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Glyoxylate as a backbone linkage for a prebiotic ancestor of RNA

机译:乙醛酸酯作为RNA的益生元祖先的主链

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The origin of the first RNA polymers is central to most current theories for the origin of life. Difficulties associated with the prebiotic formation of RNA have lead to the general consensus that a simpler polymer preceded RNA. However, polymers proposed as possible ancestors to RNA are not much easier to synthesize than RNA itself. One particular problem with the prebiotic synthesis of RNA is the formation of phosphoester bonds in the absence of chemical activation. Here we demonstrate that glyoxylate (the ionized form of glyoxylic acid), a plausible prebiotic molecule, represents a possible ancestor of the phosphate group in modern RNA. Although in low yields (similar to 1%), acetals are formed from glyoxylate and nucleosides under neutral conditions, provided that metal ions are present (e.g., Mg2+), and provided that water is removed by evaporation at moderate temperatures (e.g., 65 degrees C), i.e. under "drying conditions". Such acetals are termed ga-dinucleotides and possess a linkage that is analogous to the backbone in RNA in both structure and electrostatic charge. Additionally, an energy-minimized model of a gaRNA duplex predicts a helical structure similar to that of A-form RNA. We propose that glyoxylate-acetal linkages would have had certain advantages over phosphate linkages for early self-replicating polymers, but that the distinct functional properties of phosphoester and phosphodiester bonds would have eventually lead to the replacement of glyoxylate by phosphate.
机译:第一个RNA聚合物的起源是当前大多数关于生命起源的理论的中心。与RNA的益生元形成相关的困难已导致普遍共识,即在RNA之前有一种较简单的聚合物。但是,建议作为RNA可能祖先的聚合物比RNA本身更不容易合成。益生元合成RNA的一个特殊问题是在没有化学活化的情况下磷酸酯键的形成。在这里,我们证明了乙醛酸(乙醛酸的离子化形式),一种可能的益生元分子,代表了现代RNA中磷酸基团的可能祖先。尽管收率很低(大约为1%),但乙醛缩醛是在中性条件下由乙醛酸酯和核苷形成的,条件是存在金属离子(例如Mg2 +),并且要在中等温度(例如65度)下通过蒸发除去水C),即在“干燥条件”下。此类缩醛称为ga-二核苷酸,具有在结构和静电荷上均类似于RNA骨架的键。此外,gaRNA双链体的能量最小模型可预测类似于A型RNA的螺旋结构。我们提出对于早期的自我复制聚合物,乙醛酸酯-乙缩醛键相对于磷酸酯键具有某些优势,但是磷酸酯和磷酸二酯键的独特功能特性最终将导致磷酸酯替代乙醛酸酯。

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