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March 4, 20262 citations

Drought Reduces Formation, but Enhances Persistence, of Mineral-Associated Organic Matter in a Grassland Soil.

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NSNoah W. SokolLawrence Livermore National LaboratoryMFMegan M FoleyNorthern Arizona UniversitySBSteven J BlazewiczLawrence Livermore National Laboratory

Key Points

  • The study aims to understand how drought affects the formation and persistence of mineral-associated organic matter in grassland soils.
  • Conducted a 12-week greenhouse labeling experiment using <sup>13</sup>C-CO<sub>2</sub> to track MAOM formation from plant carbon sources.
  • Monitor living root inputs (rhizodeposits) and decaying root inputs (root detritus) under normal and drought conditions.
  • Measured persistence of <sup>13</sup>C-MAOM using a subsequent assay after the initial 12-week period.
  • Drought reduced the formation of MAOM from living roots due to decreased rhizodeposits and altered microbial growth.
  • Initial drought conditions delayed MAOM formation from root detritus but did not lower total MAOM formation overall.
  • Drought enhanced the persistence of MAOM derived from root detritus, with no significant effect on persistence from rhizodeposits.

Abstract

Drought effects are pervasive in terrestrial ecosystems, yet there is limited understanding of how drought impacts the transformation of plant carbon (C) inputs to mineral-associated organic matter (MAOM)-the largest and slowest-cycling pool of soil organic carbon (SOC). In a 12-week 13C-CO2 greenhouse labeling experiment, we tracked the formation of MAOM derived from the two dominant sources of plant C input to the mineral soil-living root inputs (13C-rhizodeposits) and decaying root inputs (13C-root detritus)-under normal moisture and droughted conditions in a semiarid grassland soil. At the end of the 12-week period, we also measured the persistence of 13C-MAOM formed from rhizodeposits versus root detritus via a subsequent persistence assay. Drought reduced the formation of MAOM derived from living roots by decreasing rhizodeposits, reducing microbial growth rates, and altering the composition of organic matter, lipids, and metabolites. Drought initially delayed the formation of MAOM derived from root detritus by slowing the early stages of root litter decomposition (week 4-8), but did not decrease total MAOM formation by the end of the 12-week period. Notably, drought enhanced the persistence of MAOM derived from root detritus, but did not influence the persistence of MAOM derived from rhizodeposits. Our results provide some of the first direct evidence that drought can reduce the formation of MAOM in a grassland soil, but may enhance its persistence, based on the source of plant input from which MAOM is derived.

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Cite This Study

Sokol et al. (2026) studied this question.

synapsesocial.com/papers/69a7cdaed48f933b5eeda333https://doi.org/10.1111/gcb.70756
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