Department of Molecular and Cellular Biochemistry, Indiana University, Bloomington, Indiana 47405, USA.
J Biol Chem. 2013 Feb 15;288(7):4755-62. doi: 10.1074/jbc.M112.413492. Epub 2013 Jan 10.
RegB/RegA comprise a global redox-sensing signal transduction system utilized by a wide range of proteobacteria to sense environmental changes in oxygen tension. The conserved cysteine 265 in the sensor kinase RegB was previously reported to form an intermolecular disulfide bond under oxidizing conditions that converts RegB from an active dimer into an inactive tetramer. In this study, we demonstrate that a stable sulfenic acid (-SOH) derivative also forms at Cys-265 in vitro and in vivo when RegB is exposed to oxygen. This sulfenic acid modification is reversible and stable in the air. Autophosphorylation assay shows that reduction of the SOH at Cys-265 to a free thiol (SH) can increase RegB kinase activity in vitro. Our results suggest that a sulfenic acid modification at Cys-265 performs a regulatory role in vivo and that it may be the major oxidation state of Cys-265 under aerobic conditions. Cys-265 thus functions as a complex redox switch that can form multiple thiol modifications in response to different redox signals to control the kinase activity of RegB.
RegB/RegA 构成了一个全球氧化还原感应信号转导系统,广泛的变形菌用来感应氧气张力等环境变化。先前的研究报道称,在氧化条件下,传感器激酶 RegB 中的保守半胱氨酸 265 形成分子间二硫键,将 RegB 从活性二聚体转换为无活性的四聚体。在这项研究中,我们证明了当 RegB 暴露于氧气中时,在体外和体内也会在 Cys-265 处形成稳定的亚磺酸(-SOH)衍生物。这种亚磺酸修饰在空气中是可逆和稳定的。自动磷酸化测定表明,Cys-265 上的 SOH 还原为游离巯基 (SH)可以增加体外 RegB 激酶的活性。我们的结果表明,Cys-265 上的亚磺酸修饰在体内发挥调节作用,并且它可能是有氧条件下 Cys-265 的主要氧化状态。因此,Cys-265 作为一个复杂的氧化还原开关,可以形成多种巯基修饰,以响应不同的氧化还原信号来控制 RegB 的激酶活性。