛋白-蛋白相互作用。
Sci Rep. 2017 Aug 17;7(1):8575. doi: 10.1038/s41598-017-08829-7.
4
Molecular mechanism of Gαi activation by non-GPCR proteins with a Gα-Binding and Activating motif.非 GPCR 蛋白通过 Gα 结合激活基序激活 Gαi 的分子机制。
Nat Commun. 2017 May 18;8:15163. doi: 10.1038/ncomms15163.
5
Membrane Recruitment of the Non-receptor Protein GIV/Girdin (Gα-interacting, Vesicle-associated Protein/Girdin) Is Sufficient for Activating Heterotrimeric G Protein Signaling.非受体蛋白GIV/Girdin(Gα相互作用、囊泡相关蛋白/Girdin)的膜募集足以激活异源三聚体G蛋白信号传导。
J Biol Chem. 2016 Dec 30;291(53):27098-27111. doi: 10.1074/jbc.M116.764431. Epub 2016 Nov 18.
6
Potent and Selective Peptide-based Inhibition of the G Protein Gαq.基于肽的高效且选择性抑制G蛋白Gαq
J Biol Chem. 2016 Dec 2;291(49):25608-25616. doi: 10.1074/jbc.M116.740407. Epub 2016 Oct 14.
7
Dominant-negative Gα subunits are a mechanism of dysregulated heterotrimeric G protein signaling in human disease.显性负性Gα亚基是人类疾病中异源三聚体G蛋白信号失调的一种机制。
Sci Signal. 2016 Apr 12;9(423):ra37. doi: 10.1126/scisignal.aad2429.
8
A peptide of the RGS domain of GRK2 binds and inhibits Gα(q) to suppress pathological cardiac hypertrophy and dysfunction.GRK2的RGS结构域的一种肽结合并抑制Gα(q),以抑制病理性心脏肥大和功能障碍。
Sci Signal. 2016 Mar 22;9(420):ra30. doi: 10.1126/scisignal.aae0549.
9
GIV/Girdin (Gα-interacting, Vesicle-associated Protein/Girdin) Creates a Positive Feedback Loop That Potentiates Outside-in Integrin Signaling in Cancer Cells.GIV/Girdin(Gα相互作用、囊泡相关蛋白/Girdin)形成一个正反馈回路,增强癌细胞中的外向整联蛋白信号传导。
J Biol Chem. 2016 Apr 8;291(15):8269-82. doi: 10.1074/jbc.M115.691550. Epub 2016 Feb 17.
10
Evolutionary Conservation of a GPCR-Independent Mechanism of Trimeric G Protein Activation.三聚体G蛋白激活的GPCR非依赖机制的进化保守性
Mol Biol Evol. 2016 Mar;33(3):820-37. doi: 10.1093/molbev/msv336. Epub 2015 Dec 10.

通过合理设计的蛋白质特异性抑制非 G 蛋白偶联受体的 G 蛋白信号转导。

Specific inhibition of GPCR-independent G protein signaling by a rationally engineered protein.

机构信息

Department of Biochemistry, Boston University School of Medicine, Boston, MA 02118.

Department of Chemistry and Molecular Pharmacology, IRB Barcelona, 08028 Barcelona, Spain.

出版信息

Proc Natl Acad Sci U S A. 2017 Nov 28;114(48):E10319-E10328. doi: 10.1073/pnas.1707992114. Epub 2017 Nov 13.

DOI:10.1073/pnas.1707992114
PMID:29133411
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5715746/
Abstract

Activation of heterotrimeric G proteins by cytoplasmic nonreceptor proteins is an alternative to the classical mechanism via G protein-coupled receptors (GPCRs). A subset of nonreceptor G protein activators is characterized by a conserved sequence named the Gα-binding and activating (GBA) motif, which confers guanine nucleotide exchange factor (GEF) activity in vitro and promotes G protein-dependent signaling in cells. GBA proteins have important roles in physiology and disease but remain greatly understudied. This is due, in part, to the lack of efficient tools that specifically disrupt GBA motif function in the context of the large multifunctional proteins in which they are embedded. This hindrance to the study of alternative mechanisms of G protein activation contrasts with the wealth of convenient chemical and genetic tools to manipulate GPCR-dependent activation. Here, we describe the rational design and implementation of a genetically encoded protein that specifically inhibits GBA motifs: GBA inhibitor (GBAi). GBAi was engineered by introducing modifications in Gαi that preclude coupling to every known major binding partner [GPCRs, Gβγ, effectors, guanine nucleotide dissociation inhibitors (GDIs), GTPase-activating proteins (GAPs), or the chaperone/GEF Ric-8A], while favoring high-affinity binding to all known GBA motifs. We demonstrate that GBAi does not interfere with canonical GPCR-G protein signaling but blocks GBA-dependent signaling in cancer cells. Furthermore, by implementing GBAi in vivo, we show that GBA-dependent signaling modulates phenotypes during embryonic development. In summary, GBAi is a selective, efficient, and convenient tool to dissect the biological processes controlled by a GPCR-independent mechanism of G protein activation mediated by cytoplasmic factors.

摘要

细胞质非受体蛋白对三聚体 G 蛋白的激活是经典 G 蛋白偶联受体 (GPCR) 途径的替代机制。非受体 G 蛋白激活剂的一个亚类的特征是具有一个保守序列,命名为 Gα 结合和激活 (GBA) 基序,该基序在体外具有鸟嘌呤核苷酸交换因子 (GEF) 活性,并促进细胞中 G 蛋白依赖性信号转导。GBA 蛋白在生理和疾病中具有重要作用,但研究甚少。部分原因是缺乏有效的工具,无法在其所在的大型多功能蛋白中特异性破坏 GBA 基序的功能。与操纵 GPCR 依赖性激活的丰富化学和遗传工具相比,这种对 G 蛋白激活替代机制的研究阻碍形成鲜明对比。在这里,我们描述了一种特异性抑制 GBA 基序的基因编码蛋白(GBAi)的合理设计和实施。通过对 Gαi 进行修饰来设计 GBAi,这些修饰排除了与每一种已知的主要结合伙伴(GPCR、Gβγ、效应器、鸟嘌呤核苷酸解离抑制剂 (GDIs)、G 蛋白激活蛋白 (GAP) 或伴侣/GEF Ric-8A)的偶联,同时有利于与所有已知的 GBA 基序高亲和力结合。我们证明 GBAi 不会干扰经典的 GPCR-G 蛋白信号转导,但会阻断癌细胞中 GBA 依赖性信号转导。此外,通过在体内实施 GBAi,我们表明 GBA 依赖性信号转导调节胚胎发育过程中的表型。总之,GBAi 是一种选择性、高效和方便的工具,可用于剖析由细胞质因子介导的非 GPCR 依赖的 G 蛋白激活机制控制的生物学过程。