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Agriculture Ecosystems & Environment· 2026Q1

Moderate grazing enhances soil nutrient cycling in desert grasslands through microbial community assembly at the patch scale

Nan Li, Qin Li, Hu Li, Yingzhong Xie et al.

Short summary

Moderate grazing in desert steppes enhances soil nutrient cycling by altering microbial community assembly at the patch scale, favoring functional specialization and synergy over simple taxonomic richness.

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Key points

  • Moderate grazing in desert steppes alters microbial community assembly at the patch scale over a 10-year period.
  • Light grazing increases bacterial alpha-diversity and predicted carbon/nitrogen turnover.
  • Moderate grazing shifts fungal communities to deterministic assembly and specialist selection, potentially enhancing nitrogen retention.
  • Functional specialization and synergy, not just taxonomic richness, are linked to nutrient cycling potential.

AI-generated from the title and abstract; the full text is not read.

Abstract

Desert steppes are highly sensitive ecosystems, yet how long-term grazing regulates soil microbial assembly and ecological functions at the patch scale remains unclear. Using a 10-year in situ grazing experiment, we investigated microbial communities within native Stipa breviflora patches to evaluate these micro-ecological responses. Bacterial and fungal communities exhibited asynchronous, non-monotonic responses to grazing intensity. Light grazing primarily stimulated bacterial α-diversity and predicted carbon/nitrogen turnover, which was associated with the input of labile resources. In contrast, moderate grazing increased substrate heterogeneity, shifting fungal communities toward stronger deterministic assembly and specialist selection. Furthermore, the microbial network restructured under moderate grazing to favor core functional taxa, potentially promoting nitrogen retention. These patch-scale evaluations reveal a decoupling of microbial diversity and predicted functions, suggesting that functional specialization and synergy are more closely linked to nutrient cycling potential than simple taxonomic richness. This study advances our understanding of grazing ecology by indicating that maintaining patch-scale functional interactions is essential for sustaining soil nutrient cycling in desert steppes under grazing pressure.

The authors' abstract, as published at the source. Agriculture Ecosystems & Environment, 2026 · DOI ↗

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Soil ScienceAgricultural and Biological Sciences