Tzokov Svetomir B, Murray Iain A, Grasby Jane A
Centre for Chemical Biology, Department of Chemistry, Krebs Institute, University of Sheffield, Dainton Building, Brook Hill, S3 7HF, Sheffield, UK.
J Mol Biol. 2002 Nov 22;324(2):215-26. doi: 10.1016/s0022-2836(02)01063-x.
The minimal substrate of the trans-cleaving Neurospora VS ribozyme has a stem-loop structure and interacts with the ribozyme by RNA tertiary interactions that remain only partially defined. The magnesium ion dependence of the catalytic parameters of a trans-cleaving VS-derived ribozyme were studied. The turnover number of the catalytic RNA was found to depend on the binding of at least three magnesium ions, with an apparent magnesium ion dissociation constant of 16mM, but K(M) was observed to be metal ion independent in the millimolar range. To address the role of 2'-hydroxyl groups of the VS substrate RNA in interactions with the ribozyme, 23 altered substrates, each with a single 2'-deoxyribonucleoside substitution, were synthesised and their kinetic properties in the VS ribozyme reaction were analysed. The removal of five 2'-hydroxyl groups, at positions G620, A621, U628, C629 and G630 inhibited the reaction, whereas at two sites, G623 and A639, reaction was stimulated by the modification. Substitution of G620 with a 2'-deoxynucleoside was expected to inhibit the reaction, in line with the critical role of this 2'-hydroxyl group in the transesterification reaction. Altered substrates in which a 2'-O-methyl nucleoside replaced A621, U628, C629 and G630 were prepared and characterised. Although removal of the hydroxyl group of A621 inhibited the turnover number of the ribozyme significantly, this activity was recovered upon 2'-O-methyl adenosine substitution, suggesting that the 2'-oxygen atom of this nucleoside forms an important contact within the ribozyme active site. A cluster of residues within the loop region of the substrate, were more modestly affected by 2'-deoxynucleoside substitution. In two cases, magnesium binding was impaired, suggesting that stem-loop I is a possible magnesium ion binding site.
具有反式切割功能的粗糙脉孢菌VS核酶的最小底物具有茎环结构,并通过RNA三级相互作用与核酶相互作用,而这种相互作用仅得到部分界定。对一种具有反式切割功能的VS衍生核酶的催化参数的镁离子依赖性进行了研究。发现催化性RNA的转换数取决于至少三个镁离子的结合,表观镁离子解离常数为16mM,但观察到K(M)在毫摩尔范围内与金属离子无关。为了研究VS底物RNA的2'-羟基在与核酶相互作用中的作用,合成了23种改变的底物,每种底物都有一个单2'-脱氧核糖核苷取代,并分析了它们在VS核酶反应中的动力学性质。去除G620、A621、U628、C629和G630位置的五个2'-羟基会抑制反应,而在两个位点G623和A639,修饰会刺激反应。用2'-脱氧核苷取代G620预计会抑制反应,这与该2'-羟基在酯交换反应中的关键作用一致。制备并表征了其中2'-O-甲基核苷取代A621、U628、C629和G630的改变底物。虽然去除A621的羟基会显著抑制核酶的转换数,但用2'-O-甲基腺苷取代后该活性得以恢复,这表明该核苷的2'-氧原子在核酶活性位点内形成了重要的接触。底物环区域内的一组残基受2'-脱氧核苷取代的影响较小。在两种情况下,镁结合受损,表明茎环I可能是一个镁离子结合位点。