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Rhodopsin-mediated nutrient uptake by cultivated photoheterotrophic iVerrucomicrobiota/i

  1. 1.
    0583803 - BC 2024 RIV GB eng J - Journal Article
    Bar-Shalom, R. - Rozenberg, A. - Lahyani, M. - Hassanzadeh, M. - Sahoo, G. - Haber, Markus - Burgsdorf, I. - Tang, X. - Squatrito, V. - Gomez-Consarnau, L. - Béja, O. - Steindler, L.
    Rhodopsin-mediated nutrient uptake by cultivated photoheterotrophic iVerrucomicrobiota/i.
    The ISME Journal. Roč. 17, č. 7 (2023), s. 1063-1073. ISSN 1751-7362. E-ISSN 1751-7370
    Institutional support: RVO:60077344
    Keywords : marine-bacteria * proteorhodopsin genes * enhanced growth * bacterioplankton
    OECD category: Microbiology
    Impact factor: 11, year: 2022
    Method of publishing: Open access
    https://doi.org/10.1038/s41396-023-01412-1

    Rhodopsin photosystems convert light energy into electrochemical gradients used by the cell to produce ATP, or for other energy-demanding processes. While these photosystems are widespread in the ocean and have been identified in diverse microbial taxonomic groups, their physiological role in vivo has only been studied in few marine bacterial strains. Recent metagenomic studies revealed the presence of rhodopsin genes in the understudied Verrucomicrobiota phylum, yet their distribution within different Verrucomicrobiota lineages, their diversity, and function remain unknown. In this study, we show that more than 7% of Verrucomicrobiota genomes (n = 2916) harbor rhodopsins of different types. Furthermore, we describe the first two cultivated rhodopsin-containing strains, one harboring a proteorhodopsin gene and the other a xanthorhodopsin gene, allowing us to characterize their physiology under laboratory-controlled conditions. The strains were isolated in a previous study from the Eastern Mediterranean Sea and read mapping of 16S rRNA gene amplicons showed the highest abundances of these strains at the deep chlorophyll maximum (source of their inoculum) in winter and spring, with a substantial decrease in summer. Genomic analysis of the isolates suggests that motility and degradation of organic material, both energy demanding functions, may be supported by rhodopsin phototrophy in Verrucomicrobiota. Under culture conditions, we show that rhodopsin phototrophy occurs under carbon starvation, with light-mediated energy generation supporting sugar transport into the cells. Overall, this study suggests that photoheterotrophic Verrucomicrobiota may occupy an ecological niche where energy harvested from light enables bacterial motility toward organic matter and supports nutrient uptake.
    Permanent Link: https://hdl.handle.net/11104/0351801

     
     
Number of the records: 1  

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