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February 19, 2026PeerJ2 citationsOpen Access

The soil depth determines soil multifunctionality via shaping the soil properties and microbial diversity

XLXiaoxia LiangYZYulin ZhaoYSYanhua Song

Key Points

  • This research examines how soil depth affects soil multifunctionality through microbial diversity and soil properties.
  • Analyzed soil properties and microbial communities across depths of 0–80 cm in natural soil profiles.
  • Utilized high-throughput sequencing to assess microbial diversity.
  • Measured parameters including pH and soil water content (SWC).
  • Soil multifunctionality and microbial diversity decreased significantly with increasing soil depth.
  • Soil properties predicted 47.24%–63.75% of the variance in soil multifunctionality.
  • Microbial diversity was a stronger predictor of soil multifunctionality than network complexity, explaining 26.09–44.56% of its variation.
  • Bacterial diversity showed a positive correlation with soil nutrient, carbon, and nitrogen multifunctionality.

Abstract

Background Soil microorganisms drive subsurface ecological processes and are shaped by soil properties, which in turn influence biogeochemical cycling. Although the link between biodiversity and soil multifunctionality (SMF) has received widespread attention, the relative roles of soil properties and microbial community structure in regulating SMF remain unclear. Methods Here, we investigated SMF and microbial communities in the humus layer and across the 0–80 cm depth of natural soil profiles in a subalpine grassland using high-throughput sequencing. Results Our findings revealed that SMF, microbial diversity and network complexity decreased significantly with soil depth. Microbial community structure was primarily determined by pH and soil water content (SWC). Soil properties were the primary drivers of SMF, predicting 47.24%–63.75% of its variance. Microbial diversity was a stronger predictor of SMF than network complexity, explaining 26.09–44.56% of its variation. Bacterial diversity was significantly positively correlated with soil nutrient, carbon and nitrogen multifunctionality, while fungal diversity was not significantly correlated with them. This finding provides critical data support for elucidating the relationship between biodiversity and ecosystem functioning.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/6996a7b5ecb39a600b3ed963https://doi.org/10.7717/peerj.20734
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