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Article

Bacillus subtilis Biofertilizer Mitigates N2O Emissions from Saline-Alkali Farmland

1
BGRIMM Technology Group, Institute Environment Engineering, Beijing 100160, China
2
Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China
3
University of Chinese Academy of Sciences, Beijing 100049, China
*
Authors to whom correspondence should be addressed.
Life 2026, 16(4), 635; https://doi.org/10.3390/life16040635
Submission received: 11 February 2026 / Revised: 31 March 2026 / Accepted: 3 April 2026 / Published: 9 April 2026
(This article belongs to the Special Issue Advances in the Structure and Function of Microbial Communities)

Abstract

Nitrous oxide (N2O) emissions from agricultural soils are an important source of greenhouse gases and are strongly influenced by fertilization practices. In this study, a field experiment was conducted from 24 June to 12 October 2024, at a saline-alkali farmland site in Binzhou, Shandong Province, China, to evaluate the effect of Bacillus subtilis biofertilizer on N2O emissions and to explore the underlying mechanisms. Compared with conventional chemical fertilization, the Bacillus subtilis biofertilizer treatment reduced the cumulative N2O emission flux by 39%. At the N2O emission peak, the emission flux under the biofertilizer treatment was 40.7%, 18.2% lower than that under the CF and CBF treatments, respectively. Functional gene analysis further showed that at the N2O emission peak, the biofertilizer treatment reduced the copy number of Bacterial-amoA by 94% and 83% relative to CF and CBF, respectively, while the hao gene abundance in the CF treatment was 7.67, 24 times higher than that in the BF and CBF treatments, indicating that the reduction in N2O emissions was closely associated with suppression of the nitrification process. In addition, the biofertilizer treatment showed the highest plant nitrogen uptake. All fertilization treatments significantly increased crop yield compared with the control, whereas there was no significant difference in yield among BF, CF, and CBF treatments (p > 0.05). These findings indicate that B. subtilis biofertilizer can mitigate N2O emissions from saline-alkali farmland without reducing crop yield and may represent a promising strategy for sustainable agricultural management.
Keywords: nitrogen cycling; soil microbial community; functional gene; nitrification; saline-alkali soil; N2O mitigation nitrogen cycling; soil microbial community; functional gene; nitrification; saline-alkali soil; N2O mitigation

Share and Cite

MDPI and ACS Style

Li, R.; Lin, X.; Miao, Y.; Zhang, C.; Li, F.; Zhang, G.; Sun, Q.; Hua, T.; Wang, J. Bacillus subtilis Biofertilizer Mitigates N2O Emissions from Saline-Alkali Farmland. Life 2026, 16, 635. https://doi.org/10.3390/life16040635

AMA Style

Li R, Lin X, Miao Y, Zhang C, Li F, Zhang G, Sun Q, Hua T, Wang J. Bacillus subtilis Biofertilizer Mitigates N2O Emissions from Saline-Alkali Farmland. Life. 2026; 16(4):635. https://doi.org/10.3390/life16040635

Chicago/Turabian Style

Li, Rui, Xingjie Lin, Yu Miao, Chi Zhang, Fangze Li, Ge Zhang, Qiwei Sun, Tianci Hua, and Jiachen Wang. 2026. "Bacillus subtilis Biofertilizer Mitigates N2O Emissions from Saline-Alkali Farmland" Life 16, no. 4: 635. https://doi.org/10.3390/life16040635

APA Style

Li, R., Lin, X., Miao, Y., Zhang, C., Li, F., Zhang, G., Sun, Q., Hua, T., & Wang, J. (2026). Bacillus subtilis Biofertilizer Mitigates N2O Emissions from Saline-Alkali Farmland. Life, 16(4), 635. https://doi.org/10.3390/life16040635

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