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Solution structure and metal-ion binding of the P4 element from bacterial RNase P RNA.

机译:细菌RNase P RNA中P4元素的溶液结构和金属离子结合。

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We determined the solution structure of two 27-nt RNA hairpins and their complexes with cobalt(III)-hexammine (Co(NH3)3+(6)) by NMR spectroscopy. The RNA hairpins used in this study are the P4 region from Escherichia coli RNase P RNA and a C-to-U mutant that confers altered divalent metal-ion specificity (Ca2+ replaces Mg2+) for catalytic activity of this ribozyme. Co(NH3)3+(6) is a useful spectroscopic probe for Mg(H2O)2+(6)-binding sites because both complexes have octahedral symmetry and have similar radii. The thermodynamics of binding to both RNA hairpins was studied using chemical shift changes upon titration with Mg2+, Ca2+, and Co(NH3)3+(6). We found that the equilibrium binding constants for each of the metal ions was essentially unchanged when the P4 model RNA hairpin was mutated, although the NMR structures show that the RNA hairpins adopt different conformations. In the C-to-U mutant a C.G base pair is replaced by U.G, and the conserved bulged uridine in the P4 wild-type stem shifts in the 3' direction by 1 nt. Intermolecular NOE cross-peaks between Co(NH3)3+(6) and RNA protons were used to locate the site of Co(NH3)3+(6) binding to both RNA hairpins. The metal ion binds in the major groove near a bulge loop, but is shifted 5' by more than 1 bp in the mutant. The change of the metal-ion binding site provides a possible explanation for changes in catalytic activity of the mutant RNase P in the presence of Ca2+.
机译:我们通过NMR光谱法确定了两个27-nt RNA发夹的溶液结构及其与钴(III)-己胺(Co(NH3)3+(6))的配合物。这项研究中使用的RNA发夹是大肠杆菌RNase P RNA的P4区和一个C-to-U突变体,赋予该核酶催化活性改变的二价金属离子特异性(Ca2 +代替Mg2 +)。 Co(NH3)3+(6)是用于Mg(H2O)2+(6)结合位点的有用的光谱探针,因为这两种配合物均具有八面体对称性并且具有相似的半径。使用Mg2 +,Ca2 +和Co(NH3)3+(6)滴定后的化学位移变化研究了与两个RNA发夹结合的热力学。我们发现当P4模型RNA发夹突变时,每种金属离子的平衡结合常数基本不变,尽管NMR结构显示RNA发夹采用不同的构象。在C到U的突变体中,一个C.G碱基对被U.G取代,P4野生型茎中保守的凸起的尿苷在3'方向上移动了1 nt。 Co(NH3)3+(6)与RNA质子之间的分子间NOE交叉峰用于定位Co(NH3)3+(6)与两个RNA发夹结合的位点。金属离子结合在凸出环附近的主沟中,但在突变体中移位5'超过1 bp。金属离子结合位点的变化为存在Ca2 +时突变RNase P催化活性的变化提供了可能的解释。

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