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一个重要的碱基三联体将底物螺旋识别表面锚定在嗜热四膜虫核酶活性位点内。

An important base triple anchors the substrate helix recognition surface within the Tetrahymena ribozyme active site.

作者信息

Szewczak A A, Ortoleva-Donnelly L, Zivarts M V, Oyelere A K, Kazantsev A V, Strobel S A

机构信息

Department of Molecular Biophysics, Yale University, New Haven, CT 06520-8114, USA.

出版信息

Proc Natl Acad Sci U S A. 1999 Sep 28;96(20):11183-8. doi: 10.1073/pnas.96.20.11183.

Abstract

Key to understanding the structural biology of catalytic RNA is determining the underlying networks of interactions that stabilize RNA folding, substrate binding, and catalysis. Here we demonstrate the existence and functional importance of a Hoogsteen base triple (U300.A97-U277), which anchors the substrate helix recognition surface within the Tetrahymena group I ribozyme active site. Nucleotide analog interference suppression analysis of the interacting functional groups shows that the U300.A97-U277 triple forms part of a network of hydrogen bonds that connect the P3 helix, the J8/7 strand, and the P1 substrate helix. Product binding and substrate cleavage kinetics experiments performed on mutant ribozymes that lack this base triple (C A-U, U G-C) or replace it with the isomorphous C(+).G-C triple show that the A97 Hoogsteen triple contributes to the stabilization of both substrate helix docking and the conformation of the ribozyme's active site. The U300. A97-U277 base triple is not formed in the recently reported crystallographic model of a portion of the group I intron, despite the presence of J8/7 and P3 in the RNA construct [Golden, B. L., Gooding, A. R., Podell, E. R. & Cech, T. R. (1998) Science 282, 259-264]. This, along with other biochemical evidence, suggests that the active site in the crystallized form of the ribozyme is not fully preorganized and that substantial rearrangement may be required for substrate helix docking and catalysis.

摘要

理解催化性RNA结构生物学的关键在于确定稳定RNA折叠、底物结合及催化作用的潜在相互作用网络。在此,我们证明了Hoogsteen碱基三联体(U300.A97-U277)的存在及其功能重要性,该三联体将底物螺旋识别表面锚定在嗜热四膜虫I组核酶活性位点内。对相互作用功能基团的核苷酸类似物干扰抑制分析表明,U300.A97-U277三联体构成了连接P3螺旋、J8/7链和P1底物螺旋的氢键网络的一部分。对缺乏该碱基三联体(C A-U、U G-C)或用同构的C(+)·G-C三联体取代它的突变核酶进行的产物结合和底物切割动力学实验表明,A97 Hoogsteen三联体有助于底物螺旋对接和核酶活性位点构象的稳定。尽管RNA构建体中存在J8/7和P3,但在最近报道的I组内含子一部分的晶体学模型中并未形成U300.A97-U277碱基三联体[戈尔登,B.L.,古丁,A.R.,波德尔,E.R. & 切赫,T.R.(1998年)《科学》282卷,259 - 264页]。这一点,连同其他生化证据,表明核酶结晶形式中的活性位点并未完全预先组织好,底物螺旋对接和催化可能需要大量重排。

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