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May 10, 2026Agronomy1 citationsOpen Access

Biological Nitrogen Fixation in Soybean: Mechanisms, Benefits, Sustainability, and Future Prospects

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MPManish PanditSPSurekha PanthiACAnuj Chiluwal

Key Points

  • The aim is to synthesize knowledge on the mechanisms and benefits of biological nitrogen fixation in soybean for improved sustainability.
  • Review of current literature on biological nitrogen fixation mechanisms in soybean.
  • Analysis of strategies for managing the nitrogen gap in high-yielding systems.
  • Discussion of advancements in microbial technologies and breeding for improved BNF.
  • Biological nitrogen fixation contributes significantly to soybean nitrogen uptake, but high-demand systems sometimes face an 'N gap'.
  • Inoculation strategies can partially mitigate nitrogen deficiencies in soybean crops.
  • Advancements in breeding and microbial technologies show promise for improving BNF efficiency and sustainability.

Abstract

Soybean is a globally important legume crop which fulfills most of its nitrogen (N) requirement through Biological Nitrogen Fixation (BNF) in symbiosis with Bradyrhizobium species, thereby reducing dependence on synthetic fertilizers and supporting more sustainable production systems. This review synthesizes current knowledge on the mechanism, capacity, and regulation of BNF in soybean, including nodule formation, nitrogenase activity and response to soil and environmental conditions. The evidence shows that BNF can provide a substantial share of the crop’s N uptake, although high-yielding systems frequently experience the “N gap”, which is a difference between a higher crop demand and a lower N supplied from BNF and existing soil reserves. This can be partially managed with strategies like inoculation, co-inoculation, re-inoculation or judicial application of N. This review further highlights the advances in microbial inoculant technologies, plant growth-promoting rhizobacteria (PGPR), soybean breeding and genetic engineering aimed at improving BNF stability, efficiency and capacity across different soil environments. Overall, the maximization of soybean BNF has strong potential to reduce synthetic fertilizer use, improve yield and seed quality, and enhance the economic and environmental sustainability of soybean-based systems.

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Cite This Study

Pandit et al. (2026) studied this question.

synapsesocial.com/papers/6a0021e6c8f74e3340f9ccb0https://doi.org/10.3390/agronomy16100946
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