Loria A, Niranjanakumari S, Fierke C A, Pan T
Department of Biochemistry & Molecular Biology, University of Chicago, Illinois 60637, USA.
Biochemistry. 1998 Nov 3;37(44):15466-73. doi: 10.1021/bi9816507.
The holoenzyme of the bacterial RNase P has broader selectivity for biological substrates compared to the RNA alone (denoted P RNA) reaction. The structural basis of the substrate selectivity is investigated using a pre-tRNA substrate containing single-atom modifications by single turnover kinetics. Hydroxyl radical protection of the holoenzyme in the absence of the substrate shows that the RNase P protein binds to several regions in P RNA. The holoenzyme interacts with a subset of functional groups in the T stem-loop region of a pre-tRNA substrate previously identified to directly contact P RNA. The subtle change in structural recognition allows the holoenzyme to recognize RNA structures with only a small perturbation in an A-form helix at the corresponding position of the T stem-loop. This altered profile may permit the holoenzyme to bind non-tRNA substrates with little change in catalytic efficiency. The holoenzyme recognizes the same set of functional groups as the P RNA reaction in the region around the cleavage site and shows similar cleavage site selection compared to the P RNA reaction. These results suggest that the holoenzyme does not alter the fundamental mechanism of this enzymatic reaction. Rather, the holoenzyme significantly affects the binding affinity of an RNA substrate through additional interactions with the 5' leader [Kurz, C. A., Niranjanakumari, S., and Fierke, C. A. (1998) Biochemistry 37, 2393] and through altered recognition of the substrate structure.
与单独的RNA(称为P RNA)反应相比,细菌核糖核酸酶P的全酶对生物底物具有更广泛的选择性。使用含有单原子修饰的前体tRNA底物,通过单轮动力学研究底物选择性的结构基础。在没有底物的情况下,全酶的羟基自由基保护表明核糖核酸酶P蛋白与P RNA中的几个区域结合。全酶与先前确定的直接接触P RNA的前体tRNA底物的T茎环区域中的一部分官能团相互作用。结构识别的细微变化使全酶能够识别在T茎环相应位置的A形螺旋中只有小扰动的RNA结构。这种改变的情况可能使全酶能够结合非tRNA底物,而催化效率几乎没有变化。全酶在切割位点周围的区域识别与P RNA反应相同的一组官能团,并且与P RNA反应相比显示出相似的切割位点选择。这些结果表明全酶不会改变这种酶促反应的基本机制。相反,全酶通过与5'前导序列的额外相互作用[Kurz, C. A., Niranjanakumari, S., and Fierke, C. A. (1998) Biochemistry 37, 2393]以及通过改变对底物结构的识别,显著影响RNA底物的结合亲和力。