Akutsu Masato, Dikic Ivan, Bremm Anja
Buchmann Institute for Molecular Life Sciences, Institute of Biochemistry II, Goethe University, Max-von Laue-Str. 15, Frankfurt 60438, Germany
Buchmann Institute for Molecular Life Sciences, Institute of Biochemistry II, Goethe University, Max-von Laue-Str. 15, Frankfurt 60438, Germany.
J Cell Sci. 2016 Mar 1;129(5):875-80. doi: 10.1242/jcs.183954. Epub 2016 Feb 15.
Ubiquitin plays an essential role in modulating protein functions, and deregulation of the ubiquitin system leads to the development of multiple human diseases. Owing to its molecular features, ubiquitin can form various homo- and heterotypic polymers on substrate proteins, thereby provoking distinct cellular responses. The concept of multifaceted ubiquitin chains encoding different functions has been substantiated in recent years. It has been established that all possible ubiquitin linkage types are utilized for chain assembly and propagation of specific signals in vivo. In addition, branched ubiquitin chains and phosphorylated ubiquitin molecules have been put under the spotlight recently. The development of novel technologies has provided detailed insights into the structure and function of previously poorly understood ubiquitin signals. In this Cell Science at a Glance article and accompanying poster, we provide an update on the complexity of ubiquitin chains and their physiological relevance.
泛素在调节蛋白质功能中发挥着至关重要的作用,泛素系统失调会导致多种人类疾病的发生。由于其分子特性,泛素可在底物蛋白上形成各种同型和异型聚合物,从而引发不同的细胞反应。近年来,编码不同功能的多面泛素链的概念已得到证实。现已确定,所有可能的泛素连接类型都用于体内链的组装和特定信号的传播。此外,分支泛素链和磷酸化泛素分子最近也受到了关注。新技术的发展为以前了解甚少的泛素信号的结构和功能提供了详细的见解。在这篇“细胞科学一览”文章及随附的海报中,我们提供了关于泛素链的复杂性及其生理相关性的最新信息。