The role of reticulate evolution in creating innovation and complexity.

Kristen S Swithers, Shannon M Soucy, J Peter Gogarten
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引用次数: 23

Abstract

Reticulate evolution encompasses processes that conflict with traditional Tree of Life efforts. These processes, horizontal gene transfer (HGT), gene and whole-genome duplications through allopolyploidization, are some of the main driving forces for generating innovation and complexity. HGT has a profound impact on prokaryotic and eukaryotic evolution. HGTs can lead to the invention of new metabolic pathways and the expansion and enhancement of previously existing pathways. It allows for organismal adaptation into new ecological niches and new host ranges. Although many HGTs appear to be selected for because they provide some benefit to their recipient lineage, other HGTs may be maintained by chance through random genetic drift. Moreover, some HGTs that may initially seem parasitic in nature can cause complexity to arise through pathways of neutral evolution. Another mechanism for generating innovation and complexity, occurring more frequently in eukaryotes than in prokaryotes, is gene and genome duplications, which often occur through allopolyploidizations. We discuss how these different evolutionary processes contribute to generating innovation and complexity.

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网状进化在创造创新和复杂性中的作用。
网状进化包含了与传统生命之树理论相冲突的过程。这些过程,即水平基因转移(HGT),通过异源多倍体进行基因和全基因组复制,是产生创新和复杂性的一些主要驱动力。HGT对原核生物和真核生物的进化有着深远的影响。hgt可以导致新的代谢途径的发明以及先前存在的途径的扩展和增强。它允许生物体适应新的生态位和新的宿主范围。尽管许多hgt被选择是因为它们为受体谱系提供了一些好处,但其他hgt可能通过随机遗传漂变而偶然维持。此外,一些最初看似寄生的hgt可能会通过中性进化途径导致复杂性的产生。另一种产生创新和复杂性的机制,在真核生物中比在原核生物中更频繁地发生,是基因和基因组的复制,通常通过异源多倍体发生。我们将讨论这些不同的进化过程如何促进创新和复杂性的产生。
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