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March 6, 2026Microorganisms0 citationsOpen Access

Effects of Microbial Inoculants on Carbon, Nitrogen, and Phosphorus Stoichiometry of Soil Aggregates

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RXRengui XueNanjing Forestry UniversityCLChong LiUniversity of AlbertaXLXin LiuNanjing Forestry University

Key Points

  • This research aims to investigate how microbial inoculants affect nutrient cycling in soil aggregates over time and plant conditions.
  • Conducted 1-year and 3-year pot experiments with Bacillus thuringiensis and Gongronella butleri.
  • Evaluated aggregate size distribution, mean weight diameter, soil nutrients, microbial biomass, and enzyme activities.
  • Tested conditions with and without plants to assess microbial effects.
  • Under 3-year plant-present conditions, NL-11 and NL-15 increased macroaggregate proportions and stability.
  • NL-15 enhanced organic carbon and total nitrogen by 55–59% in macro- and meso-aggregates without plants.
  • In 1-year no-plant macroaggregates, NL-11 increased microbial biomass phosphorus and reduced C/P and N/P ratios.
  • Both inoculants boosted invertase activity and plant presence increased acid phosphatase activity.

Abstract

Functional microbial inoculation is widely applied in soil restoration; however, its effects on aggregate-scale nutrient cycling remain unclear. Based on ecological stoichiometry theory, we conducted 1-year and 3-year pot experiments using Bacillus thuringiensis (NL-11) and Gongronella butleri (NL-15) under plant-present and plant-absent conditions, with only NL-11 applied in the 1-year experiment. Aggregate size distribution, mean weight diameter (MWD), soil nutrients, microbial biomass, and enzyme activities were evaluated across aggregate classes. The results demonstrated that microbial effects were dependent on both time and plant presence. Under 3-year plant-present conditions, NL-11 and NL-15 significantly increased macroaggregate proportions and MWD, thereby enhancing aggregate stability. Under 3-year no-plant conditions, NL-15 increased organic carbon and total nitrogen in macro- and meso-aggregates by 55–59% and elevated soil C/P and N/P ratios, whereas NL-11 primarily enhanced total nitrogen. In 1-year no-plant macroaggregates, NL-11 increased microbial biomass phosphorus and reduced microbial biomass C/P and N/P ratios. Both inoculants enhanced invertase activity under plant-absent conditions, whereas plant presence stimulated acid phosphatase activity, with NAG activity increasing only under NL-15. Overall, microbial inoculation altered nutrient availability and microbial metabolic characteristics, promoted coordinated C–N–P stoichiometry, and facilitated the recovery of aggregate-scale nutrient cycling.

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Cite This Study

Xue et al. (2026) studied this question.

synapsesocial.com/papers/69aa70e7531e4c4a9ff5b29ehttps://doi.org/10.3390/microorganisms14030583
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