Exploring the Origins and Evolution of Oxygenic and Anoxygenic Photosynthesis in Deeply Branched Cyanobacteriota.

IF 11 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Sha Tan, Lan Liu, Jian-Yu Jiao, Meng-Meng Li, Chao-Jian Hu, Ai-Ping Lv, Yan-Ling Qi, Yu-Xian Li, Yang-Zhi Rao, Yan-Ni Qu, Hong-Chen Jiang, Rochelle M Soo, Paul N Evans, Zheng-Shuang Hua, Wen-Jun Li
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Abstract

Cyanobacteriota, the sole prokaryotes capable of oxygenic photosynthesis (OxyP), occupy a unique and pivotal role in Earth's history. While the notion that OxyP may have originated from Cyanobacteriota is widely accepted, its early evolution remains elusive. Here, by using both metagenomics and metatranscriptomics, we explore 36 metagenome-assembled genomes from hot spring ecosystems, belonging to two deep-branching cyanobacterial orders: Thermostichales and Gloeomargaritales. Functional investigation reveals that Thermostichales encode the crucial thylakoid membrane biogenesis protein, vesicle-inducing protein in plastids 1 (Vipp1). Based on the phylogenetic results, we infer that the evolution of the thylakoid membrane predates the divergence of Thermostichales from other cyanobacterial groups and that Thermostichales may be the most ancient lineage known to date to have inherited this feature from their common ancestor. Apart from OxyP, both lineages are potentially capable of sulfide-driven AnoxyP by linking sulfide oxidation to the photosynthetic electron transport chain. Unexpectedly, this AnoxyP capacity appears to be an acquired feature, as the key gene sqr was horizontally transferred from later-evolved cyanobacterial lineages. The presence of two D1 protein variants in Thermostichales suggests the functional flexibility of photosystems, ensuring their survival in fluctuating redox environments. Furthermore, all MAGs feature streamlined phycobilisomes with a preference for capturing longer-wavelength light, implying a unique evolutionary trajectory. Collectively, these results reveal the photosynthetic flexibility in these early-diverging cyanobacterial lineages, shedding new light on the early evolution of Cyanobacteriota and their photosynthetic processes.

探索深枝蓝细菌含氧和缺氧光合作用的起源和进化。
蓝细菌群是唯一能够进行含氧光合作用(OxyP)的原核生物,在地球历史上扮演着独特而关键的角色。虽然人们普遍认为氧光合作用可能起源于蓝细菌群,但其早期演化仍然难以捉摸。在这里,我们利用元基因组学和元转录组学,探索了来自温泉生态系统的 36 个元基因组组装基因组(MAGs),它们分别属于两个深分支蓝藻目:Thermostichales 和 Gloeomargaritales。功能性研究发现,Thermostichales编码关键的类囊体膜生物生成蛋白Vipp1。根据系统发育的结果,我们推断出类囊体膜的进化要早于恒温动物群与其他蓝藻群的分化,恒温动物群可能是迄今所知从其共同祖先继承了这一特征的最古老的类群。除了 OxyP 外,通过将硫化物氧化与光合电子传递链连接起来,这两个品系都有可能进行硫化物驱动的无氧光合作用(AnoxyP)。意想不到的是,这种 AnoxyP 能力似乎是后天获得的,因为关键基因 sqr 是由后来进化的蓝藻品系水平转移而来的。嗜热菌中存在两种 D1 蛋白变体,这表明光系统具有功能灵活性,可确保其在波动的氧化还原环境中生存。此外,所有 MAGs 都具有流线型的藻体,偏好捕捉长波长的光,这意味着它们有着独特的进化轨迹。总之,这些结果揭示了这些早期分化的蓝藻品系的光合作用灵活性,为蓝藻生物群及其光合作用过程的早期演化提供了新的线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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