European Molecular Biology Laboratory, Structural and Computational Biology Unit, Meyerhofstrasse 1, 69117 Heidelberg, Germany.
Trends Biochem Sci. 2010 Oct;35(10):565-74. doi: 10.1016/j.tibs.2010.04.003. Epub 2010 May 5.
Recent findings indicate that WD40 domains play central roles in biological processes by acting as hubs in cellular networks; however, they have been studied less intensely than other common domains, such as the kinase, PDZ or SH3 domains. As suggested by various interactome studies, they are among the most promiscuous interactors. Structural studies suggest that this property stems from their ability, as scaffolds, to interact with diverse proteins, peptides or nucleic acids using multiple surfaces or modes of interaction. A general scaffolding role is supported by the fact that no WD40 domain has been found with intrinsic enzymatic activity despite often being part of large molecular machines. We discuss the WD40 domain distributions in protein networks and structures of WD40-containing assemblies to demonstrate their versatility in mediating critical cellular functions.
最近的研究结果表明,WD40 结构域在细胞网络中充当枢纽,从而在生物过程中发挥核心作用;然而,它们的研究不如其他常见结构域(如激酶、PDZ 或 SH3 结构域)深入。各种相互作用组学研究表明,它们是最混杂的相互作用因子之一。结构研究表明,这种特性源于它们作为支架的能力,即使用多种表面或相互作用模式与不同的蛋白质、肽或核酸相互作用。尽管 WD40 结构域通常是大型分子机器的一部分,但没有发现具有内在酶活性的 WD40 结构域,这一事实支持了一般支架作用。我们讨论了 WD40 结构域在蛋白质网络和 WD40 包含的组装体结构中的分布,以证明它们在介导关键细胞功能方面的多功能性。