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

Author:

Tan Sha123ORCID,Liu Lan123ORCID,Jiao Jian-Yu123ORCID,Li Meng-Meng123ORCID,Hu Chao-Jian123ORCID,Lv Ai-Ping123ORCID,Qi Yan-Ling4ORCID,Li Yu-Xian4ORCID,Rao Yang-Zhi4ORCID,Qu Yan-Ni4ORCID,Jiang Hong-Chen5ORCID,Soo Rochelle M6ORCID,Evans Paul N6ORCID,Hua Zheng-Shuang4ORCID,Li Wen-Jun1237ORCID

Affiliation:

1. State Key Laboratory of Biocontrol, School of Life Sciences, Sun Yat-Sen University , Guangzhou 510275 , PR China

2. Guangdong Provincial Key Laboratory of Plant Stress Biology, Sun Yat-Sen University , Guangzhou 510275 , PR China

3. Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Sun Yat-Sen University , Guangzhou 510275 , PR China

4. Chinese Academy of Sciences Key Laboratory of Urban Pollutant Conversion, Department of Environmental Science and Engineering, University of Science and Technology of China , Hefei 230026 , PR China

5. State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences , Wuhan 430074 , PR China

6. The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Centre for Ecogenomics , St Lucia, QLD 4072 , Australia

7. State Key Laboratory of Desert and Oasis Ecology, Key Laboratory of Ecological Safety and Sustainable Development in Arid Lands, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences , Urumqi 830011 , PR China

Abstract

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.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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