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底物二级结构的重排有助于与粗糙脉孢菌VS核酶结合。

Rearrangement of substrate secondary structure facilitates binding to the Neurospora VS ribozyme.

作者信息

Zamel Ricardo, Collins Richard A

机构信息

Department of Molecular and Medical Genetics #4280, University of Toronto, 1 King's College Circle, M5S 1A8, Toronto, Ont., Canada.

出版信息

J Mol Biol. 2002 Dec 13;324(5):903-15. doi: 10.1016/s0022-2836(02)01151-8.

Abstract

The Neurospora VS ribozyme differs from other small, naturally occurring ribozymes in that it recognizes for trans cleavage or ligation a substrate that consists largely of a stem-loop structure. We have previously found that cleavage or ligation by the VS ribozyme requires substantial rearrangement of the secondary structure of stem-loop I, which contains the cleavage/ligation site. This rearrangement includes breaking the top base-pair of stem-loop I, allowing formation of a kissing interaction with loop V, and changing the partners of at least three other base-pairs within stem-loop I to adopt a conformation termed shifted. In the work presented, we have designed a binding assay and used mutational analysis to investigate the contribution of each of these structural changes to binding and ligation. We find that the loop I-V kissing interaction is necessary but not sufficient for binding and ligation. Constitutive opening of the top base-pair of stem-loop I has little, if any, effect on either activity. In contrast, the ability to adopt the shifted conformation of stem-loop I is a major determinant of binding: mutants that cannot adopt this conformation bind much more weakly than wild-type and mutants with a constitutively shifted stem-loop I bind much more strongly. These results implicate the adoption of the shifted structure of stem-loop I as an important process at the binding step in the VS ribozyme reaction pathway. Further investigation of features near the cleavage/ligation site revealed that sulphur substitution of the non-bridging phosphate oxygen atoms immediately downstream of the cleavage/ligation site, implicated in a putative metal ion binding site, significantly altered the cleavage/ligation equilibrium but did not perturb substrate binding significantly. This indicates that the substituted oxygen atoms, or an associated metal ion, affect a step that occurs after binding and that they influence the rates of cleavage and ligation differently.

摘要

粗糙脉孢菌VS核酶与其他天然存在的小核酶不同,它识别主要由茎环结构组成的底物进行反式切割或连接。我们之前发现,VS核酶的切割或连接需要茎环I的二级结构进行大量重排,茎环I包含切割/连接位点。这种重排包括打破茎环I的顶部碱基对,允许与环V形成亲吻相互作用,并改变茎环I内至少其他三个碱基对的配对以采用一种称为移位的构象。在本文所述的工作中,我们设计了一种结合测定法,并使用突变分析来研究这些结构变化中的每一个对结合和连接的贡献。我们发现环I-V亲吻相互作用对于结合和连接是必要的,但不是充分的。茎环I顶部碱基对的组成性开放对这两种活性几乎没有影响(如果有影响的话)。相比之下,采用茎环I移位构象的能力是结合的主要决定因素:不能采用这种构象的突变体比野生型结合弱得多,而具有组成性移位茎环I的突变体结合强得多。这些结果表明,采用茎环I的移位结构是VS核酶反应途径中结合步骤的一个重要过程。对切割/连接位点附近特征的进一步研究表明,在假定的金属离子结合位点中,切割/连接位点下游紧邻的非桥连磷酸氧原子的硫取代显著改变了切割/连接平衡,但对底物结合没有明显干扰。这表明被取代的氧原子或相关的金属离子影响结合后发生的一个步骤,并且它们对切割和连接速率的影响不同。

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