Division of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul 136-701, Republic of Korea.
Department of Biochemistry and Molecular Biology, Yeungnam University College of Medicine, Daegu 705-717, Republic of Korea.
Arch Biochem Biophys. 2014 Mar 1;545:1-8. doi: 10.1016/j.abb.2013.12.024. Epub 2014 Jan 8.
Methionine sulfoxide reductase A (MsrA) reduces free and protein-based methionine-S-sulfoxide to methionine. Structures of 1-Cys MsrAs lacking a resolving Cys, which interacts with catalytic Cys, are unknown. In addition, no structural information on selenocysteine (Sec)-containing MsrA enzymes has been reported. In this work, we determined the crystal structures of 1-Cys type selenoprotein MsrA from Clostridium oremlandii at 1.6-1.8Å, including the reduced, oxidized (sulfenic acid), and substrate-bound forms. The overall structure of Clostridium MsrA, consisting of ten α-helices and six β-strands, folds into a catalytic domain and a novel helical domain absent from other known MsrA structures. The helical domain, containing five helices, tightly interacts with the catalytic domain, and is likely critical for catalytic activity due to its association with organizing the active site. This helical domain is also conserved in several selenoprotein MsrAs. Our structural analysis reveals that the side chain length of Glu55 is critical for the proton donor function of this residue. Our structures also provide insights into the architecture of the 1-Cys MsrA active site and the roles of active site residues in substrate recognition and catalysis.
甲硫氨酸亚砜还原酶 A(MsrA)将游离的和蛋白质结合的甲硫氨酸-S-亚砜还原为甲硫氨酸。缺乏与催化半胱氨酸相互作用的分辨半胱氨酸的 1-Cys MsrA 的结构是未知的。此外,没有关于含有硒代半胱氨酸(Sec)的 MsrA 酶的结构信息的报道。在这项工作中,我们确定了来自 Clostridium oremlandii 的 1-Cys 型硒蛋白 MsrA 的晶体结构,分辨率为 1.6-1.8Å,包括还原型、氧化型(亚磺酸)和底物结合型。Clostridium MsrA 的整体结构由十个α-螺旋和六个β-折叠组成,折叠成一个催化结构域和一个新型的螺旋结构域,不存在于其他已知的 MsrA 结构中。该螺旋结构域包含五个螺旋,与催化结构域紧密相互作用,由于其与活性位点的组织有关,因此可能对催化活性至关重要。该螺旋结构域也在几个硒蛋白 MsrAs 中保守。我们的结构分析表明,Glu55 侧链的长度对于该残基的质子供体功能至关重要。我们的结构还提供了对 1-Cys MsrA 活性位点的结构以及活性位点残基在底物识别和催化中的作用的深入了解。