Molecular Simulations and Design Group, Max Planck Institute for Dynamics of Complex Technical Systems, 39106 Magdeburg, Germany.
Medical Faculty, Institute for Experimental Internal Medicine, Otto von Guericke University, 39120 Magdeburg, Germany.
J Chem Inf Model. 2023 Apr 10;63(7):2084-2094. doi: 10.1021/acs.jcim.2c01281. Epub 2023 Mar 21.
Deubiquitinylating enzymes (DUBs) regulate the deubiquitinylation process of post-translationally modified proteins and thus control protein signaling in various cellular processes. The DUB Cezanne-1 catalyzes the cleavage of the iso-peptide bond of Lys11-linked polyubiquitin chains with high selectivity. Crystal structures of Cezanne-1 in different states provide important insight regarding the complex formation and global changes during the catalytic cycle but are lacking details of dynamics and control of activation. Activity-based probes are used to isolate intermediate states upon forming covalent bonds with the DUB active site. Those, however, may lead to structures that are non-native. Conformational changes of Cezanne-1, during its process of activation and proteolytic activity, are investigated using all-atom molecular dynamics (MD) simulations of the ubiquitin-free, diubiquitin-bound, and monoubiquitin-bound Cezanne-1 DUB for a total of ∼18 μs. Our results show that ubiquitin-free Cezanne-1 dynamically shuttles between catalytically competent and incompetent states which suggests that its activation is independent of substrate binding. The catalytically competent substrate-free Cezanne-1 promotes distal ubiquitin substrate access to the catalytic center. The subsequent binding of the proximal ubiquitin shifts the equilibrium toward the catalytically competent state of the dyad, thereby promoting proteolysis of the iso-peptide bond. After cleavage of the scissile bond, sequential dissociation of first the proximal ubiquitin induces the inactivation of Cezanne-1. The subsequent release of the distal ubiquitin fully reconstitutes the inactive substrate-free state of Cezanne-1. The process of activation and catalytic turnover of DUB Cezanne-1 is a multistage cycle with several critical dynamic transitions that cannot be characterized based on protein structures alone. Activity-based probes of cysteine proteases lead to non-native protein-protein contacts, which need to be resolved in order to be able to issue statements about physiological states and substrate binding.
去泛素化酶(DUBs)调节翻译后修饰蛋白的去泛素化过程,从而控制各种细胞过程中的蛋白质信号。DUB Cezanne-1 以高选择性催化裂解 Lys11 连接的多泛素链的异肽键。不同状态下 Cezanne-1 的晶体结构为复杂形成和催化循环过程中的全局变化提供了重要的见解,但缺乏关于激活动力学和控制的细节。基于活性的探针用于与 DUB 活性位点形成共价键时分离中间状态。然而,这些探针可能会导致非天然结构。使用无泛素、二泛素结合和单泛素结合的 Cezanne-1 DUB 的全原子分子动力学(MD)模拟研究了 Cezanne-1 在激活和蛋白水解活性过程中的构象变化,总共模拟了约 18 μs。结果表明,无泛素的 Cezanne-1 在催化有效和无效状态之间动态穿梭,这表明其激活不依赖于底物结合。催化有效的无底物 Cezanne-1 促进了远端泛素底物进入催化中心。随后近端泛素的结合将平衡向二联体的催化有效状态转移,从而促进异肽键的水解。在裂解后,首先是近端泛素的连续解离诱导 Cezanne-1 的失活。随后远端泛素的释放完全重建了 Cezanne-1 的无活性无底物状态。DUB Cezanne-1 的激活和催化周转过程是一个多阶段循环,有几个关键的动态转变,仅基于蛋白质结构无法对其进行描述。半胱氨酸蛋白酶的基于活性的探针会导致非天然的蛋白质-蛋白质接触,需要解决这些接触才能能够对生理状态和底物结合发表声明。