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Prebiotic Vitamin B3 Synthesis in Carbonaceous Planetesimals

机译:碳质小行星中的益生元维生素 B3 合成

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Abstract Aqueous chemistry within carbonaceous planetesimals is promising for synthesizing prebiotic organic matter essential to all life. Meteorites derived from these planetesimals delivered these life building blocks to the early Earth, potentially facilitating the origins of life. Here, we studied the formation of vitamin B3 as it is an important precursor of the coenzyme NAD(P)(H), which is essential for the metabolism of all life as we know it. We propose a new reaction mechanism based on known experiments in the literature that explains the synthesis of vitamin B3. It combines the sugar precursors glyceraldehyde or dihydroxyacetone with the amino acids aspartic acid or asparagine in aqueous solution without oxygen or other oxidizing agents. We performed thermochemical equilibrium calculations to test the thermodynamic favorability. The predicted vitamin B3 abundances resulting from this new pathway were compared with measured values in asteroids and meteorites. We conclude that competition for reactants and decomposition by hydrolysis are necessary to explain the prebiotic content of meteorites. In sum, our model fits well into the complex network of chemical pathways active in this environment.
机译:摘要 碳质小行星中的水化学对合成所有生命至关重要的益生元有机物具有重要意义。来自这些小行星的陨石将这些生命基石运送到早期地球,可能促进了生命的起源。在这里,我们研究了维生素 B3 的形成,因为它是辅酶 NAD(P)(H) 的重要前体,这对我们所知的所有生命的新陈代谢至关重要。我们根据文献中已知的实验提出了一种新的反应机制,该实验解释了维生素B3的合成。它将糖前体甘油醛或二羟基丙酮与氨基酸天冬氨酸或天冬酰胺结合在水溶液中,不含氧气或其他氧化剂。我们进行了热化学平衡计算以测试热力学的有利性。将这种新途径产生的预测维生素B3丰度与小行星和陨石的测量值进行了比较。我们得出的结论是,反应物的竞争和水解分解对于解释陨石的益生元含量是必要的。总之,我们的模型非常适合在这种环境中活跃的复杂化学途径网络。

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