Gupta Mona, Venkatramani Ravindra, Ainavarapu Sri Rama Koti
Department of Chemical Sciences, Tata Institute of Fundamental Research, Dr Homi Bhabha Road, Colaba, Mumbai 400005, India.
J Phys Chem B. 2021 Feb 4;125(4):1009-1019. doi: 10.1021/acs.jpcb.0c08085. Epub 2021 Jan 25.
Despite many studies on ligand-modulated protein mechanics, a comparative analysis of the role of ligand binding site on any specific protein fold is yet to be made. In this study, we explore the role of ligand binding site on the mechanical properties of β-grasp fold proteins, namely, ubiquitin and small ubiquitin related modifier 1 (SUMO1). The terminal segments directly connected through hydrogen bonds constitute the β-clamp geometry (or mechanical clamp), which confers high mechanical resilience to the β-grasp fold. Here, we study ubiquitin complexed with CUE2-1, a ubiquitin-binding domain (UBD) from yeast endonuclease protein Cue2, using a combination of single-molecule force spectroscopy (SMFS) and steered molecular dynamics (SMD) simulations. Our study reveals that CUE2-1 does not alter the mechanical properties of ubiquitin, despite directly interacting with its β-clamp. To explore the role of ligand binding site, we compare the mechanical properties of the ubiquitin/CUE2-1 complex with that of previously studied SUMO1/S12, another β-grasp protein complex, using SMD simulations. Simulations on the SUMO1/S12 complex corroborate previous experimentally observed enhancement in the mechanical stability of SUMO1, even though S12 binds away from the β-clamp. Differences in ligand binding-induced structural impact at the transition state of the two complexes explain the differences in ligand modulated protein mechanics. Contrary to previous reports, our study demonstrates that direct binding of ligands to the mechanical clamp does not necessarily alter the mechanical stability of β-grasp fold proteins. Rather, binding interactions away from the clamp can reinforce protein stability provided by the β-grasp fold. Our study highlights the importance of binding site and binding modes of ligands in modulating the mechanical stability of β-grasp fold proteins.
尽管对配体调节的蛋白质力学进行了许多研究,但尚未对任何特定蛋白质折叠中配体结合位点的作用进行比较分析。在本研究中,我们探讨了配体结合位点对β-抓握折叠蛋白(即泛素和小泛素相关修饰因子1(SUMO1))力学性质的作用。通过氢键直接连接的末端片段构成了β-钳几何结构(或机械钳),赋予β-抓握折叠高机械弹性。在这里,我们结合单分子力谱(SMFS)和引导分子动力学(SMD)模拟,研究了与来自酵母内切核酸酶蛋白Cue2的泛素结合结构域(UBD)CUE2-1复合的泛素。我们的研究表明,尽管CUE2-1直接与其β-钳相互作用,但它不会改变泛素的力学性质。为了探究配体结合位点的作用,我们使用SMD模拟比较了泛素/CUE2-1复合物与先前研究的另一种β-抓握蛋白复合物SUMO1/S12的力学性质。对SUMO1/S12复合物的模拟证实了先前实验观察到的SUMO1力学稳定性增强,尽管S12结合在远离β-钳的位置。两种复合物在过渡态时配体结合诱导的结构影响的差异解释了配体调节的蛋白质力学的差异。与先前的报道相反,我们的研究表明配体与机械钳的直接结合不一定会改变β-抓握折叠蛋白的力学稳定性。相反,远离钳的结合相互作用可以增强β-抓握折叠提供的蛋白质稳定性。我们的研究强调了配体的结合位点和结合模式在调节β-抓握折叠蛋白力学稳定性中的重要性。