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通往真核生物基因组的漫长之路。

The slow road to the eukaryotic genome.

作者信息

Lester Leo, Meade Andrew, Pagel Mark

机构信息

School of Animal and Microbial Sciences, The University of Reading, UK.

出版信息

Bioessays. 2006 Jan;28(1):57-64. doi: 10.1002/bies.20344.

Abstract

The eukaryotic genome is a mosaic of eubacterial and archaeal genes in addition to those unique to itself. The mosaic may have arisen as the result of two prokaryotes merging their genomes, or from genes acquired from an endosymbiont of eubacterial origin. A third possibility is that the eukaryotic genome arose from successive events of lateral gene transfer over long periods of time. This theory does not exclude the endosymbiont, but questions whether it is necessary to explain the peculiar set of eukaryotic genes. We use phylogenetic studies and reconstructions of ancestral first appearances of genes on the prokaryotic phylogeny to assess evidence for the lateral gene transfer scenario. We find that phylogenies advanced to support fusion can also arise from a succession of lateral gene transfer events. Our reconstructions of ancestral first appearances of genes reveal that the various genes that make up the eukaryotic mosaic arose at different times and in diverse lineages on the prokaryotic tree, and were not available in a single lineage. Successive events of lateral gene transfer can explain the unusual mosaic structure of the eukaryotic genome, with its content linked to the immediate adaptive value of the genes its acquired. Progress in understanding eukaryotes may come from identifying ancestral features such as the eukaryotic splicesome that could explain why this lineage invaded, or created, the eukaryotic niche.

摘要

真核生物基因组除了自身特有的基因外,还包含细菌和古细菌基因的镶嵌体。这种镶嵌体可能是由于两种原核生物合并它们的基因组,或者是从细菌起源的内共生体获得基因而产生的。第三种可能性是真核生物基因组是长时间连续水平基因转移事件的结果。该理论并不排除内共生体,但质疑是否有必要用它来解释真核生物特有的基因集。我们利用系统发育研究和原核生物系统发育树上基因首次出现的祖先重建来评估水平基因转移假说的证据。我们发现,为支持融合而提出的系统发育也可能源于一系列水平基因转移事件。我们对基因首次出现的祖先重建表明,构成真核生物镶嵌体的各种基因在原核生物树上的不同时间和不同谱系中出现,并非在单一谱系中可得。连续的水平基因转移事件可以解释真核生物基因组不同寻常的镶嵌结构,其内容与其获得的基因的直接适应价值相关。理解真核生物的进展可能来自于识别祖先特征,比如真核生物剪接体,这可以解释为什么这个谱系侵入或创造了真核生物生态位。

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