Horne James, d'Auvergne Edward J, Coles Murray, Velkov Tony, Chin Yanni, Charman William N, Prankerd Richard, Gooley Paul R, Scanlon Martin J
Department of Medicinal Chemistry, Victorian College of Pharmacy, Monash University, 381 Royal Parade, Parkville, VIC 3052, Australia.
J Mol Biol. 2007 Aug 17;371(3):703-16. doi: 10.1016/j.jmb.2007.05.067. Epub 2007 May 31.
We have determined the structure of the reduced form of the DsbA oxidoreductase from Vibrio cholerae. The reduced structure shows a high level of similarity to the crystal structure of the oxidized form and is typical of this class of enzyme containing a thioredoxin domain with an inserted alpha-helical domain. Proteolytic and thermal stability measurements show that the reduced form of DsbA is considerably more stable than the oxidized form. NMR relaxation data have been collected and analyzed using a model-free approach to probe the dynamics of the reduced and oxidized states of DsbA. Akaike's information criteria have been applied both in the selection of the model-free models and the diffusion tensors that describe the global motions of each redox form. Analysis of the dynamics reveals that the oxidized protein shows increased disorder on the pico- to nanosecond and micro- to millisecond timescale. Many significant changes in dynamics are located either close to the active site or at the insertion points between the domains. In addition, analysis of the diffusion data shows there is a clear difference in the degree of interdomain movement between oxidized and reduced DsbA with the oxidized form being the more rigid. Principal components analysis has been employed to indicate possible concerted movements in the DsbA structure, which suggests that the modeled interdomain motions affect the catalytic cleft of the enzyme. Taken together, these data provide compelling evidence of a role for dynamics in the catalytic cycle of DsbA.
我们已经确定了霍乱弧菌DsbA氧化还原酶还原形式的结构。还原形式的结构与氧化形式的晶体结构高度相似,是这类含有硫氧还蛋白结构域并插入α-螺旋结构域的酶的典型结构。蛋白水解和热稳定性测量表明,DsbA的还原形式比氧化形式稳定得多。我们已经收集了核磁共振弛豫数据,并使用无模型方法进行分析,以探究DsbA还原态和氧化态的动力学。赤池信息准则已应用于无模型模型的选择以及描述每种氧化还原形式整体运动的扩散张量。动力学分析表明,氧化蛋白在皮秒到纳秒以及微秒到毫秒的时间尺度上无序度增加。许多动力学上的显著变化位于活性位点附近或结构域之间的插入点处。此外,扩散数据分析表明,氧化型和还原型DsbA的结构域间运动程度存在明显差异,氧化形式更刚性。主成分分析已被用于表明DsbA结构中可能的协同运动,这表明模拟的结构域间运动影响酶的催化裂隙。综上所述,这些数据提供了令人信服的证据,证明动力学在DsbA催化循环中发挥作用。