Department of Cell and Developmental Biology, Vanderbilt University, Nashville, TN, USA.
Institute of Innate Immunity, University Hospital Bonn, University of Bonn, Germany.
FEBS J. 2022 Aug;289(16):4797-4810. doi: 10.1111/febs.16101. Epub 2021 Jul 21.
The regulatory influence of ubiquitin is vast, encompassing all cellular processes, by virtue of its central roles in protein degradation, membrane trafficking, and cell signaling. But how does ubiquitin, a 76 amino acid peptide, carry out such diverse, complex functions in eukaryotic cells? Part of the answer is rooted in the high degree of complexity associated with ubiquitin polymers, which can be 'read' and processed differently depending on topology and cellular context. However, recent evidence indicates that post-translational modifications on ubiquitin itself enhance the complexity of the ubiquitin code. Here, we review recent discoveries related to the regulation of the ubiquitin code by phosphorylation. We summarize what is currently known about phosphorylation of ubiquitin at Ser65, Ser57, and Thr12, and we discuss the potential for phosphoregulation of ubiquitin at other sites. We also discuss accumulating evidence that ubiquitin-like modifiers, such as SUMO, are likewise regulated by phosphorylation. A complete understanding of these regulatory codes and their complex lexicon will require dissection of mechanisms that govern phosphorylation of ubiquitin and ubiquitin-like proteins, particularly in the context of cellular stress and disease.
泛素的调控作用非常广泛,涵盖了所有的细胞过程,这要归功于它在蛋白质降解、膜运输和细胞信号转导中的核心作用。但是,这种由 76 个氨基酸组成的多肽如何在真核细胞中执行如此多样和复杂的功能呢?部分答案源于泛素聚合物的高度复杂性,它可以根据拓扑结构和细胞环境的不同而被“读取”和处理。然而,最近的证据表明,泛素本身的翻译后修饰增强了泛素密码的复杂性。在这里,我们回顾了与磷酸化修饰调控泛素密码相关的最新发现。我们总结了目前已知的泛素在丝氨酸 65、57 和苏氨酸 12 位的磷酸化,讨论了在其他位点磷酸化调控泛素的可能性。我们还讨论了越来越多的证据表明,类泛素修饰物,如 SUMO,也受到磷酸化的调控。要全面了解这些调控代码及其复杂的词汇,需要对控制泛素和类泛素蛋白磷酸化的机制进行剖析,特别是在细胞应激和疾病的背景下。