Zurdo J, González C, Sanz J M, Rico M, Remacha M, Ballesta J P
Centro de Biología Molecular Severo Ochoa (CSIC and UAM), Canto Blanco, 28049 Madrid, Spain.
Biochemistry. 2000 Aug 1;39(30):8935-43. doi: 10.1021/bi000363b.
The eukaryotic acidic P1 and P2 proteins modulate the activity of the ribosomal stalk but playing distinct roles. The aim of this work was to analyze the structural features that are behind their different function. A structural characterization of Saccharomyces cerevisaie P1 alpha and P2 beta proteins was performed by circular dichroism, nuclear magnetic resonance, fluorescence spectroscopy, thermal denaturation, and protease sensitivity. The results confirm the low structure present in both proteins but reveal clear differences between them. P1 alpha shows a virtually unordered secondary structure with a residual helical content that disappears below 30 degrees C and a clear tendency to acquire secondary structure at low pH and in the presence of trifluoroethanol. In agreement with this higher disorder P1 alpha has a fully solvent-accessible tryptophan residue and, in contrast to P2 beta, is highly sensitive to protease degradation. An interaction between both proteins was observed, which induces an increase in the global secondary structure content of both proteins. Moreover, mixing of both proteins causes a shift of the P1 alpha tryptophan 40 signal, pointing to an involvement of this region in the interaction. This evidence directly proves an interaction between P1 alpha and P2 beta before ribosome binding and suggests a functional complementation between them. On a whole, the results provide structural support for the different functional roles played by the proteins of the two groups showing, at the same time, that relatively small structural differences between the two stalk acidic protein types can result in significant functional changes.
真核生物的酸性P1和P2蛋白可调节核糖体柄的活性,但发挥着不同的作用。这项工作的目的是分析其不同功能背后的结构特征。通过圆二色性、核磁共振、荧光光谱、热变性和蛋白酶敏感性对酿酒酵母P1α和P2β蛋白进行了结构表征。结果证实了这两种蛋白都存在低结构,但揭示了它们之间的明显差异。P1α呈现出几乎无序的二级结构,其残余螺旋含量在30℃以下消失,并且在低pH值和存在三氟乙醇的情况下有明显的获得二级结构的趋势。与这种更高的无序性一致,P1α有一个完全暴露于溶剂中的色氨酸残基,并且与P2β相反,对蛋白酶降解高度敏感。观察到这两种蛋白之间存在相互作用,这会导致两种蛋白的整体二级结构含量增加。此外,两种蛋白混合会导致P1α色氨酸40信号发生位移,表明该区域参与了相互作用。这一证据直接证明了P1α和P2β在核糖体结合之前存在相互作用,并暗示了它们之间的功能互补。总体而言,这些结果为两组蛋白所发挥的不同功能作用提供了结构支持,同时表明两种柄酸性蛋白类型之间相对较小的结构差异可导致显著的功能变化。