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色氨酸操纵子的古老起源与进化变化的动态过程

Ancient origin of the tryptophan operon and the dynamics of evolutionary change.

作者信息

Xie Gary, Keyhani Nemat O, Bonner Carol A, Jensen Roy A

机构信息

Department of Microbiology and Cell Science, University of Florida, Gainesville, Florida 32611, USA.

出版信息

Microbiol Mol Biol Rev. 2003 Sep;67(3):303-42, table of contents. doi: 10.1128/MMBR.67.3.303-342.2003.

Abstract

The seven conserved enzymatic domains required for tryptophan (Trp) biosynthesis are encoded in seven genetic regions that are organized differently (whole-pathway operons, multiple partial-pathway operons, and dispersed genes) in prokaryotes. A comparative bioinformatics evaluation of the conservation and organization of the genes of Trp biosynthesis in prokaryotic operons should serve as an excellent model for assessing the feasibility of predicting the evolutionary histories of genes and operons associated with other biochemical pathways. These comparisons should provide a better understanding of possible explanations for differences in operon organization in different organisms at a genomics level. These analyses may also permit identification of some of the prevailing forces that dictated specific gene rearrangements during the course of evolution. Operons concerned with Trp biosynthesis in prokaryotes have been in a dynamic state of flux. Analysis of closely related organisms among the Bacteria at various phylogenetic nodes reveals many examples of operon scission, gene dispersal, gene fusion, gene scrambling, and gene loss from which the direction of evolutionary events can be deduced. Two milestone evolutionary events have been mapped to the 16S rRNA tree of Bacteria, one splitting the operon in two, and the other rejoining it by gene fusion. The Archaea, though less resolved due to a lesser genome representation, appear to exhibit more gene scrambling than the Bacteria. The trp operon appears to have been an ancient innovation; it was already present in the common ancestor of Bacteria and Archaea. Although the operon has been subjected, even in recent times, to dynamic changes in gene rearrangement, the ancestral gene order can be deduced with confidence. The evolutionary history of the genes of the pathway is discernible in rough outline as a vertical line of descent, with events of lateral gene transfer or paralogy enriching the analysis as interesting features that can be distinguished. As additional genomes are thoroughly analyzed, an increasingly refined resolution of the sequential evolutionary steps is clearly possible. These comparisons suggest that present-day trp operons that possess finely tuned regulatory features are under strong positive selection and are able to resist the disruptive evolutionary events that may be experienced by simpler, poorly regulated operons.

摘要

色氨酸(Trp)生物合成所需的七个保守酶结构域由七个基因区域编码,这些基因区域在原核生物中的组织方式不同(全途径操纵子、多个部分途径操纵子和分散基因)。对原核生物操纵子中Trp生物合成基因的保守性和组织进行比较生物信息学评估,应可作为评估预测与其他生化途径相关的基因和操纵子进化历史可行性的优秀模型。这些比较应能更好地理解基因组水平上不同生物体操纵子组织差异的可能解释。这些分析还可能有助于识别在进化过程中决定特定基因重排的一些主要力量。原核生物中与Trp生物合成相关的操纵子一直处于动态变化状态。对细菌中不同系统发育节点的密切相关生物体进行分析,揭示了许多操纵子断裂、基因分散、基因融合、基因重排和基因丢失的例子,从中可以推断进化事件的方向。两个具有里程碑意义的进化事件已映射到细菌的16S rRNA树,一个将操纵子一分为二,另一个通过基因融合使其重新连接。古菌虽然由于基因组代表性较低而解析度较低,但似乎比细菌表现出更多的基因重排。trp操纵子似乎是一项古老的创新;它已经存在于细菌和古菌的共同祖先中。尽管即使在最近,操纵子也经历了基因重排的动态变化,但可以自信地推断出祖先的基因顺序。该途径基因的进化历史大致可辨认为一条垂直的谱系,横向基因转移或旁系同源事件作为有趣的特征丰富了分析内容,可加以区分。随着更多基因组被彻底分析,显然有可能对连续的进化步骤进行越来越精细的解析。这些比较表明,目前具有精细调节特征的trp操纵子受到强烈的正选择,能够抵御简单、调节不佳的操纵子可能经历的破坏性进化事件。

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