VIB Structural Biology Research Center (SBRC), Brussels, Belgium and Vrije Universiteit Brussel, Brussels, Belgium.
Chem Soc Rev. 2016 Jul 25;45(15):4252-84. doi: 10.1039/c6cs00011h.
Signal transduction is the primary process by which cells respond to changes in their physical and chemical environments. Cellular response is initiated through a signaling protein (a receptor), which interacts with the "signal", most often a novel molecule outside or inside the cell. The mechanism of activation of the receptor is a conformational change and/or covalent modification, which then sets in motion a signaling pathway, i.e. a cascade of modification and binding events that relay and amplify the message to eventually alter the state of the cell. In reflection of this general perception, concepts such as the "second messenger" and the "phosphorylation cascade" dominate our views of signal transduction. The idea I advocate here is that the non-covalent change in protein conformation itself might serve as the initial or intermittent "signal" in the cascade, and it is often the primary event being recognized and interpreted by downstream receptor(s). This signaling principle is intertwined with many other cellular regulatory concepts, such as (pathway) allostery, conformational spread, induced folding/unfolding, conformational memory, the hierarchical assembly of complexes, and the action of regulatory chaperones and prions. By elaborating on many examples and also recent advances in experimental methodology, I show that conformational signaling, although thus far underappreciated, is a general and robust signaling principle that most of the time operates in close interplay with covalent signals in the cell.
信号转导是细胞对其物理和化学环境变化做出反应的主要过程。细胞反应是通过信号蛋白(受体)启动的,该蛋白与“信号”相互作用,这些信号通常是细胞外或细胞内的新分子。受体的激活机制是构象变化和/或共价修饰,然后引发信号通路,即一系列修饰和结合事件,将信号传递和放大,最终改变细胞的状态。反映了这种普遍认识,诸如“第二信使”和“磷酸化级联”等概念主导了我们对信号转导的看法。我在这里提倡的观点是,蛋白质构象的非共价变化本身可能作为级联中的初始或间歇性“信号”,并且通常是下游受体识别和解释的主要事件。这种信号传递原理与许多其他细胞调节概念交织在一起,例如(途径)变构、构象扩展、诱导折叠/去折叠、构象记忆、复合物的分级组装以及调节伴侣和朊病毒的作用。通过详细阐述许多例子和实验方法的最新进展,我表明构象信号传递虽然迄今为止未被充分认识,但它是一种普遍而强大的信号传递原理,大多数时候与细胞中的共价信号密切相互作用。