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Why Flavins Are not Competitors of Chlorophyll in the Evolution of Biological Converters of Solar Energy

机译:为什么黄素不是太阳能生物转化器进化过程中的叶绿素竞争者

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摘要

Excited flavin molecules can photocatalyze reactions, leading to the accumulation of free energy in the products, and the data accumulated through biochemical experiments and by modeling prebiological processes suggest that flavins were available in the earliest stages of evolution. Furthermore, model experiments have shown that abiogenic flavin conjugated with a polyamino acid matrix, a pigment that photocatalyzes the phosphorylation of ADP to form ATP, could have been present in the prebiotic environment. Indeed, excited flavin molecules play key roles in many photoenzymes and regulatory photoreceptors, and the substantial structural differences between photoreceptor families indicate that evolution has repeatedly used flavins as chromophores for photoreceptor proteins. Some of these photoreceptors are equipped with a light-harvesting antenna, which transfers excitation energy to chemically reactive flavins in the reaction center. The sum of the available data suggests that evolution could have led to the formation of a flavin-based biological converter to convert light energy into energy in the form of ATP.
机译:兴奋的黄素分子可以光催化反应,导致产物中自由能的积累,通过生化实验和通过模拟生物学过程积累的数据表明,黄素可在进化的最早阶段获得。此外,模型实验表明,在益生元环境中可能存在与聚氨基酸基质(一种光催化ADP磷酸化形成ATP的色素)缀合的非生物类黄素。的确,兴奋的黄素分子在许多光酶和调节性光感受器中起关键作用,并且光感受器家族之间的实质性结构差异表明进化过程已反复使用黄素作为光感受器蛋白的生色团。这些感光器中的一些配备了光收集天线,该光收集天线将激发能量转移到反应中心的化学反应性黄素中。现有数据的总和表明,进化可能导致了基于黄素的生物转换器的形成,该转换器将光能转换为ATP形式的能量。

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