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RGS16的氨基末端半胱氨酸残基是棕榈酰化以及Gi和Gq介导信号传导调节所必需的。

Amino-terminal cysteine residues of RGS16 are required for palmitoylation and modulation of Gi- and Gq-mediated signaling.

作者信息

Druey K M, Ugur O, Caron J M, Chen C K, Backlund P S, Jones T L

机构信息

Molecular Signal Transduction Section, Laboratory of Allergic Diseases, NIAID, National Institutes of Health, Bethesda, Maryland 20852, USA.

出版信息

J Biol Chem. 1999 Jun 25;274(26):18836-42. doi: 10.1074/jbc.274.26.18836.

DOI:10.1074/jbc.274.26.18836
PMID:10373502
Abstract

RGS proteins (Regulators of G protein Signaling) are a recently discovered family of proteins that accelerate the GTPase activity of heterotrimeric G protein alpha subunits of the i, q, and 12 classes. The proteins share a homologous core domain but have divergent amino-terminal sequences that are the site of palmitoylation for RGS-GAIP and RGS4. We investigated the function of palmitoylation for RGS16, which shares conserved amino-terminal cysteines with RGS4 and RGS5. Mutation of cysteine residues at residues 2 and 12 blocked the incorporation of [3H]palmitate into RGS16 in metabolic labeling studies of transfected cells or into purified RGS proteins in a cell-free palmitoylation assay. The purified RGS16 proteins with the cysteine mutations were still able to act as GTPase-activating protein for Gialpha. Inhibition or a decrease in palmitoylation did not significantly change the amount of protein that was membrane-associated. However, palmitoylation-defective RGS16 mutants demonstrated impaired ability to inhibit both Gi- and Gq-linked signaling pathways when expressed in HEK293T cells. These findings suggest that the amino-terminal region of RGS16 may affect the affinity of these proteins for Galpha subunits in vivo or that palmitoylation localizes the RGS protein in close proximity to Galpha subunits on cellular membranes.

摘要

RGS蛋白(G蛋白信号调节剂)是最近发现的一类蛋白质,可加速i、q和12类异源三聚体G蛋白α亚基的GTP酶活性。这些蛋白质共享一个同源核心结构域,但具有不同的氨基末端序列,这是RGS-GAIP和RGS4的棕榈酰化位点。我们研究了RGS16的棕榈酰化功能,它与RGS4和RGS5共享保守的氨基末端半胱氨酸。在转染细胞的代谢标记研究中,第2和12位半胱氨酸残基的突变阻止了[3H]棕榈酸酯掺入RGS16,或在无细胞棕榈酰化试验中阻止其掺入纯化的RGS蛋白。具有半胱氨酸突变的纯化RGS16蛋白仍能够作为Gialpha的GTP酶激活蛋白。棕榈酰化的抑制或减少并没有显著改变与膜相关的蛋白量。然而,棕榈酰化缺陷的RGS16突变体在HEK293T细胞中表达时,抑制Gi和Gq相关信号通路的能力受损。这些发现表明,RGS16的氨基末端区域可能会影响这些蛋白在体内对Galpha亚基的亲和力,或者棕榈酰化将RGS蛋白定位在细胞膜上与Galpha亚基紧密相邻的位置。

相似文献

1
Amino-terminal cysteine residues of RGS16 are required for palmitoylation and modulation of Gi- and Gq-mediated signaling.RGS16的氨基末端半胱氨酸残基是棕榈酰化以及Gi和Gq介导信号传导调节所必需的。
J Biol Chem. 1999 Jun 25;274(26):18836-42. doi: 10.1074/jbc.274.26.18836.
2
Palmitoylation regulates regulators of G-protein signaling (RGS) 16 function. I. Mutation of amino-terminal cysteine residues on RGS16 prevents its targeting to lipid rafts and palmitoylation of an internal cysteine residue.棕榈酰化调节G蛋白信号调节因子(RGS)16的功能。I. RGS16氨基末端半胱氨酸残基的突变阻止其靶向脂筏以及内部半胱氨酸残基的棕榈酰化。
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Palmitoylation regulates regulator of G-protein signaling (RGS) 16 function. II. Palmitoylation of a cysteine residue in the RGS box is critical for RGS16 GTPase accelerating activity and regulation of Gi-coupled signalling.棕榈酰化调节G蛋白信号调节因子(RGS)16的功能。二、RGS结构域中半胱氨酸残基的棕榈酰化对于RGS16的GTP酶加速活性及对Gi偶联信号的调节至关重要。
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Role of palmitoylation in RGS protein function.棕榈酰化在RGS蛋白功能中的作用。
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Differential contribution of GTPase activation and effector antagonism to the inhibitory effect of RGS proteins on Gq-mediated signaling in vivo.GTP酶激活和效应器拮抗对RGS蛋白在体内对Gq介导信号传导抑制作用的差异贡献。
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The membrane association domain of RGS16 contains unique amphipathic features that are conserved in RGS4 and RGS5.RGS16的膜结合结构域包含在RGS4和RGS5中保守的独特两亲性特征。
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RGS3 is a GTPase-activating protein for g(ialpha) and g(qalpha) and a potent inhibitor of signaling by GTPase-deficient forms of g(qalpha) and g(11alpha).RGS3是一种针对G(αi)和G(αq)的GTP酶激活蛋白,也是G(αq)和G(α11)的GTP酶缺陷型信号传导的强效抑制剂。
Mol Pharmacol. 2000 Oct;58(4):719-28. doi: 10.1124/mol.58.4.719.
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The regulators of G protein signaling (RGS) domains of RGS4, RGS10, and GAIP retain GTPase activating protein activity in vitro.RGS4、RGS10和GAIP的G蛋白信号调节(RGS)结构域在体外保留GTP酶激活蛋白活性。
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Inhibition of brain Gz GAP and other RGS proteins by palmitoylation of G protein alpha subunits.G蛋白α亚基的棕榈酰化对脑Gz GAP及其他RGS蛋白的抑制作用。
Science. 1997 Nov 7;278(5340):1132-5. doi: 10.1126/science.278.5340.1132.

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