Buck Amy H, Kazantsev Alexei V, Dalby Andrew B, Pace Norman R
Department of Chemistry and Biochemistry, University of Colorado, Boulder, Colorado 80309, USA.
Nat Struct Mol Biol. 2005 Nov;12(11):958-64. doi: 10.1038/nsmb1004.
Ribonucleoprotein particles are central to numerous cellular pathways, but their study in vitro is often complicated by heterogeneity and aggregation. We describe a new technique to characterize these complexes trapped as homogeneous species in a nondenaturing gel. Using this technique, in conjunction with phosphorothioate footprinting analysis, we identify the protein-binding site and RNA folding states of ribonuclease P (RNase P), an RNA-based enzyme that, in vivo, requires a protein cofactor to catalyze the 5' maturation of precursor transfer RNA (pre-tRNA). Our results show that the protein binds to a patch of conserved RNA structure adjacent to the active site and influences the conformation of the RNA near the tRNA-binding site. The data are consistent with a role of the protein in substrate recognition and support a new model of the holoenzyme that is based on a recently solved crystal structure of RNase P RNA.
核糖核蛋白颗粒在众多细胞途径中起着核心作用,但其体外研究常常因异质性和聚集而变得复杂。我们描述了一种新技术,用于表征在非变性凝胶中以均匀形式捕获的这些复合物。结合硫代磷酸酯足迹分析使用该技术,我们确定了核糖核酸酶P(RNase P)的蛋白质结合位点和RNA折叠状态,RNase P是一种基于RNA的酶,在体内需要蛋白质辅因子来催化前体转运RNA(pre-tRNA)的5'成熟。我们的结果表明,该蛋白质与活性位点附近的一片保守RNA结构结合,并影响tRNA结合位点附近RNA的构象。这些数据与该蛋白质在底物识别中的作用一致,并支持基于最近解析的RNase P RNA晶体结构的全酶新模型。