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通过锰(2+)和锌(2+)诱导的位点特异性RNA切割来定位II组内含子中的二价金属离子结合位点

Mapping divalent metal ion binding sites in a group II intron by Mn(2+)- and Zn(2+)-induced site-specific RNA cleavage.

作者信息

Hertweck M, Mueller M W

机构信息

Vienna BioCenter, Institute of Microbiology and Genetics, Austria.

出版信息

Eur J Biochem. 2001 Sep;268(17):4610-20. doi: 10.1046/j.1432-1327.2001.02389.x.

Abstract

The function of group II introns depends on positively charged divalent metal ions that stabilize the ribozyme structure and may be directly involved in catalysis. We investigated Mn2+- and Zn2+-induced site-specific RNA cleavage to identify metal ions that fit into binding pockets within the structurally conserved bI1 group II intron domains (DI-DVI), which might fulfill essential roles in intron function. Ten cleavage sites were identified in DI, two sites in DIII and two in DVI. All cleavage sites are located in the center or close to single-stranded and flexible RNA structures. Strand scissions mediated by Mn2+/Zn2+ are competed for by Mg2+, indicating the existence of Mg2+ binding pockets in physical proximity to the observed Mn2+-/Zn2+-induced cleavage positions. To distinguish between metal ions with a role in structure stabilization and those that play a more specific and critical role in the catalytic process of intron splicing, we combined structural and functional assays, comparing wild-type precursor and multiple splicing-deficient mutants. We identified six regions with binding pockets for Mg2+ ions presumably playing an important role in bI1 structure stabilization. Remarkably, assays with DI deletions and branch point mutants revealed the existence of one Mg2+ binding pocket near the branching A, which is involved in first-step catalysis. This pocket formation depends on precise interaction between the branching nucleotide and the 5' splice site, but does not require exon-binding site 1/intron binding site 1 interaction. This Mg2+ ion might support the correct placing of the branching A into the 'first-step active site'.

摘要

II 类内含子的功能依赖于带正电荷的二价金属离子,这些离子可稳定核酶结构,并可能直接参与催化作用。我们研究了 Mn2+ 和 Zn2+ 诱导的位点特异性 RNA 切割,以确定适合结合到结构保守的 bI1 类 II 内含子结构域(DI - DVI)内结合口袋的金属离子,这些口袋可能在内含子功能中发挥重要作用。在 DI 中鉴定出 10 个切割位点,在 DIII 中有 2 个位点,在 DVI 中有 2 个位点。所有切割位点都位于中心或靠近单链且灵活的 RNA 结构处。由 Mn2+/Zn2+ 介导的链断裂会受到 Mg2+ 的竞争,这表明在与观察到的 Mn2+-/Zn2+-诱导的切割位置物理相邻处存在 Mg2+ 结合口袋。为了区分在结构稳定中起作用的金属离子和在内含子剪接催化过程中起更特定和关键作用的金属离子,我们结合了结构和功能分析,比较了野生型前体和多个剪接缺陷突变体。我们鉴定出六个具有 Mg2+ 离子结合口袋的区域,推测它们在 bI1 结构稳定中起重要作用。值得注意的是,对 DI 缺失和分支点突变体的分析揭示了在分支 A 附近存在一个 Mg2+ 结合口袋,它参与第一步催化。这个口袋的形成取决于分支核苷酸与 5' 剪接位点之间的精确相互作用,但不需要外显子结合位点 1/内含子结合位点 1 的相互作用。这个 Mg2+ 离子可能支持将分支 A 正确放置到“第一步活性位点”中。

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