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Decoding the genomic tree of life

机译:解码生命的基因组树

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摘要

Genomes hold within them the record of the evolution of life on Earth. But genome fusions and horizontal gene transfer (HGT) seem to have obscured sufficiently the gene sequence record such that it is difficult to reconstruct the phylogenetic tree of life. HGT among prokaryotes is not random, however. Some genes (informational genes) are more difficult to transfer than others (operational genes). Furthermore, environmental, metabolic, and genetic differences among organisms restrict HGT, so that prokaryotes preferentially share genes with other prokaryotes having properties in common, including genome size, genome G+C composition, carbon utilization, oxygen utilization/sensitivity, and temperature optima, further complicating attempts to reconstruct the tree of life. A new method of phylogenetic reconstruction based on gene presence and absence, called conditioned reconstruction, has improved our prospects for reconstructing prokaryotic evolution. It is also able to detect past genome fusions, such as the fusion that appears to have created the first eukaryote. This genome fusion between a deep branching eubacterium, possibly an ancestor of the cyanobacterium and a proteobacterium, with an archaeal eocyte (crenarchaea), appears to be the result of an early symbiosis. Given new tools and new genes from relevant organisms, it should soon be possible to test current and future fusion theories for the origin of eukaryotes and to discover the general outlines of the prokaryotic tree of life.
机译:基因组中保存着地球生命进化的记录。但是基因组融合和水平基因转移(HGT)似乎已经充分掩盖了基因序列记录,因此很难重建生命的系统树。然而,原核生物之间的HGT不是随机的。一些基因(信息基因)比其他基因(操作基因)更难转移。此外,生物体之间的环境,代谢和遗传差异会限制HGT,因此原核生物优先与其他具有相同属性的原核生物共享基因,这些特性包括基因组大小,基因组G + C组成,碳利用,氧利用/敏感性和温度最适,重建生命树的尝试进一步复杂化。一种基于基因存在和不存在的系统发育重建的新方法,称为条件重建,改善了我们重建原核进化的前景。它还能够检测过去的基因组融合,例如看起来已经产生了第一个真核生物的融合。深部分支真细菌(可能是蓝细菌的祖先)和变形杆菌之间的这种基因组融合与古细菌的原代细胞(crenarchaea)一起,似乎是早期共生的结果。有了来自相关生物的新工具和新基因,就应该有可能很快测试当前和未来的融合理论以了解真核生物的起源,并发现原核生物树的概貌。

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