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February 25, 2026BMC Plant Biology0 citationsOpen Access

Mechanistic synergy of biochar, phosphate-solubilizing microbes and MgO nanoparticle enhances phosphorus availability, soil fertility, and crop resilience in phosphorus-fixing soils (Oxisols)

QLQuanheng LiKXKequan XuYNYongqiang Ning

Key Points

  • The study aims to evaluate the effectiveness of an integrated amendment using biochar, phosphate-solubilizing microbes, and MgO nanoparticles to enhance phosphorus availability and crop performance in P-fixing soils.
  • Conducted a greenhouse pot experiment in a P-fixing acidic soil (Oxisol)
  • Tested seven different treatments, including control and various combinations of amendments
  • Monitored growth, yield, and phosphorus uptake of maize (Zea mays L.)
  • Analyzed soil samples for pH, available phosphorus, microbial biomass carbon, and enzyme activities
  • The integrated BMN treatment significantly increased soil available phosphorus by 128% compared to Control
  • BMN treatment resulted in a 125% increase in plant biomass and a 98% increase in grain yield over Control
  • Soil microbial biomass carbon increased by 110% and acid phosphatase activity by 90% compared to Control
  • Individual amendments showed modest, non-significant effects on most parameters

Abstract

Phosphorus (P) fixation in acidic and alkaline soils is a major global constraint to agricultural productivity, leading to inefficient fertilizer use and environmental pollution. Singular amendment strategies often provide limited success. This study investigates the potential of an integrated soil amendment comprising biochar, phosphate-solubilizing microbes (PSMs), and magnesium oxide nanoparticles (MgO-NPs) to mitigate P fixation and enhance crop performance. A greenhouse pot experiment was conducted using a P-fixing acidic soil (Oxisol). The experimental design included seven treatments: (1) Control; (2) Recommended NPK (R-NPK), (3) Biochar (B), (4) PSMs (M), (5) MgO-NPs (N), (6) Biochar + PSMs (BM), and (7) Biochar + PSMs + MgO-NPs (BMN). The growth, yield, and P uptake of maize (Zea mays L.) were monitored. Soil samples were analyzed for pH, available P, microbial biomass carbon (MBC), and enzyme activities (acid phosphatase, dehydrogenase). The integrated BMN treatment outperformed all others. It significantly increased soil available P by 128% and 65% compared to the Control and R-NPK treatments, respectively. This was concomitant with a shift in soil pH towards neutrality, a 90% increase in acid phosphatase activity, and a 110% increase in MBC over the Control. Plant parameters mirrored these soil improvements: the BMN treatment resulted in the highest plant biomass (125% increase over Control), grain yield (98% increase over Control), and P uptake (155% increase over Control). The BM combination showed intermediate results, while individual amendments had modest, non-significant effects on most parameters. The integration of biochar, PSMs, and MgO-NPs creates a synergistic system that effectively disrupts P fixation. It is concluded that biochar provides a stable habitat for microbes, MgO-NPs directly react with fixed P pools, and PSMs enzymatically mobilize P.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/699e9152f5123be5ed04eb93https://doi.org/10.1186/s12870-026-08412-1
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