Chaboy Jesús, Díaz-Moreno Sofía, Díaz-Moreno I, De la Rosa Miguel A, Díaz-Quintana Antonio
Instituto de Ciencia de Materiales de Aragón, Consejo Superior de Investigaciones Científicas-Universidad de Zaragoza, 50009 Zaragoza, Spain.
Chem Biol. 2011 Jan 28;18(1):25-31. doi: 10.1016/j.chembiol.2010.12.006.
Identifying the factors that govern the thermal resistance of cupredoxins is essential for understanding their folding and stability, and for improving our ability to design highly stable enzymes with potential biotechnological applications. Here, we show that the thermal unfolding of plastocyanins from two cyanobacteria--the mesophilic Synechocystis and the thermophilic Phormidium--is closely related to the short-range structure around the copper center. Cu K-edge X-ray absorption spectroscopy shows that the bond length between Cu and the S atom from the cysteine ligand is a key structural factor that correlates with the thermal stability of the cupredoxins in both oxidized and reduced states. These findings were confirmed by an additional study of a site-directed mutant of Phormidium plastocyanin showing a reverse effect of the redox state on the thermal stability of the protein.
确定决定铜蓝蛋白热稳定性的因素,对于理解其折叠和稳定性,以及提高我们设计具有潜在生物技术应用的高稳定性酶的能力至关重要。在这里,我们表明,来自两种蓝细菌(嗜温的集胞藻和嗜热的席藻)的质体蓝素的热解折叠与铜中心周围的短程结构密切相关。铜K边X射线吸收光谱表明,铜与半胱氨酸配体中的硫原子之间的键长是一个关键的结构因素,它与氧化态和还原态铜蓝蛋白的热稳定性相关。通过对席藻质体蓝素的定点突变体的进一步研究证实了这些发现,该研究表明氧化还原状态对蛋白质热稳定性有相反的影响。