Division of Molecular and Life Science, Pohang University of Science and Technology, Pohang 790-784, Republic of Korea.
J Biol Chem. 2012 Jun 15;287(25):21012-24. doi: 10.1074/jbc.M111.337865. Epub 2012 Apr 23.
Phospholipase C-β (PLC-β) is a key molecule in G protein-coupled receptor (GPCR)-mediated signaling. Many studies have shown that the four PLC-β subtypes have different physiological functions despite their similar structures. Because the PLC-β subtypes possess different PDZ-binding motifs, they have the potential to interact with different PDZ proteins. In this study, we identified PDZ domain-containing 1 (PDZK1) as a PDZ protein that specifically interacts with PLC-β3. To elucidate the functional roles of PDZK1, we next screened for potential interacting proteins of PDZK1 and identified the somatostatin receptors (SSTRs) as another protein that interacts with PDZK1. Through these interactions, PDZK1 assembles as a ternary complex with PLC-β3 and SSTRs. Interestingly, the expression of PDZK1 and PLC-β3, but not PLC-β1, markedly potentiated SST-induced PLC activation. However, disruption of the ternary complex inhibited SST-induced PLC activation, which suggests that PDZK1-mediated complex formation is required for the specific activation of PLC-β3 by SST. Consistent with this observation, the knockdown of PDZK1 or PLC-β3, but not that of PLC-β1, significantly inhibited SST-induced intracellular Ca(2+) mobilization, which further attenuated subsequent ERK1/2 phosphorylation. Taken together, our results strongly suggest that the formation of a complex between SSTRs, PDZK1, and PLC-β3 is essential for the specific activation of PLC-β3 and the subsequent physiologic responses by SST.
磷脂酶 C-β(PLC-β)是 G 蛋白偶联受体(GPCR)介导信号转导的关键分子。许多研究表明,尽管四种 PLC-β亚型具有相似的结构,但它们具有不同的生理功能。由于 PLC-β亚型具有不同的 PDZ 结合基序,它们有可能与不同的 PDZ 蛋白相互作用。在本研究中,我们鉴定了 PDZ 结构域包含蛋白 1(PDZK1)为一种 PDZ 蛋白,它可以特异性地与 PLC-β3 相互作用。为了阐明 PDZK1 的功能作用,我们接下来筛选了 PDZK1 的潜在相互作用蛋白,并鉴定出生长抑素受体(SSTRs)是另一种与 PDZK1 相互作用的蛋白。通过这些相互作用,PDZK1 与 PLC-β3 和 SSTRs 组装成一个三元复合物。有趣的是,PDZK1 和 PLC-β3 的表达,而不是 PLC-β1 的表达,显著增强了 SST 诱导的 PLC 激活。然而,三元复合物的破坏抑制了 SST 诱导的 PLC 激活,这表明 PDZK1 介导的复合物形成对于 SST 特异性激活 PLC-β3 是必需的。与这一观察结果一致,PDZK1 或 PLC-β3 的敲低,而不是 PLC-β1 的敲低,显著抑制了 SST 诱导的细胞内 Ca(2+)动员,这进一步减弱了随后的 ERK1/2 磷酸化。总之,我们的结果强烈表明 SSTRs、PDZK1 和 PLC-β3 之间形成复合物对于 SST 特异性激活 PLC-β3 和随后的生理反应是必不可少的。