Attali Ilan, Tobelaim William Sam, Persaud Avinash, Motamedchaboki Khatereh, Simpson-Lavy Kobi J, Mashahreh Bayan, Levin-Kravets Olga, Keren-Kaplan Tal, Pilzer Inbar, Kupiec Martin, Wiener Reuven, Wolf Dieter A, Rotin Daniela, Prag Gali
Department of Biochemistry and Molecular Biology, the George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv, Israel.
Department of Physiology & Pharmacology, Sackler Tel Aviv University, Tel Aviv, Israel.
EMBO J. 2017 Feb 15;36(4):425-440. doi: 10.15252/embj.201694314. Epub 2017 Jan 9.
Ubiquitylation controls protein function and degradation. Therefore, ubiquitin ligases need to be tightly controlled. We discovered an evolutionarily conserved allosteric restraint mechanism for Nedd4 ligases and demonstrated its function with diverse substrates: the yeast soluble proteins Rpn10 and Rvs167, and the human receptor tyrosine kinase FGFR1 and cardiac I potassium channel. We found that a potential trimerization interface is structurally blocked by the HECT domain α1-helix, which further undergoes ubiquitylation on a conserved lysine residue. Genetic, bioinformatics, biochemical and biophysical data show that attraction between this α1-conjugated ubiquitin and the HECT ubiquitin-binding patch pulls the α1-helix out of the interface, thereby promoting trimerization. Strikingly, trimerization renders the ligase inactive. Arginine substitution of the ubiquitylated lysine impairs this inactivation mechanism and results in unrestrained FGFR1 ubiquitylation in cells. Similarly, electrophysiological data and TIRF microscopy show that NEDD4 unrestrained mutant constitutively downregulates the I channel, thus confirming the functional importance of E3-ligase autoinhibition.
泛素化调控蛋白质功能与降解。因此,泛素连接酶需要受到严格控制。我们发现了一种Nedd4连接酶在进化上保守的变构抑制机制,并通过多种底物证明了其功能:酵母可溶性蛋白Rpn10和Rvs167,以及人类受体酪氨酸激酶FGFR1和心脏I型钾通道。我们发现一个潜在的三聚化界面在结构上被HECT结构域的α1螺旋所阻断,该α1螺旋在一个保守的赖氨酸残基上进一步发生泛素化。遗传学、生物信息学、生物化学和生物物理数据表明,这种α1连接的泛素与HECT泛素结合位点之间的相互吸引将α1螺旋从界面中拉出,从而促进三聚化。引人注目的是,三聚化使连接酶失活。对泛素化赖氨酸进行精氨酸取代会损害这种失活机制,并导致细胞中FGFR1的泛素化不受抑制。同样,电生理数据和全内反射荧光显微镜显示,不受抑制的NEDD4突变体持续下调I型通道,从而证实了E3连接酶自身抑制的功能重要性。