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磷脂酶C-β通过与PDZ结构域蛋白的差异相互作用发挥的亚型特异性作用。

Subtype-specific roles of phospholipase C-β via differential interactions with PDZ domain proteins.

作者信息

Kim Jung Kuk, Lim Seyoung, Kim Jinho, Kim Sanguk, Kim Jae Ho, Ryu Sung Ho, Suh Pann-Ghill

机构信息

School of Nano-Biotechnology & Chemical Engineering, Ulsan National Institute of Science and Technology, Ulsan, Republic of Korea.

出版信息

Adv Enzyme Regul. 2011;51(1):138-51. doi: 10.1016/j.advenzreg.2010.10.004. Epub 2010 Oct 28.

DOI:10.1016/j.advenzreg.2010.10.004
PMID:21035486
Abstract

Since we first identified the PLC-β isozyme, enormous studies have been conducted to investigate the functional roles of this protein (Min et al., 1993; Suh et al.,1988). It is now well-known that the four PLC-β subtypes are major effector molecules in GPCR-mediated signaling, especially for intracellular Ca2+ signaling. Nonetheless, it is still poorly understood why multiple PLC-β subtype exist. Most cells express multiple subtypes of PLC-β in different combinations, and each subtype is involved in somewhat different signaling pathways. Therefore, studying the differential roles of each PLC-β subtype is a very interesting issue. In this regard, we focus here on PDZ domain proteins which are novel PLC-β interacting proteins. As scaffolders, PDZ domain proteins recruit various target proteins ranging from membrane receptors to cytoskeletal proteins to assemble highly organized signaling complexes; this can give rise to efficiency and diversity in cellular signaling. Because PLC-β subtypes have different PDZ-binding motifs, it is possible that they are engaged with different PDZ domain proteins, and in turn participate in distinct physiological responses. To date, several PDZ domain proteins, such as the NHERF family, Shank2, and Par-3, have been reported to selectively interact with certain PLC-β subtypes and GPCRs. Systematic predictions of potential binding partners also suggests differential binding properties between PLC-β subtypes. Furthermore, we elucidated parallel signaling processes for multiple PLC-β subtypes, which still perform distinct functions resulting from differential interactions with PDZ domain proteins within a single cell. Therefore, these results highlight the novel function of PDZ domain proteins as intermediaries in subtype-specific role of PLC-β in GPCR-mediated signaling. Future studies will focus on the physiological meanings of this signaling complex formation by different PDZ domain proteins and PLC-β subtypes. It has been observed for a long time that the expression of certain PLC-β subtype fluctuates during diverse physiological conditions. For example, the expression of PLC-β1 is selectively increased during myoblast and adipocyte differentiation (Faenza et al., 2004; O'Carroll et al., 2009). Likewise, PLC-β2 is highly up-regulated during breast cancer progression and plays a critical role in cell migration and mitosis (Bertagnolo et al., 2007). Although PLC-β3 is selectively down-regulated in neuroendocrine tumors, the expression of PLC-β1 is increased in small cell lung carcinoma (Stalberg et al., 2003; Strassheim et al., 2000). In our hypothetical model, it is most likely that up- and down regulation of certain PLC-β subtypes are due to their selective coupling with specific GPCR-mediated signaling, implicated in these pathophysiologic conditions. Therefore, better understanding of selective coupling between PLC-β subtypes, PDZ domain proteins, and GPCRs will shed light on new prognosis and therapy of diverse diseases, and provide potential targets for drug development.

摘要

自从我们首次鉴定出磷脂酶C-β(PLC-β)同工酶以来,已经开展了大量研究来探究这种蛋白质的功能作用(Min等人,1993年;Suh等人,1988年)。现在众所周知,四种PLC-β亚型是G蛋白偶联受体(GPCR)介导的信号传导中的主要效应分子,特别是在细胞内钙离子信号传导方面。然而,对于为何存在多种PLC-β亚型,我们仍然知之甚少。大多数细胞以不同组合表达多种PLC-β亚型,并且每种亚型参与了略有不同的信号传导途径。因此,研究每种PLC-β亚型的不同作用是一个非常有趣的问题。在这方面,我们在此关注PDZ结构域蛋白,它们是新型的PLC-β相互作用蛋白。作为支架蛋白,PDZ结构域蛋白募集从膜受体到细胞骨架蛋白等各种靶蛋白,以组装高度有序的信号复合物;这可以在细胞信号传导中产生效率和多样性。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结构域蛋白结合,进而参与不同的生理反应。迄今为止,已经报道了几种PDZ结构域蛋白,如NHERF家族、Shank2和Par-3,它们能选择性地与某些PLC-β亚型和GPCR相互作用。对潜在结合伴侣的系统预测也表明PLC-β亚型之间存在不同的结合特性。此外,我们阐明了多种PLC-β亚型的平行信号传导过程,这些亚型在单个细胞内仍因与PDZ结构域蛋白的不同相互作用而发挥不同功能。因此,这些结果突出了PDZ结构域蛋白作为PLC-β在GPCR介导的信号传导中亚型特异性作用的中介的新功能。未来的研究将集中于不同的PDZ结构域蛋白和PLC-β亚型形成这种信号复合物的生理意义。长期以来人们观察到,某些PLC-β亚型的表达在不同生理条件下会发生波动。例如,在成肌细胞和脂肪细胞分化过程中,PLC-β1的表达选择性增加(Faenza等人,2004年;O'Carroll等人,2009年)。同样,在乳腺癌进展过程中,PLC-β2高度上调,并在细胞迁移和有丝分裂中起关键作用(Bertagnolo等人,2007年)。虽然在神经内分泌肿瘤中PLC-β3选择性下调,但在小细胞肺癌中PLC-β1的表达增加(Stalberg等人,2003年;Strassheim等人,2000年)。在我们的假设模型中,某些PLC-β亚型的上调和下调很可能是由于它们与特定GPCR介导的信号传导选择性偶联,而这些信号传导与这些病理生理状况有关。因此,更好地理解PLC-β亚型、PDZ结构域蛋白和GPCR之间的选择性偶联将为多种疾病的新预后和治疗提供线索,并为药物开发提供潜在靶点。

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