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真核生物树的进展。

Progress towards the Tree of Eukaryotes.

机构信息

Department of Botany, University of British Columbia, Vancouver V6T 1Z4, British Columbia, Canada.

Department of Organismal Biology, Program in Systematic Biology, Uppsala University, Uppsala, Sweden; Science for Life Laboratory, Uppsala University, Uppsala, Sweden.

出版信息

Curr Biol. 2019 Aug 19;29(16):R808-R817. doi: 10.1016/j.cub.2019.07.031.

Abstract

Developing a detailed understanding of how all known forms of life are related to one another in the tree of life has been a major preoccupation of biology since the idea of tree-like evolution first took hold. Since most life is microbial, our intuitive use of morphological comparisons to infer relatedness only goes so far, and molecular sequence data, most recently from genomes and transcriptomes, has been the primary means to infer these relationships. For prokaryotes this presented new challenges, since the degree of horizontal gene transfer led some to question the tree-like depiction of evolution altogether. Most eukaryotes are also microbial, but in contrast to prokaryotic life, the application of large-scale molecular data to the tree of eukaryotes has largely been a constructive process, leading to a small number of very diverse lineages, or 'supergroups'. The tree is not completely resolved, and contentious problems remain, but many well-established supergroups now encompass much more diversity than the traditional kingdoms. Some of the most exciting recent developments come from the discovery of branches in the tree that we previously had no inkling even existed, many of which are of great ecological or evolutionary interest. These new branches highlight the need for more exploration, by high-throughput molecular surveys, but also more traditional means of observations and cultivation.

摘要

自进化树的概念首次确立以来,深入了解所有已知生命形式在生命之树上是如何相互关联的,一直是生物学的主要关注点。由于大多数生命是微生物,我们直观地使用形态比较来推断相关性的方法只能到此为止,而分子序列数据,最近来自基因组和转录组,一直是推断这些关系的主要手段。对于原核生物来说,这带来了新的挑战,因为水平基因转移的程度使得一些人完全质疑进化的树状描述。大多数真核生物也是微生物,但与原核生物不同的是,大规模分子数据在真核生物树中的应用在很大程度上是一个建设性的过程,导致了少数非常多样化的谱系,或“超级群”。该树尚未完全解决,仍存在有争议的问题,但许多已确立的超级群现在包含的多样性远远超过传统的界。一些最令人兴奋的最新进展来自于在树中发现了我们以前甚至没有意识到存在的分支,其中许多分支具有重要的生态或进化意义。这些新分支突出表明,需要通过高通量分子调查,以及更传统的观察和培养手段,进行更多的探索。

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