Lee Eun Mi, Lee Seung Sik, Tripathi Bhumi Nath, Jung Hyun Suk, Cao Guang Ping, Lee Yuno, Singh Sudhir, Hong Sung Hyun, Lee Keun Woo, Lee Sang Yeol, Cho Jae-Young, Chung Byung Yeoup
Advanced Radiation Technology Institute, Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeongeup 580-185, Republic of Korea.
Department of Biochemistry, College of Natural Sciences, Kangwon National University, Chuncheon 200-701, Republic of Korea.
Ann Bot. 2015 Sep;116(4):713-25. doi: 10.1093/aob/mcv094. Epub 2015 Jul 2.
The 2-Cys peroxiredoxin (Prx) A protein of Arabidopsis thaliana performs the dual functions of a peroxidase and a molecular chaperone depending on its conformation and the metabolic conditions. However, the precise mechanism responsible for the functional switching of 2-Cys Prx A is poorly known. This study examines various serine-to-cysteine substitutions on α-helix regions of 2-Cys Prx A in Arabidopsis mutants and the effects they have on the dual function of the protein.
Various mutants of 2-Cys Prx A were generated by replacing serine (Ser) with cysteine (Cys) at different locations by site-directed mutagenesis. The mutants were then over-expressed in Escherichia coli. The purified protein was further analysed by size exclusion chromatography, polyacrylamide gel electrophoresis, circular dichroism spectroscopy and transmission electron microscopy (TEM) and image analysis. Peroxidase activity, molecular chaperone activity and hydrophobicity of the proteins were also determined. Molecular modelling analysis was performed in order to demonstrate the relationship between mutation positions and switching of 2-Cys Prx A activity.
Replacement of Ser(150) with Cys(150) led to a marked increase in holdase chaperone and peroxidase activities of 2-Cys Prx A, which was associated with a change in the structure of an important domain of the protein. Molecular modelling demonstrated the relationship between mutation positions and the switching of 2-Cys Prx A activity. Examination of the α2 helix, dimer-dimer interface and C-term loop indicated that the peroxidase function is associated with a fully folded α2 helix and easy formation of a stable reduced decamer, while a more flexible C-term loop makes the chaperone function less likely.
Substitution of Cys for Ser at amino acid location 150 of the α-helix of 2-Cys Prx A regulates/enhances the dual enzymatic functions of the 2-Cys Prx A protein. If confirmed in planta, this leads to the potential for it to be used to maximize the functional utility of 2-Cys Prx A protein for improved metabolic functions and stress resistance in plants.
拟南芥的2-半胱氨酸过氧化物酶(Prx)A蛋白根据其构象和代谢条件发挥过氧化物酶和分子伴侣的双重功能。然而,2-半胱氨酸Prx A功能转换的确切机制尚不清楚。本研究检测了拟南芥突变体中2-半胱氨酸Prx Aα螺旋区域的各种丝氨酸到半胱氨酸的替换及其对该蛋白双重功能的影响。
通过定点诱变在不同位置将丝氨酸(Ser)替换为半胱氨酸(Cys),产生了2-半胱氨酸Prx A的各种突变体。然后在大肠杆菌中过量表达这些突变体。通过尺寸排阻色谱、聚丙烯酰胺凝胶电泳、圆二色光谱、透射电子显微镜(TEM)和图像分析对纯化的蛋白进行进一步分析。还测定了蛋白的过氧化物酶活性、分子伴侣活性和疏水性。进行分子建模分析以证明突变位置与2-半胱氨酸Prx A活性转换之间的关系。
将Ser(150)替换为Cys(150)导致2-半胱氨酸Prx A的保持型分子伴侣和过氧化物酶活性显著增加,这与该蛋白一个重要结构域的结构变化有关。分子建模证明了突变位置与2-半胱氨酸Prx A活性转换之间的关系。对α2螺旋、二聚体-二聚体界面和C端环的研究表明,过氧化物酶功能与完全折叠的α2螺旋和易于形成稳定的还原十聚体有关,而更灵活的C端环使分子伴侣功能不太可能实现。
在2-半胱氨酸Prx A的α螺旋氨基酸位置150处将丝氨酸替换为半胱氨酸可调节/增强2-半胱氨酸Prx A蛋白的双重酶功能。如果在植物中得到证实,这使其有可能用于最大化2-半胱氨酸Prx A蛋白的功能效用,以改善植物的代谢功能和抗逆性。