Structural Biophysics Laboratory, Center for Cancer Research, National Cancer Institute, P.O. Box B, Building 538, Frederick, MD 21702-1201, USA.
Molecules. 2020 Dec 15;25(24):5933. doi: 10.3390/molecules25245933.
The ubiquitination pathway is central to many cell signaling and regulatory events. One of the intriguing aspects of the pathway is the combinatorial sophistication of substrate recognition and ubiquitin chain building determinations. The abundant structural and biological data portray several characteristic protein folds among E2 and E3 proteins, and the understanding of the combinatorial complexity that enables interaction with much of the human proteome is a major goal to developing targeted and selective manipulation of the pathway. With the commonality of some folds, there are likely other aspects that can provide differentiation and recognition. These aspects involve allosteric effects and conformational dynamics that can direct recognition and chain building processes. In this review, we will describe the current state of the knowledge for conformational dynamics across a wide timescale, address the limitations of present approaches, and illustrate the potential to make new advances in connecting dynamics with ubiquitination regulation.
泛素化途径是许多细胞信号转导和调节事件的核心。该途径的一个有趣方面是底物识别和泛素链组装决定的组合复杂性。丰富的结构和生物学数据描绘了 E2 和 E3 蛋白中的几种特征蛋白折叠,并且理解使它们能够与人类蛋白质组的大部分相互作用的组合复杂性是开发靶向和选择性途径操纵的主要目标。由于一些折叠具有共性,因此可能还有其他方面可以提供区分和识别。这些方面涉及变构效应和构象动力学,它们可以指导识别和链组装过程。在这篇综述中,我们将描述在广泛的时间尺度上构象动力学的现有知识状态,讨论当前方法的局限性,并说明将动力学与泛素化调节联系起来的新进展的潜力。