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April 10, 2026npj Biofilms and Microbiomes0 citationsOpen Access

Biofilms reshape soil-water dynamics with enhanced vapor adsorption and hysteresis reversal under dry conditions

HHHuan HuCCChong ChenYLYili Lu

Key Points

  • The study aims to understand how bacterial biofilms affect water vapor transport and soil-water dynamics during drought conditions.
  • Systematic investigation of soil water vapor sorption dynamics across various matric potentials.
  • Utilization of soils with different textures inoculated with wild-type and mutant strains of Pseudomonas putida and Bacillus subtilis.
  • Characterization of soil water vapor sorption isotherms and analysis of biofilm properties.
  • Biofilms enhanced soil water vapor sorption capacity by 10-49% across different soils.
  • Hysteresis reversal occurred at critical water activity values, with biofilm-mediated adsorption surpassing desorption.
  • Active biofilms persisted in dry soils, altering water vapor dynamics through mechanisms related to EPS hydration.

Abstract

Bacterial biofilms are crucial for microbial survival during drought by modifying soil-water dynamics. Their influence on water vapor transport in dry soils remains unexplored. This study systematically investigates biofilm-mediated changes in soil water vapor sorption (SWVS) dynamics across a wide matric potential range (-400 MPa to -10 MPa). Using soils of varying textures inoculated with wild-type and mutant strains of Pseudomonas putida and Bacillus subtilis, we characterized SWVS isotherms and concomitant changes in soil and biofilm properties. Key findings reveal that active cells and biofilms persist in dry soils (water activity aw w < 0.6), where biofilm-dominated adsorption exceeds particle surface desorption. Mechanistic analysis demonstrates that EPS components influence SWVS through functional groups (-COOH and -OH) with strong water-binding affinity, EPS swelling, and suppression of cation/surface hydration, which physically obscures localized mineral surfaces. A conceptual framework for vapor dynamics in biofilm-colonized soils is proposed, and such results address a gap in understanding biological controls on soil hydrology under drought.

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Cite This Study

Hu et al. (2026) studied this question.

synapsesocial.com/papers/69d892886c1944d70ce03e6bhttps://doi.org/10.1038/s41522-026-00984-y
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