Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59717, USA.
J Am Chem Soc. 2011 Mar 30;133(12):4156-9. doi: 10.1021/ja107650c. Epub 2011 Mar 9.
This work describes an approach for calculating and measuring dipolar interactions in multispin systems to monitor conformational changes in icosahedral protein cages using site-directed spin labeling. Cowpea chlorotic mottle virus (CCMV) is used as a template that undergoes a pH-dependent reversible capsid expansion wherein the protein cage swells by 10%. The sequence-position-dependent geometric presentation of attached spin-label groups provides a strategy for targeting amino acid residues most probative of structural change. The labeled protein cage residues and structural transition were found to affect the local mobility and dipolar interactions of the spin label, respectively. Line-shape changes provided a spectral signature that could be used to follow the conformational change in CCMV coat dynamics. The results provide evidence for a concerted swelling process in which the cages exist in only two structural forms, with essentially no intermediates. This methodology can be generalized for all symmetry types of icosahedral protein architectures to monitor protein cage dynamics.
这项工作描述了一种计算和测量多自旋系统中偶极相互作用的方法,以使用定点自旋标记监测二十面体蛋白笼的构象变化。豇豆花叶病毒(CCMV)被用作模板,其经历 pH 依赖的可逆衣壳扩展,其中蛋白笼膨胀 10%。附着的自旋标记基团的序列位置相关的几何呈现提供了一种针对最能证明结构变化的氨基酸残基的策略。标记的蛋白笼残基和结构转变分别影响了自旋标记的局部流动性和偶极相互作用。线形变化提供了可以用来跟踪 CCMV 外壳动力学构象变化的光谱特征。结果为协同膨胀过程提供了证据,其中笼仅存在两种结构形式,基本上没有中间产物。这种方法可以推广到所有二十面体蛋白结构的对称类型,以监测蛋白笼的动力学。