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基因组信息视角下的光合真核生物内共生细胞器进化

Genomics-Informed Insights into Endosymbiotic Organelle Evolution in Photosynthetic Eukaryotes.

机构信息

Microbial Symbiosis and Organelle Evolution Group, Biology Department, Heinrich Heine University, 40225 Düsseldorf, Germany; email:

Institute of Plant Biochemistry, Cluster of Excellence on Plant Science (CEPLAS), Heinrich Heine University, 40225 Düsseldorf, Germany; email:

出版信息

Annu Rev Plant Biol. 2018 Apr 29;69:51-84. doi: 10.1146/annurev-arplant-042817-040209. Epub 2018 Feb 28.

Abstract

The conversion of free-living cyanobacteria to photosynthetic organelles of eukaryotic cells through endosymbiosis transformed the biosphere and eventually provided the basis for life on land. Despite the presumable advantage conferred by the acquisition of photoautotrophy through endosymbiosis, only two independent cases of primary endosymbiosis have been documented: one that gave rise to the Archaeplastida, and the other to photosynthetic species of the thecate, filose amoeba Paulinella. Here, we review recent genomics-informed insights into the primary endosymbiotic origins of cyanobacteria-derived organelles. Furthermore, we discuss the preconditions for the evolution of nitrogen-fixing organelles. Recent genomic data on previously undersampled cyanobacterial and protist taxa provide new clues to the origins of the host cell and endosymbiont, and proteomic approaches allow insights into the rearrangement of the endosymbiont proteome during organellogenesis. We conclude that in addition to endosymbiotic gene transfers, horizontal gene acquisitions from a broad variety of prokaryotic taxa were crucial to organelle evolution.

摘要

通过内共生作用,自由生活的蓝藻转化为真核细胞的光合细胞器,从而改变了生物圈,并最终为陆地生命提供了基础。尽管内共生作用获得的光自养可能具有优势,但仅有两个独立的初级内共生事件被记录下来:一个导致了古菌域,另一个导致了有被甲、丝状变形虫 Paulinella 的光合物种。在这里,我们回顾了最近基于基因组学的关于蓝藻衍生细胞器的初级内共生起源的见解。此外,我们还讨论了固氮细胞器进化的前提条件。最近对以前采样不足的蓝细菌和原生生物类群的基因组数据提供了宿主细胞和内共生体起源的新线索,而蛋白质组学方法则可以深入了解细胞器发生过程中内共生体蛋白质组的重排。我们的结论是,除了内共生基因转移外,来自各种原核生物类群的水平基因获取对于细胞器的进化也是至关重要的。

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