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Modeling of abiotic ATP synthesis in the context of problems of early biosphere evolution

机译:生物圈早期进化问题中非生物ATP合成的模型

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The pathway of adenosine triphosphate (ATP) synthesis in living organisms consists of two autonomous stages; this must be taken into account during the design and analysis of chemical models of the abiogenesis of this key participant of metabolic processes. The first stage is construction of an adenine heterocycle linked to a ribose-5-phosphate molecule to yield AMP, while the following stage is the attachment of phosphoryl residues to the nucleotide molecule by macroergic phosphoanhydride bonds. Involvement of the same set of precursor molecules in both de novo biosynthesis of AMP and abiogenesis of this nucleotide is a very important issue for the analysis of metabolic pathways. Photochemical matrix systems that convert light energy into macroergic bond energy are functional prototypes of photosynthetic phosphorylation; they are of special interest for the construction of abiotic phosphorylation models. Interaction of substrates with a purely mineral matrix (montmorillonite particles) under UV irradiation resulted in the formation of ATP from ADP and orthophosphate. Micro-and nanostructures that formed upon the interaction of the mineral component (sodium polysilicate) with an abiogenic organic pigment (a flavin conjugate with a random amino acid polymer) exhibited phosphorylating activity as well when irradiated with visible light. The properties of AMP and ATP abiosynthesis models investigated are in good accordance with the current views on the environmental conditions of the ancient Earth; evident structural differences exist between these models and the biosynthetic systems in modern organisms.
机译:活生物体中三磷酸腺苷(ATP)的合成途径包括两个自主阶段。在设计和分析该代谢过程关键参与者的生物发生的化学模型时,必须考虑到这一点。第一阶段是构建与5-磷酸核糖分子连接的腺嘌呤杂环以产生AMP,而第二阶段是通过大能磷酸酐键将磷酰基残基连接至核苷酸分子。 AMP的从头生物合成和该核苷酸的生物合成中涉及同一组前体分子,对于代谢途径的分析而言是非常重要的问题。将光能转换成大能键能的光化学基质系统是光合作用磷酸化的功能原型。它们对于构建非生物磷酸化模型特别感兴趣。底物与纯矿物基质(蒙脱石颗粒)在紫外线辐射下的相互作用导致由ADP和正磷酸盐形成ATP。矿物成分(聚硅酸钠)与非生物有机颜料(黄素与无规氨基酸聚合物的共轭物)相互作用后形成的微结构和纳米结构在可见光照射下也表现出磷酸化活性。所研究的AMP和ATP生物合成模型的性质与当前对古代地球环境条件的看法完全一致。这些模型与现代生物的生物合成系统之间存在明显的结构差异。

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