open access publication

Article, 2024

Microbial impact on initial soil formation in arid and semiarid environments under simulated climate change

Frontiers in Microbiology, ISSN 1664-302X, Volume 15, Page 1319997, 10.3389/fmicb.2024.1319997

Contributors

Rodríguez, Victoria (Corresponding author) [1] Bartholomäus, Alexander 0000-0003-0970-7304 [1] Witzgall, Kristina 0000-0003-1366-9056 [2] Riveras-Muñoz, Nicolás 0000-0001-6096-3464 [3] Oses, Rómulo 0000-0003-2310-3339 [4] Liebner, Susanne 0000-0002-9389-7093 [1] [5] Kallmeyer, Jens 0000-0002-6440-1140 [1] Rach, Oliver 0000-0003-3547-2182 [1] Mueller, Carsten Werner 0000-0003-4119-0544 [6] [7] Seguel, Oscar Seguel 0000-0001-7040-3604 [8] Scholten, Thomas 0000-0002-4875-2602 [3] Wagner, Dirk 0000-0001-5064-497X [1] [5]

Affiliations

  1. [1] Helmholtz Centre Potsdam - GFZ German Research Centre for Geosciences
  2. [NORA names: Germany; Europe, EU; OECD];
  3. [2] Technical University of Munich
  4. [NORA names: Germany; Europe, EU; OECD];
  5. [3] University of Tübingen
  6. [NORA names: Germany; Europe, EU; OECD];
  7. [4] University of Atacama
  8. [NORA names: Chile; America, South; OECD];
  9. [5] University of Potsdam
  10. [NORA names: Germany; Europe, EU; OECD];

Abstract

The microbiota is attributed to be important for initial soil formation under extreme climate conditions, but experimental evidence for its relevance is scarce. To fill this gap, we investigated the impact of in situ microbial communities and their interrelationship with biocrust and plants compared to abiotic controls on soil formation in initial arid and semiarid soils. Additionally, we assessed the response of bacterial communities to climate change. Topsoil and subsoil samples from arid and semiarid sites in the Chilean Coastal Cordillera were incubated for 16 weeks under diurnal temperature and moisture variations to simulate humid climate conditions as part of a climate change scenario. Our findings indicate that microorganism-plant interaction intensified aggregate formation and stabilized soil structure, facilitating initial soil formation. Interestingly, microorganisms alone or in conjunction with biocrust showed no discernible patterns compared to abiotic controls, potentially due to water-masking effects. Arid soils displayed reduced bacterial diversity and developed a new community structure dominated by Proteobacteria, Actinobacteriota, and Planctomycetota, while semiarid soils maintained a consistently dominant community of Acidobacteriota and Proteobacteria. This highlighted a sensitive and specialized bacterial community in arid soils, while semiarid soils exhibited a more complex and stable community. We conclude that microorganism-plant interaction has measurable impacts on initial soil formation in arid and semiarid regions on short time scales under climate change. Additionally, we propose that soil and climate legacies are decisive for the present soil microbial community structure and interactions, future soil development, and microbial responses.

Keywords

Chilean, Chilean Coastal Cordillera, Coastal Cordillera, Cordillera, abiotic controls, aggregate formation, aggregation, arid soils, bacterial communities, bacterial diversity, biocrusts, change scenarios, changes, climate, climate change, climate change scenarios, climate legacies, climatic conditions, community, community structure, conditions, conjunction, control, development, diurnal temperature, diversity, dominant communities, effect, environment, evidence, experimental evidence, findings, formation, gap, humid climatic conditions, impact, interaction, interrelationships, legacy, microbial communities, microbial community structure, microbial impact, microbial responses, microbiota, microorganism-plant interactions, microorganisms, moisture, moisture variations, patterns, plants, reduced bacterial diversity, region, relevance, response, response of bacterial communities, samples, scale, scenarios, semiarid environments, semiarid regions, semiarid site, semiarid soils, short time scales, simulated climate change, sites, soil, soil development, soil formation, soil microbial community structure, soil structure, specialized bacterial community, stabilize soil structure, stable communities, structure, subsoil, subsoil samples, temperature, time scales, topsoil, variation, weeks

Funders

  • Deutsche Forschungsgemeinschaft
  • National Park Service

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