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February 8, 2026Frontiers in Microbiology0 citationsOpen Access

Enhancing soil fertility in urban green spaces via cellulolytic microbial-organic synergies

ZXZhaofeng XuShanghai Normal UniversityJDJiawei DaiShanghai Normal UniversityNYNing YangShanghai Normal University

Key Points

  • The aim is to evaluate the effectiveness of combining Bacillus cereus B9 with vermicompost in improving nutrient cycling and soil quality in urban green spaces.
  • Conducted a pot experiment with four treatments: control (CK), B9, vermicompost (V), and their combination (VB9).
  • Assessed litter decomposition, cellulase activity, and nutrient availability across treatments.
  • Utilized genome sequencing to identify cellulase genes in B9 and enzyme assays to confirm its activity.
  • Monitored bacterial taxa related to cellulose degradation and soil nutrient dynamics.
  • VB9 treatment significantly enhanced litter decomposition and cellulase activity compared to controls.
  • Genome sequencing revealed B9 possesses key cellulase genes important for breaking down cellulose.
  • Co-application of B9 and vermicompost enriched beneficial bacteria, improving nitrogen availability in the soil.
  • Non-targeted metabolomics showed increased nitrogen and carbon metabolic activity in VB9 treatments.

Abstract

Urban green spaces (UGSs) are essential for ecological functioning, yet their soils often suffer from limited nutrient cycling due to the slow decomposition of plant litter. While cellulolytic bacteria can promote litter breakdown by enhancing cellulose degradation, their effectiveness in urban soils remains limited. In this study, we examined whether combining Bacillus cereus B9, a cellulolytic strain, with vermicompost could improve litter decomposition and soil quality in UGS soils. A pot experiment was conducted with four treatments: control (CK), B9 alone (B9), vermicompost alone (V), and their combination (VB9). Results showed that the VB9 treatment significantly enhanced litter decomposition, cellulase activity, and nutrient availability compared to either treatment alone. Genome sequencing revealed that B9 carries key cellulase genes, including those encoding endoglucanase and β -glucosidase. Enzyme assays confirmed its cellulolytic activity. Co-application also enriched bacterial taxa associated with cellulose degradation, whose abundance was positively correlated with increased soil ammonium and alkali-hydrolyzable nitrogen. B9 likely contributed to ammonium accumulation via the dissimilatory nitrate reduction to ammonium (DNRA) pathway. Non-targeted metabolomics further indicated enhanced nitrogen and carbon metabolic activity in VB9 soils. These findings support the synergistic effect of microbial inoculants and organic amendments in improving organic matter turnover and nutrient cycling in urban soils. Further research is needed to assess this strategy’s long-term efficacy and ecological impact under field conditions.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/698828990fc35cd7a884843dhttps://doi.org/10.3389/fmicb.2026.1711396
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