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The L-platform/L-scaffold framework: a blueprint for RNA-cleaving nucleic acid enzyme design

机译:L-平台/ L-SCaffold框架:用于RNA切割核酸酶设计的蓝图

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We develop an L-platform/L-scaffold framework we hypothesize may serve as a blueprint to facilitate site-specific RNA-cleaving nucleic acid enzyme design. Building on the L-platform motif originally described by Suslov and coworkers, we identify new critical scaffolding elements required to anchor a conserved general base guanine ("L-anchor") and bind functionally important metal ions at the active site ("L-pocket"). Molecular simulations, together with a broad range of experimental structural and functional data, connect the L-platform/L-scaffold elements to necessary and sufficient conditions for catalytic activity. We demonstrate that the L-platform/L-scaffold framework is common to five of the nine currently known naturally occurring ribozyme classes (Twr, HPr, VSr, HHr, Psr), and intriguingly from a design perspective, the framework also appears in an artificially engineered DNAzyme (8-17dz). The flexibility of the L-platform/L-scaffold framework is illustrated on these systems, highlighting modularity and trends in the variety of known general acid moieties that are supported. These trends give rise to two distinct catalytic paradigms, building on the classifications proposed by Wilson and coworkers and named for the implicated general base and acid. The "G+A" paradigm (Twr, HPr, VSr) exclusively utilizes nucleobase residues for chemistry, and the "G+M+" paradigm (HHr, 8-17dz, Psr) involves structuring of the "L-pocket" metal ion binding site for recruitment of a divalent metal ion that plays an active role in the chemical steps of the reaction. Finally, the modularity of the L-platform/L-scaffold framework is illustrated in the VS ribozyme where the "L-pocket" assumes the functional role of the "L-anchor" element, highlighting a distinct mechanism, but one that is functionally linked with the hammerhead ribozyme.
机译:我们开发了一个L-Platform / L-Scaffold框架,我们假设可以用作促进特异性RNA切割核酸酶设计的蓝图。在Suslov和同事最初描述的L-Platform Motif上建立,我们识别锚定保守的通用基础鸟嘌呤(“L-Anchor”)所需的新关键脚手架元素,并在活性位点(“L-Pocket)粘合功能重要的金属离子“)。分子模拟,以及广泛的实验结构和功能数据,将L型平台/ L-支架元件连接到必要的催化活性条件下。我们证明,L-平台/ L-支架框架是九个目前已知的天然存在的核酶类别(TWR,HPR,VSR,HHR,PSR)中的五种常见的,并且有趣地从设计的角度来看,框架也出现在一个人工工程的dnazyme(8-17dz)。 L-平台/ L-支架框架的灵活性示于这些系统上,突出了所支持的各种已知一般酸部分的模块化和趋势。这些趋势引起了两个不同的催化范式,建立了威尔逊和工友提出的分类,并命名为含有牵连的一般碱和酸。 “G + A”范式(TWR,HPR,VSR)专门用于化学核碱基残基,“G + M +”范式(HHR,8-17dz,PSR)涉及“L-Pocket”金属离子结合的构建用于募集二价金属离子的遗址,其在反应的化学步骤中发挥活跃作用。最后,在VS核酶中示出了L-平台/ L-支架框架的模块化,其中“L-Pocket”假设“L-Anchor”元件的功能作用,突出显示不同的机制,但在功能上与锤头核酶连接。

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