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April 18, 2026Frontiers in Plant Science0 citationsOpen Access

Synergistic effects of biochar and microbial inoculants on rice productivity and soil fertility are mediated by a nitrogen-dependent microbial pathway

QZQiang ZhangMGMengxuan GuGLGexing Li

Key Points

  • This research aims to explore how combining biochar and microbial inoculants affects rice productivity and soil fertility under reduced nitrogen application.
  • Conducted pot and field experiments with rice cultivar Nanjing 9108
  • Applied four treatments: conventional nitrogen and three levels of biochar and microbial inoculants with reduced nitrogen
  • Performed 16S rRNA gene sequencing to analyze microbial communities
  • Used structural equation modeling to identify drivers of yield enhancement.
  • N100 and N80 treatments increased rice yield by 10.4-11.7% and 4.1-4.9%, respectively
  • Improved Nitrogen Partial Factor Productivity (NPFP) by 7.8-11.7% for N100 and 28.6-30.0% for N80
  • N60 treatment led to a decrease in yield by 3.9-4.6%
  • Microbial diversity was enriched in N100 and N80, enhancing soil nutrient availability
  • 40% N reduction led to a decline in microbial function and lower soil nutrient availability.

Abstract

Excessive nitrogen (N) fertilizer application threatens soil health and sustainable rice production. We hypothesized that the combined application of biochar and microbial inoculants (B+M) could maintain rice yield under reduced N input through microbiome-mediated mechanisms, and that this effect may depend on an N threshold. To test this hypothesis, pot and field experiments were conducted using the rice cultivar Nanjing 9108 with four treatments: conventional N (CK), and three B+M treatments with 20% N reduction (N80), 40% N reduction (N60), and 0% N reduction (N100). The results indicated that compared to CK, the N100 and N80 treatments increased rice yield by 10.4-11.7% and 4.1-4.9%, and improved Nitrogen Partial Factor Productivity (NPFP) by 7.8-11.7% and 28.6-30.0%, respectively. In contrast, the N60 reduced yield by 3.9-4.6%. In pot experiments, 16S rRNA gene sequencing revealed that N100 and N80 enriched bacterial phyla (e.g., Proteobacteria, Actinobacteria, Chloroflexi, and Bacteroidota) and enhanced microbial functional genes linked to metabolism, genetic information processing, cellular processes, and environmental information processing, thereby increasing soil nutrient availability. Structural equation modeling demonstrated that the soil bacterial community was the fundamental driver of yield enhancement (model fit: χ²/df = 1.13, RMSEA = 0.042, CFI = 0.961). However, under 40% N reduction, the abundance of key phyla declined and microbial functional potential weakened, leading to reduced soil nutrient availability and yield. These findings reveal an N dependent microbial-mediated pathway governing the synergistic effects of biochar and microbial inoculants, identifying 20% N reduction with B+M as an optimal strategy for sustainable rice intensification.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69e31ec840886becb653e697https://doi.org/10.3389/fpls.2026.1804182
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