Hydrogen (H2) is a fundamental electron donor in diverse microbial metabolisms and it is considered the energetic currency exchanged within microbial communities in anaerobic environments. Hydrogen is also the major actor in the transition to alternative low-carbon energy sources, primarily due to its dual role as energy source and energy carrier and to the production of water as a byproduct of its combustion. The storage of hydrogen gas produced from diverse sources in geological reservoirs, known also as Underground Hydrogen Storage (UHS), is a key prerequisite to decouple production from utilization. UHS targets include depleted natural gas reservoirs, salt caverns and deep aquifers. When hydrogen is stored underground, the microbial communities present in situ can interact with it, consuming it as electron donor, potentially producing undesired metabolic byproducts capable of affecting the success of UHS operations. Additionally, subsurface microbial communities might impact the geological production, migration and accumulation of hydrogen in natural reservoirs. Here, we review the current state of knowledge in hydrogenotrophic metabolisms capable of affecting UHS operations and natural hydrogen prospecting, and discuss how the microbiology of natural hydrogen-rich springs can be used as analog to model the state space of hydrogen operations. We discuss our current knowledge of the limits of life in the context of hydrogen economy, and the complex trophic network that hydrogen might sustain in the subsurface. While energy demands increase globally, the ability to effectively operate geological hydrogen storage and identify natural hydrogen deposits will become a key prerequisite to reduce the global carbon footprint. Understanding the potential for microbes to interact with hydrogen in the subsurface is therefore at the forefront of the ecological transition.

Hydrogenotrophic metabolisms in the subsurface and their implications for underground hydrogen storage and natural hydrogen prospecting / Cascone, M., Gargallo, G.C., Migliaccio, F., Corso, D., Tonietti, L., Cordone, A., Pietrini, I., Franchi, E., Carpani, G., Di Benedetto, A., Luciani, G., Anzelmo, G., Giovannelli, A., Iacopini, D., Parente, M., Edlmann, K., Moracci, M., Giovannelli, D.. - In: EARTH-SCIENCE REVIEWS. - ISSN 0012-8252. - 281:(2026), pp. 1-27. [10.1016/j.earscirev.2026.105620]

Hydrogenotrophic metabolisms in the subsurface and their implications for underground hydrogen storage and natural hydrogen prospecting

Cascone M.;Migliaccio F.;Corso D.;Tonietti L.;Cordone A.;Pietrini I.;di Benedetto A.;Luciani G.;Anzelmo G.;Iacopini D.;Parente M.;Moracci M.;Giovannelli D.
2026

Abstract

Hydrogen (H2) is a fundamental electron donor in diverse microbial metabolisms and it is considered the energetic currency exchanged within microbial communities in anaerobic environments. Hydrogen is also the major actor in the transition to alternative low-carbon energy sources, primarily due to its dual role as energy source and energy carrier and to the production of water as a byproduct of its combustion. The storage of hydrogen gas produced from diverse sources in geological reservoirs, known also as Underground Hydrogen Storage (UHS), is a key prerequisite to decouple production from utilization. UHS targets include depleted natural gas reservoirs, salt caverns and deep aquifers. When hydrogen is stored underground, the microbial communities present in situ can interact with it, consuming it as electron donor, potentially producing undesired metabolic byproducts capable of affecting the success of UHS operations. Additionally, subsurface microbial communities might impact the geological production, migration and accumulation of hydrogen in natural reservoirs. Here, we review the current state of knowledge in hydrogenotrophic metabolisms capable of affecting UHS operations and natural hydrogen prospecting, and discuss how the microbiology of natural hydrogen-rich springs can be used as analog to model the state space of hydrogen operations. We discuss our current knowledge of the limits of life in the context of hydrogen economy, and the complex trophic network that hydrogen might sustain in the subsurface. While energy demands increase globally, the ability to effectively operate geological hydrogen storage and identify natural hydrogen deposits will become a key prerequisite to reduce the global carbon footprint. Understanding the potential for microbes to interact with hydrogen in the subsurface is therefore at the forefront of the ecological transition.
2026
Hydrogenotrophic metabolisms in the subsurface and their implications for underground hydrogen storage and natural hydrogen prospecting / Cascone, M., Gargallo, G.C., Migliaccio, F., Corso, D., Tonietti, L., Cordone, A., Pietrini, I., Franchi, E., Carpani, G., Di Benedetto, A., Luciani, G., Anzelmo, G., Giovannelli, A., Iacopini, D., Parente, M., Edlmann, K., Moracci, M., Giovannelli, D.. - In: EARTH-SCIENCE REVIEWS. - ISSN 0012-8252. - 281:(2026), pp. 1-27. [10.1016/j.earscirev.2026.105620]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/1063574
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