首页> 外文期刊>Journal of the American Chemical Society >Prebiotically Plausible 'Patching' of RNA Backbone Cleavage through a 3'-5' Pyrophosphate Linkage
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Prebiotically Plausible 'Patching' of RNA Backbone Cleavage through a 3'-5' Pyrophosphate Linkage

机译:通过3'-5'焦磷酸键对RNA骨干裂解的益生元似的“修补”。

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Achieving multiple cycles of RNA replication within a model protocell would be a critical step toward demonstrating a path from prebiotic chemistry to cellular biology. Any model for early life based on an "RNA world" must account for RNA strand cleavage and hydrolysis, which would degrade primitive genetic information and lead to an accumulation of truncated, phosphate-terminated strands. We show here that cleavage of the phosphodiester backbone is not an end point for RNA replication. Instead, 3'-phosphate terminated RNA strands can participate in template-directed copying reactions with activated ribonucleotide monomers. These reactions form a pyrophosphate linkage, the stability of which we have characterized in the context of RNA copying chemistry. The presence of free magnesium cations results in cleavage of the pyrophosphate bond within minutes. However, we found that the pyrophosphate bond is relatively stable within an RNA duplex and in the presence of chelated magnesium. We show that, under these conditions, pyrophosphate-linked RNA can act as a template for the polymerization of ribonucleotides into canonical 3'-5' phosphodiester-linked RNA. We suggest that primer extension of 3'-phosphate-terminated RNA followed by template-directed copying represents a plausible nonenzymatic pathway for the salvage and recovery of genetic information following strand cleavage.
机译:在模型原始细胞内实现RNA复制的多个周期将是证明从益生元化学到细胞生物学的道路的关键步骤。任何基于“ RNA世界”的早期生命模型都必须考虑RNA链的切割和水解,这会降解原始的遗传信息并导致截短的,以磷酸盐终止的链的积累。我们在这里显示磷酸二酯主链的裂解不是RNA复制的终点。相反,3'-磷酸终止的RNA链可与活化的核糖核苷酸单体一起参与模板指导的复制反应。这些反应形成焦磷酸盐键,我们已经在RNA复制化学的背景下表征了焦磷酸键的稳定性。游离镁阳离子的存在导致焦磷酸盐键在数分钟内裂解。但是,我们发现焦磷酸键在RNA双链体中和存在螯合镁的情况下相对稳定。我们显示,在这些条件下,焦磷酸盐连接的RNA可以充当模板,将核糖核苷酸聚合成规范的3'-5'磷酸二酯连接的RNA。我们建议3'磷酸终止RNA的引物延伸,然后进行模板定向复制,代表着一条合理的非酶途径,可用于挽救和恢复链断裂后的遗传信息。

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