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Gene Transfers Shaped the Evolution of De Novo NAD+ Biosynthesis in Eukaryotes

机译:基因转移塑造了真核生物中从头NAD +生物合成的进化。

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NAD+ is an essential molecule for life, present in each living cell. It can function as an electron carrier or cofactor in redox biochemistry and energetics, and serves as substrate to generate the secondary messenger cyclic ADP ribose and nicotinic acid adenine dinucleotide phosphate. Although de novo NAD+ biosynthesis is essential, different metabolic pathways exist in different eukaryotic clades. The kynurenine pathway starting with tryptophan was most likely present in the last common ancestor of all eukaryotes, and is active in fungi and animals. The aspartate pathway, detected in most photosynthetic eukaryotes, was probably acquired from the cyanobacterial endosymbiont that gave rise to chloroplasts. An evolutionary analysis of enzymes catalyzing de novo NAD+ biosynthesis resulted in evolutionary trees incongruent with established organismal phylogeny, indicating numerous gene transfers. Endosymbiotic gene transfers probably introduced the aspartate pathway into eukaryotes and may have distributed it among different photosynthetic clades. In addition, several horizontal gene transfers substituted eukaryotic genes with bacterial orthologs. Although horizontal gene transfer is accepted as a key mechanism in prokaryotic evolution, it is supposed to be rare in eukaryotic evolution. The essential metabolic pathway of de novo NAD+ biosynthesis in eukaryotes was shaped by numerous gene transfers.
机译:NAD + 是生命必需的分子,存在于每个活细胞中。它可以在氧化还原生物化学和高能学中用作电子载体或辅助因子,并用作生成次级信使环ADP核糖和烟酸腺嘌呤二核苷酸磷酸的底物。尽管从头开始NAD + 生物合成是必不可少的,但不同的真核进化枝中存在着不同的代谢途径。从色氨酸开始的犬尿氨酸途径最有可能存在于所有真核生物的最后共同祖先中,并且在真菌和动物中活跃。在大多数光合作用的真核生物中检测到的天冬氨酸途径可能是从产生叶绿体的蓝细菌内共生体中获得的。对从头催化NAD + 生物合成的酶的进化分析导致进化树与已建立的生物系统发育不一致,表明有大量基因转移。内共生基因转移可能将天冬氨酸途径引入真核生物,并且可能已将其分布在不同的光合进化枝中。另外,几个水平基因转移用细菌直系同源物取代了真核基因。尽管水平基因转移被认为是原核进化的关键机制,但它在真核进化中被认为是罕见的。真核生物从头进行NAD + 生物合成的重要代谢途径是通过大量基因转移而形成的。

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