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Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration

How the diverse bacterial communities inhabiting desert soils maintain energy and carbon needs is much debated. Traditionally, most bacteria are thought to persist by using organic carbon synthesized by photoautotrophs following transient hydration events. Recent studies focused on Antarctic desert...

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Autores principales: Jordaan, Karen, Lappan, Rachael, Dong, Xiyang, Aitkenhead, Ian J., Bay, Sean K., Chiri, Eleonora, Wieler, Nimrod, Meredith, Laura K., Cowan, Don A., Chown, Steven L., Greening, Chris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7677003/
https://www.ncbi.nlm.nih.gov/pubmed/33203691
http://dx.doi.org/10.1128/mSystems.01131-20
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author Jordaan, Karen
Lappan, Rachael
Dong, Xiyang
Aitkenhead, Ian J.
Bay, Sean K.
Chiri, Eleonora
Wieler, Nimrod
Meredith, Laura K.
Cowan, Don A.
Chown, Steven L.
Greening, Chris
author_facet Jordaan, Karen
Lappan, Rachael
Dong, Xiyang
Aitkenhead, Ian J.
Bay, Sean K.
Chiri, Eleonora
Wieler, Nimrod
Meredith, Laura K.
Cowan, Don A.
Chown, Steven L.
Greening, Chris
author_sort Jordaan, Karen
collection PubMed
description How the diverse bacterial communities inhabiting desert soils maintain energy and carbon needs is much debated. Traditionally, most bacteria are thought to persist by using organic carbon synthesized by photoautotrophs following transient hydration events. Recent studies focused on Antarctic desert soils have revealed, however, that some bacteria use atmospheric trace gases, such as hydrogen (H(2)), to conserve energy and fix carbon independently of photosynthesis. In this study, we investigated whether atmospheric H(2) oxidation occurs in four nonpolar desert soils and compared this process to photosynthesis. To do so, we first profiled the distribution, expression, and activities of hydrogenases and photosystems in surface soils collected from the South Australian desert over a simulated hydration-desiccation cycle. Hydrogenase-encoding sequences were abundant in the metagenomes and metatranscriptomes and were detected in actinobacterial, acidobacterial, and cyanobacterial metagenome-assembled genomes. Native dry soil samples mediated H(2) oxidation, but rates increased 950-fold following wetting. Oxygenic and anoxygenic phototrophs were also detected in the community but at lower abundances. Hydration significantly stimulated rates of photosynthetic carbon fixation and, to a lesser extent, dark carbon assimilation. Hydrogenase genes were also widespread in samples from three other climatically distinct deserts, the Namib, Gobi, and Mojave, and atmospheric H(2) oxidation was also greatly stimulated by hydration at these sites. Together, these findings highlight that H(2) is an important, hitherto-overlooked energy source supporting bacterial communities in desert soils. Contrary to our previous hypotheses, however, H(2) oxidation occurs simultaneously rather than alternately with photosynthesis in such ecosystems and may even be mediated by some photoautotrophs. IMPORTANCE Desert ecosystems, spanning a third of the earth’s surface, harbor remarkably diverse microbial life despite having a low potential for photosynthesis. In this work, we reveal that atmospheric hydrogen serves as a major previously overlooked energy source for a large proportion of desert bacteria. We show that both chemoheterotrophic and photoautotrophic bacteria have the potential to oxidize hydrogen across deserts sampled across four continents. Whereas hydrogen oxidation was slow in native dry deserts, it increased by three orders of magnitude together with photosynthesis following hydration. This study revealed that continual harvesting of atmospheric energy sources may be a major way that desert communities adapt to long periods of water and energy deprivation, with significant ecological and biogeochemical ramifications. Author Video: An author video summary of this article is available.
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spelling pubmed-76770032020-12-09 Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration Jordaan, Karen Lappan, Rachael Dong, Xiyang Aitkenhead, Ian J. Bay, Sean K. Chiri, Eleonora Wieler, Nimrod Meredith, Laura K. Cowan, Don A. Chown, Steven L. Greening, Chris mSystems Research Article How the diverse bacterial communities inhabiting desert soils maintain energy and carbon needs is much debated. Traditionally, most bacteria are thought to persist by using organic carbon synthesized by photoautotrophs following transient hydration events. Recent studies focused on Antarctic desert soils have revealed, however, that some bacteria use atmospheric trace gases, such as hydrogen (H(2)), to conserve energy and fix carbon independently of photosynthesis. In this study, we investigated whether atmospheric H(2) oxidation occurs in four nonpolar desert soils and compared this process to photosynthesis. To do so, we first profiled the distribution, expression, and activities of hydrogenases and photosystems in surface soils collected from the South Australian desert over a simulated hydration-desiccation cycle. Hydrogenase-encoding sequences were abundant in the metagenomes and metatranscriptomes and were detected in actinobacterial, acidobacterial, and cyanobacterial metagenome-assembled genomes. Native dry soil samples mediated H(2) oxidation, but rates increased 950-fold following wetting. Oxygenic and anoxygenic phototrophs were also detected in the community but at lower abundances. Hydration significantly stimulated rates of photosynthetic carbon fixation and, to a lesser extent, dark carbon assimilation. Hydrogenase genes were also widespread in samples from three other climatically distinct deserts, the Namib, Gobi, and Mojave, and atmospheric H(2) oxidation was also greatly stimulated by hydration at these sites. Together, these findings highlight that H(2) is an important, hitherto-overlooked energy source supporting bacterial communities in desert soils. Contrary to our previous hypotheses, however, H(2) oxidation occurs simultaneously rather than alternately with photosynthesis in such ecosystems and may even be mediated by some photoautotrophs. IMPORTANCE Desert ecosystems, spanning a third of the earth’s surface, harbor remarkably diverse microbial life despite having a low potential for photosynthesis. In this work, we reveal that atmospheric hydrogen serves as a major previously overlooked energy source for a large proportion of desert bacteria. We show that both chemoheterotrophic and photoautotrophic bacteria have the potential to oxidize hydrogen across deserts sampled across four continents. Whereas hydrogen oxidation was slow in native dry deserts, it increased by three orders of magnitude together with photosynthesis following hydration. This study revealed that continual harvesting of atmospheric energy sources may be a major way that desert communities adapt to long periods of water and energy deprivation, with significant ecological and biogeochemical ramifications. Author Video: An author video summary of this article is available. American Society for Microbiology 2020-11-17 /pmc/articles/PMC7677003/ /pubmed/33203691 http://dx.doi.org/10.1128/mSystems.01131-20 Text en Copyright © 2020 Jordaan et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Jordaan, Karen
Lappan, Rachael
Dong, Xiyang
Aitkenhead, Ian J.
Bay, Sean K.
Chiri, Eleonora
Wieler, Nimrod
Meredith, Laura K.
Cowan, Don A.
Chown, Steven L.
Greening, Chris
Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title_full Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title_fullStr Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title_full_unstemmed Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title_short Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration
title_sort hydrogen-oxidizing bacteria are abundant in desert soils and strongly stimulated by hydration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7677003/
https://www.ncbi.nlm.nih.gov/pubmed/33203691
http://dx.doi.org/10.1128/mSystems.01131-20
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