Ziehler W A, Yang J, Kurochkin A V, Sandusky P O, Zuiderweg E R, Engelke D R
Department of Biological Chemistry, University of Michigan, Ann Arbor 48109-0606, USA.
Biochemistry. 1998 Mar 10;37(10):3549-57. doi: 10.1021/bi972886y.
The P10/11-P12 RNA domain of yeast RNase P contains several highly conserved nucleotides within a conserved secondary structure. This RNA domain is essential for enzyme function in vivo, where it has a demonstrated role in divalent cation utilization. To better understand the function of this domain, its structure and alterations in response to magnesium have been investigated in vitro. A secondary structure model of the P10/11-P12 RNA domain had been previously developed by phylogenetic analysis. Computer modeling and energy minimization were applied to the Saccharomyces cerevisiae P10/11-P12 domain to explore alternatives and additional interactions not predicted by the phylogenetic consensus. The working secondary structure models were challenged with data obtained from 1H NMR and in vitro chemical and enzymatic probing experiments. The solution structure of the isolated domain was found to conform to the phylogenetic prediction within the context of the holoenzyme. Structure probing data also discriminated among additional base contacts predicted by energy minimization. The withdrawal of magnesium does not appear to cause gross refolding or rearrangement of the RNA domain structure. Instead, subtle changes occur in the solution accessibility of specific nucleotide positions. Most of the conserved nucleotides reported to be involved in magnesium utilization in vivo also display magnesium-dependent changes in vitro.
酵母核糖核酸酶P的P10/11 - P12 RNA结构域在保守的二级结构中包含几个高度保守的核苷酸。该RNA结构域在体内对酶功能至关重要,在二价阳离子利用方面发挥着已被证实的作用。为了更好地理解该结构域的功能,已在体外研究了其结构以及对镁的响应变化。P10/11 - P12 RNA结构域的二级结构模型先前已通过系统发育分析得出。计算机建模和能量最小化被应用于酿酒酵母的P10/11 - P12结构域,以探索系统发育共识未预测到的替代结构和额外相互作用。工作中的二级结构模型受到了从1H NMR以及体外化学和酶促探测实验获得的数据的挑战。发现分离结构域的溶液结构在全酶的背景下符合系统发育预测。结构探测数据也区分了能量最小化预测的额外碱基接触。镁的去除似乎不会导致RNA结构域结构的整体重折叠或重排。相反,特定核苷酸位置的溶液可及性会发生细微变化。大多数据报道在体内参与镁利用的保守核苷酸在体外也显示出镁依赖性变化。