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May 19, 2026Soil Biology and Biochemistry0 citationsOpen Access

Plant, mycorrhizal and saprotrophic fungal contributions to soil organic matter fractions differ between tree-mycorrhizal types

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VVVeronica VasilicaCGClaudia GuidiKAKhatab Abdalla

Key Points

  • This research aims to understand how tree-mycorrhizal types influence the contributions of plants and fungi to soil organic matter.
  • Utilized a Bayesian mixing model with stable isotope data to assess contributions to SOM fractions.
  • Examined contributions of plant, saprotrophic fungi, and mycorrhizal fungi under varying tree dominance.
  • Analyzed amino sugar biomarkers to differentiate bacterial and fungal contributions.
  • In ectomycorrhizal stands, particulate organic matter was primarily from plants (76%) while in arbuscular mycorrhizal stands it was 59%.
  • Mycorrhizal fungi contributed most to mineral-associated organic matter in ectomycorrhizal stands (58%), whereas saprotrophic residues predominated in arbuscular mycorrhizal stands (55%).
  • Nitrogen deposition led to a slight increase in microbial contributions in arbuscular mycorrhizal stands, indicating enhanced soil organic matter turnover.

Abstract

Determining the biotic factors most responsible for the formation and stability of soil organic matter (SOM) is critical for understanding soil carbon storage in the wake of shifts in forest composition. We investigated the relative contributions of plant and microbial residues to SOM fractions in temperate forest stands dominated by arbuscular or ectomycorrhizal trees, and exposed to simulated N deposition. Using a Bayesian mixing model informed by stable isotope data, we partitioned contributions of plants, saprotrophic fungi and mycorrhizal fungi to particulate and mineral-associated organic matter fractions under contrasting tree-mycorrhizal dominance. Additionally, we explored bacterial and fungal contributions to both fractions using amino sugar biomarkers extracted from the same soils. Overall, ectomycorrhizal-dominated stands differed from arbuscular mycorrhizal-dominated stands in their particulate and mineral-associated organic matter distributions and sources. Carbon and nitrogen isotope analysis revealed that particulate organic matter was dominated by plant residues in both ectomycorrhizal (76%) and arbuscular mycorrhizal stands (59%), with greater plant contributions occurring in topsoil (0-15 cm) relative to subsoil (15-30 cm). In contrast, mineral-associated organic matter was dominated by fungal residues, with mycorrhizal residues contributing most in ectomycorrhizal stands (58%) and saprotrophic residues in arbuscular mycorrhizal stands (55%). Amino sugar analyses showed that contributions of fungi exceeded those of bacteria by several-fold in both SOM fractions. Under nitrogen deposition, microbial contributions slightly increased in arbuscular mycorrhizal stands, suggesting enhanced SOM turnover, whereas plant inputs increased in the particulate fraction in ectomycorrhizal stands. Collectively, our results highlight the key influence of tree-mycorrhizal dominance on the distribution and composition of SOM fractions, with consequences for soil carbon storage in temperate forests.

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Cite This Study

Vasilica et al. (2026) studied this question.

synapsesocial.com/papers/6a0bfdc7166b51b53d379146https://doi.org/10.1016/j.soilbio.2026.110202
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