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首页> 外文期刊>Angewandte Chemie >Evaporite Borate-Containing Mineral Ensembles Make Phosphate Available and Regiospecifically Phosphorylate Ribonucleosides: Borate as a Multifaceted Problem Solver in Prebiotic Chemistry
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Evaporite Borate-Containing Mineral Ensembles Make Phosphate Available and Regiospecifically Phosphorylate Ribonucleosides: Borate as a Multifaceted Problem Solver in Prebiotic Chemistry

机译:含蒸发硼酸盐的矿物组合使磷酸盐可用,并在区域上特异性磷酸化核糖核苷:硼酸盐作为益生元化学中的多方面问题解决者

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摘要

RNA is currently thought to have been the first biopolymer to support Darwinian natural selection on Earth. However, the phosphate esters in RNA and its precursors, and the many sites at which phosphorylation might occur in ribonucleosides under conditions that make it possible, challenge prebiotic chemists. Moreover, free inorganic phosphate may have been scarce on early Earth owing to its sequestration by calcium in the unreactive mineral hydroxyapatite. Herein, it is shown that these problems can be mitigated by a particular geological environment that contains borate, magnesium, sulfate, calcium, and phosphate in evaporite deposits. Actual geological environments, reproduced here, show that Mg2+ and borate sequester phosphate from calcium to form the mineral luneburgite. Ribonucleosides stabilized by borate mobilize borate and phosphate from luneburgite, and are then regiospecifically phosphorylated by the mineral. Thus, in addition to guiding carbohydrate pre-metabolism, borate minerals in evaporite geoorganic contexts offer a solution to the phosphate problem in the RNA first model for the origins of life.
机译:目前,RNA被认为是第一个支持地球上达尔文自然选择的生物聚合物。然而,RNA及其前体中的磷酸酯,以及在可能的条件下核糖核苷可能发生磷酸化的许多位点,对益生元化学家提出了挑战。此外,由于无机碳被无反应性羟磷灰石中的钙螯合,游离的无机磷酸盐可能在地球早期稀缺。在此表明,可以通过在蒸发矿床中包含硼酸盐,镁,硫酸盐,钙和磷酸盐的特定地质环境来减轻这些问题。此处复制的实际地质环境表明,Mg2 +和硼酸钙螯合了钙中的磷酸盐,形成了菱镁矿。通过硼酸盐稳定的核糖核苷会从菱镁矿中迁移出硼酸盐和磷酸盐,然后被该矿物质区域特异性地磷酸化。因此,除了指导碳水化合物的预先代谢外,在蒸发岩地有机环境中的硼酸盐矿物还为解决生命起源的RNA第一模型中的磷酸盐问题提供了解决方案。

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