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氨基酸和氨唑衍生物的相互作用:通过计算分析实现共晶形成和前生物的启示。

Interactions of Amino Acids and Aminoxazole Derivatives: Cocrystal Formation and Prebiotic Implications Enabled by Computational Analysis.

机构信息

Departamento de Química Orgánica e Inorgánica, Facultad de Ciencias-UEX, Avenida de Elvas s/n, E-06006, Badajoz, Spain.

Department of Chemistry, Faculty of Natural and Environmental Sciences, University of Southampton, Southampton, SO17 1BJ, UK.

出版信息

Orig Life Evol Biosph. 2019 Sep;49(3):163-185. doi: 10.1007/s11084-019-09582-9. Epub 2019 Jul 20.

Abstract

In line with the postulated intermediacy of aminoxazoles derived from small sugars toward the direct assembly of nucleoside precursors, we show here a potential prebiotic scenario where aminoxazolines might have also played further roles as complexing and/or sequestering agents of other primeval blocks, namely amino acids. To this end, a bis-aminoxazoline derivative, generated from dihydroxyacetone and cyanamide, gives rise to stable co-crystal forms with dicarboxylic amino acids (Asp and Glu), while ionic interactions owing to proton transfer are inferred from spectroscopic data in aqueous solution. The structure of a 1:2 aminoxazoline: aspartic acid complex, discussed in detail, was elucidated by X-ray diffractometry. Optimized geometries of such ionic structures with bulk aqueous solvation were assessed by DFT calculations, which disclose preferential arrangements that validate the experimental data. Peripherally, we were able to detect in a few cases amino acid dimerization (i.e. dipeptide formation) after prolonged incubation with the bis-aminoxazole derivative. A mechanistic simulation aided by computation provides some predictive conclusions for future explorations and catalytic design.

摘要

根据从小糖衍生的氨基恶唑中间体直接组装核苷前体的假设,我们在这里展示了一个潜在的前生物场景,其中氨基恶唑啉也可能作为其他原始块(即氨基酸)的络合和/或螯合试剂发挥进一步的作用。为此,由二羟丙酮和氰胺生成的双氨基恶唑啉衍生物与二羧酸氨基酸(天冬氨酸和谷氨酸)生成稳定的共晶形式,而水溶液中的光谱数据表明存在质子转移引起的离子相互作用。通过 X 射线衍射法详细阐明了 1:2 氨基恶唑啉:天冬氨酸配合物的结构。通过 DFT 计算评估了具有体相水溶剂化的此类离子结构的优化几何形状,这揭示了可验证实验数据的优先排列。在某些情况下,我们还能够在与双氨基恶唑啉衍生物长时间孵育后检测到氨基酸二聚体(即二肽形成)。通过计算辅助的机理模拟为未来的探索和催化设计提供了一些预测性结论。

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