Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring

ABSTRACT Populations of the acidophilic purple nonsulfur bacterium Rhodopila globiformis were identified in two geographically distinct thermal areas in Yellowstone National Park (Wyoming, USA), as confirmed by 16S rRNA gene sequencing and detection of characteristic methoxylated ketocarotenoids. Mi...

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Published in:Applied and Environmental Microbiology
Main Authors: Kristopher M. Fecteau, Katelyn M. Weeks, R. Vincent Debes, Tanner J. Barnes, Kirtland J. Robinson, Joshua J. Nye, Melody R. Lindsay, Eric S. Boyd, Everett L. Shock
Format: Article
Language:English
Published: American Society for Microbiology 2025-10-01
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Online Access:https://journals.asm.org/doi/10.1128/aem.01217-25
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author Kristopher M. Fecteau
Katelyn M. Weeks
R. Vincent Debes
Tanner J. Barnes
Kirtland J. Robinson
Joshua J. Nye
Melody R. Lindsay
Eric S. Boyd
Everett L. Shock
author_facet Kristopher M. Fecteau
Katelyn M. Weeks
R. Vincent Debes
Tanner J. Barnes
Kirtland J. Robinson
Joshua J. Nye
Melody R. Lindsay
Eric S. Boyd
Everett L. Shock
author_sort Kristopher M. Fecteau
collection DOAJ
container_title Applied and Environmental Microbiology
description ABSTRACT Populations of the acidophilic purple nonsulfur bacterium Rhodopila globiformis were identified in two geographically distinct thermal areas in Yellowstone National Park (Wyoming, USA), as confirmed by 16S rRNA gene sequencing and detection of characteristic methoxylated ketocarotenoids. Microcosm-based carbon uptake assays where oxygenic photosynthesis was excluded via addition of 3-(3,4-dichlorophenyl)-1,1-dimethylurea yielded a light-driven dissolved inorganic carbon (DIC) assimilation rate (7 ± 2 mg C g C−1 h−1) comparable to those of highly productive algal mats in acidic hot springs, suggesting that R. globiformis may be performing photoautotrophy at the time of the assay. Rates of acetate assimilation were more than two orders of magnitude lower than DIC assimilation and did not differ between light and dark treatments, indicating photoheterotrophic use of acetate was not occurring, though photoheterotrophic assimilation of other organic compounds cannot be excluded. The tepid (35°C) spring waters are acidic (pH = 3.7) with moderate dissolved hydrogen sulfide (0.2 mM) and abundant DIC (11 mM), an apparently rare set of conditions thought to arise from extremely shallow mixing of oxygenated meteoric water and volcanic gases. Though originally isolated and cultured photoheterotrophically, in nature, R. globiformis may grow photoautotrophically under the normal conditions of its habitat, utilizing a stable supply of DIC afforded by the injection of CO2-rich volcanic gases. To our knowledge, these are the most acidic conditions under which light-driven DIC assimilation has been observed in the domain Bacteria.IMPORTANCEPurple nonsulfur bacteria are ecologically diverse and metabolically versatile anoxygenic phototrophs; however, only a few acid-tolerant species are known. We identified populations of the purple nonsulfur bacterium Rhodopila globiformis in warm, acidic springs with moderate (~0.2 mM) concentrations of dissolved hydrogen sulfide in two thermal areas of Yellowstone National Park (Wyoming, USA). Comprehensive geochemical analyses of the spring waters illustrate that they are formed by mixing of groundwater and CO2-rich volcanic gases extremely close to the surface, relatively rare conditions that lead to characterization of R. globiformis as an endangered species. A high rate of light-driven assimilation of dissolved CO2 that rivals rates for acidophilic algae was observed, indicating that R. globiformis is responsible for a significant amount of primary production and suggesting it may primarily grow photoautotrophically in nature. These observations constitute the first insights into the physiological ecology of the most acidophilic anaerobic anoxygenic phototroph presently known.
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spelling doaj-art-e4eaa32b87514beeb403ec4d590a068d2025-10-22T13:21:29ZengAmerican Society for MicrobiologyApplied and Environmental Microbiology0099-22401098-53362025-10-01911010.1128/aem.01217-25Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm springKristopher M. Fecteau0Katelyn M. Weeks1R. Vincent Debes2Tanner J. Barnes3Kirtland J. Robinson4Joshua J. Nye5Melody R. Lindsay6Eric S. Boyd7Everett L. Shock8School of Earth and Space Exploration, Arizona State University, Tempe, Arizona, USASchool of Molecular Sciences, Arizona State University, Tempe, Arizona, USASchool of Earth and Space Exploration, Arizona State University, Tempe, Arizona, USASchool of Molecular Sciences, Arizona State University, Tempe, Arizona, USASchool of Earth and Space Exploration, Arizona State University, Tempe, Arizona, USASchool of Molecular Sciences, Arizona State University, Tempe, Arizona, USADepartment of Microbiology and Cell Biology, Montana State University, Bozeman, Montana, USADepartment of Microbiology and Cell Biology, Montana State University, Bozeman, Montana, USASchool of Earth and Space Exploration, Arizona State University, Tempe, Arizona, USAABSTRACT Populations of the acidophilic purple nonsulfur bacterium Rhodopila globiformis were identified in two geographically distinct thermal areas in Yellowstone National Park (Wyoming, USA), as confirmed by 16S rRNA gene sequencing and detection of characteristic methoxylated ketocarotenoids. Microcosm-based carbon uptake assays where oxygenic photosynthesis was excluded via addition of 3-(3,4-dichlorophenyl)-1,1-dimethylurea yielded a light-driven dissolved inorganic carbon (DIC) assimilation rate (7 ± 2 mg C g C−1 h−1) comparable to those of highly productive algal mats in acidic hot springs, suggesting that R. globiformis may be performing photoautotrophy at the time of the assay. Rates of acetate assimilation were more than two orders of magnitude lower than DIC assimilation and did not differ between light and dark treatments, indicating photoheterotrophic use of acetate was not occurring, though photoheterotrophic assimilation of other organic compounds cannot be excluded. The tepid (35°C) spring waters are acidic (pH = 3.7) with moderate dissolved hydrogen sulfide (0.2 mM) and abundant DIC (11 mM), an apparently rare set of conditions thought to arise from extremely shallow mixing of oxygenated meteoric water and volcanic gases. Though originally isolated and cultured photoheterotrophically, in nature, R. globiformis may grow photoautotrophically under the normal conditions of its habitat, utilizing a stable supply of DIC afforded by the injection of CO2-rich volcanic gases. To our knowledge, these are the most acidic conditions under which light-driven DIC assimilation has been observed in the domain Bacteria.IMPORTANCEPurple nonsulfur bacteria are ecologically diverse and metabolically versatile anoxygenic phototrophs; however, only a few acid-tolerant species are known. We identified populations of the purple nonsulfur bacterium Rhodopila globiformis in warm, acidic springs with moderate (~0.2 mM) concentrations of dissolved hydrogen sulfide in two thermal areas of Yellowstone National Park (Wyoming, USA). Comprehensive geochemical analyses of the spring waters illustrate that they are formed by mixing of groundwater and CO2-rich volcanic gases extremely close to the surface, relatively rare conditions that lead to characterization of R. globiformis as an endangered species. A high rate of light-driven assimilation of dissolved CO2 that rivals rates for acidophilic algae was observed, indicating that R. globiformis is responsible for a significant amount of primary production and suggesting it may primarily grow photoautotrophically in nature. These observations constitute the first insights into the physiological ecology of the most acidophilic anaerobic anoxygenic phototroph presently known.https://journals.asm.org/doi/10.1128/aem.01217-25Yellowstonecarotenoidacidophilesulfideanoxygenic photosynthesiscarbon fixation
spellingShingle Kristopher M. Fecteau
Katelyn M. Weeks
R. Vincent Debes
Tanner J. Barnes
Kirtland J. Robinson
Joshua J. Nye
Melody R. Lindsay
Eric S. Boyd
Everett L. Shock
Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
Yellowstone
carotenoid
acidophile
sulfide
anoxygenic photosynthesis
carbon fixation
title Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
title_full Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
title_fullStr Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
title_full_unstemmed Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
title_short Primary production by the purple nonsulfur bacterium Rhodopila globiformis in an acidic, moderately sulfidic warm spring
title_sort primary production by the purple nonsulfur bacterium rhodopila globiformis in an acidic moderately sulfidic warm spring
topic Yellowstone
carotenoid
acidophile
sulfide
anoxygenic photosynthesis
carbon fixation
url https://journals.asm.org/doi/10.1128/aem.01217-25
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