Experimental evidence of a biological soil crust degradation climate warming amplification feedback

Biological soil crusts – photosynthetic communities of cyanobacteria, lichens, and/or mosses living on soil surfaces – represent about 12% of the global land surface, yet their role in climate mitigation remains uncertain. Here we address this knowledge gap by integrating multiscale remote sensing techniques within a unique long-term climate manipulation experiment. Two decades of in situ climate warming and changes in monsoonal rainfall drove a major shift in biocrust community composition, including a ~ 27% decrease in fractional coverage of late-successional mosses and a ~ 36% increase in fractional cover of early-successional, lightly-pigmented cyanobacteria. This community shift, in-turn, resulted in a ~ 6.3% reduction in photosynthetic potential, ~14.1% increase in surface brightness, ~15.2% decrease in surface moisture, and a ~ 1.5% or ~0.3 °C increase in surface temperature under clear sky daytime conditions for every 10% increase in the relative cover of lightly-pigmented cyanobacteria. Our findings are evidence of a biocrust degradation climate warming amplification feedback, whereby climate warming drives biocrust functional degradation and a net reduction in climate mitigation potential, which further drives warming. This apparent warming amplification feedback is currently missing from process-based models, and thus current climate projections might underestimate the rate of climate warming across global drylands. Climate warming and changes in monsoonal rainfall resulted in a biocrust community composition shift from late-successional mosses to early-successional, lightly pigmented cyanobacteria , resulting in a substantial reduction in photosynthetic potential and net increase in local surface temperatures, based on remote sensing with a long-term dryland experiment in Castle Valley, Utah, USA.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-09-12
DOI
https://doi.org/10.1038/s43247-026-03874-5
Primary Topic
Biocrusts and Microbial Ecology
Type
article
Field-Weighted Citation Impact
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article

Experimental evidence of a biological soil crust degradation climate warming amplification feedback

Stefanie Herrmann, Mostafa Javadian, Victoria Scholl, Sasha C. Reed et al.
Communications Earth & Environment
Biocrusts and Microbial Ecology
article

Experimental evidence of a biological soil crust degradation climate warming amplification feedback

Stefanie Herrmann, Mostafa Javadian, Victoria Scholl, Sasha C. Reed, Fangyue Zhang, Benjamin Poulter, Fujiang Ji, William K. Smith, Matthew A. Burgess, Cara Lauria, Miguel L. Villarreal, Armin Howell, Raymond Kokaly, Willliam A. Rutherford
article en

Abstract

Biological soil crusts – photosynthetic communities of cyanobacteria, lichens, and/or mosses living on soil surfaces – represent about 12% of the global land surface, yet their role in climate mitigation remains uncertain. Here we address this knowledge gap by integrating multiscale remote sensing techniques within a unique long-term climate manipulation experiment. Two decades of in situ climate warming and changes in monsoonal rainfall drove a major shift in biocrust community composition, including a ~ 27% decrease in fractional coverage of late-successional mosses and a ~ 36% increase in fractional cover of early-successional, lightly-pigmented cyanobacteria. This community shift, in-turn, resulted in a ~ 6.3% reduction in photosynthetic potential, ~14.1% increase in surface brightness, ~15.2% decrease in surface moisture, and a ~ 1.5% or ~0.3 °C increase in surface temperature under clear sky daytime conditions for every 10% increase in the relative cover of lightly-pigmented cyanobacteria. Our findings are evidence of a biocrust degradation climate warming amplification feedback, whereby climate warming drives biocrust functional degradation and a net reduction in climate mitigation potential, which further drives warming. This apparent warming amplification feedback is currently missing from process-based models, and thus current climate projections might underestimate the rate of climate warming across global drylands. Climate warming and changes in monsoonal rainfall resulted in a biocrust community composition shift from late-successional mosses to early-successional, lightly pigmented cyanobacteria , resulting in a substantial reduction in photosynthetic potential and net increase in local surface temperatures, based on remote sensing with a long-term dryland experiment in Castle Valley, Utah, USA.

Communications Earth & Environment
United States Geological Survey (US), Bureau of Land Management (US), United States Department of the Interior (US), Climate Central (US), University of Arizona (US), Western Geographic Science Center, Southwest Biological Science Center
National Aeronautics and Space Administration, U.S. Geological Survey
Climate action
Openalex Percentile: Top 7%
Biocrusts and Microbial Ecology
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