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基因获得促进了衣原体的内共生进化。

Gene gain facilitated endosymbiotic evolution of Chlamydiae.

机构信息

Department of Cell and Molecular Biology, Science for Life Laboratory, Uppsala University, Uppsala, Sweden.

University of Vienna, Centre for Microbiology and Environmental Systems Science, Vienna, Austria.

出版信息

Nat Microbiol. 2023 Jan;8(1):40-54. doi: 10.1038/s41564-022-01284-9. Epub 2023 Jan 5.

Abstract

Chlamydiae is a bacterial phylum composed of obligate animal and protist endosymbionts. However, other members of the Planctomycetes-Verrucomicrobia-Chlamydiae superphylum are primarily free living. How Chlamydiae transitioned to an endosymbiotic lifestyle is still largely unresolved. Here we reconstructed Planctomycetes-Verrucomicrobia-Chlamydiae species relationships and modelled superphylum genome evolution. Gene content reconstruction from 11,996 gene families suggests a motile and facultatively anaerobic last common Chlamydiae ancestor that had already gained characteristic endosymbiont genes. Counter to expectations for genome streamlining in strict endosymbionts, we detected substantial gene gain within Chlamydiae. We found that divergence in energy metabolism and aerobiosis observed in extant lineages emerged later during chlamydial evolution. In particular, metabolic and aerobic genes characteristic of the more metabolically versatile protist-infecting chlamydiae were gained, such as respiratory chain complexes. Our results show that metabolic complexity can increase during endosymbiont evolution, adding an additional perspective for understanding symbiont evolutionary trajectories across the tree of life.

摘要

衣原体是一个细菌门,由专性动物和原生动物内共生体组成。然而,盘状菌门-疣微菌门-衣原体超门的其他成员主要是自由生活的。衣原体如何过渡到内共生生活方式在很大程度上仍未得到解决。在这里,我们重建了盘状菌门-疣微菌门-衣原体物种关系,并对超门基因组进化进行了建模。从 11996 个基因家族重建的基因内容表明,衣原体的最后一个共同祖先具有运动性和兼性厌氧性,并且已经获得了特征性的内共生体基因。与严格内共生体中基因组简化的预期相反,我们在衣原体中检测到了大量的基因获得。我们发现,在现存的谱系中观察到的能量代谢和需氧性的分歧是在衣原体进化过程中较晚出现的。特别是,获得了更具代谢多样性的感染原生动物的衣原体的特征代谢和需氧基因,例如呼吸链复合物。我们的研究结果表明,代谢复杂性可以在内共生体进化过程中增加,为理解生命之树中共生体的进化轨迹提供了另一个视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2bd6/9816063/9a1f8ba2d2e3/41564_2022_1284_Fig1_HTML.jpg

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