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Natural variation in BRN1 enhances nitrogen sensitivity to improve rice nitrogen use efficiency.

Abstract

Green Revolution rice varieties deliver high yields but require excessive nitrogen (N) fertilizer and show diminished N responsiveness, severely reducing nitrogen-use efficiency (NUE). To dissect the molecular basis of low N sensitivity in modern cultivars, we conducted a genome-wide association study (GWAS) for biomass response to N (BRN), a trait tightly linked to N sensitivity, using a diverse rice germplasm panel. We identified BRN1 as a key regulator of N-dependent biomass accumulation that regulates NLP3, a master transcription factor governing nitrate signaling. Under elevated N supply, the strigolactone signaling repressor D53 accumulates substantially and interacts with BRN1 to repress NLP3 transcription, thereby reducing rice N response. Notably, the high-response BRN1H allele encodes a more stable protein that alleviates D53-mediated suppression. Introgression of this allele into modern cultivars significantly enhanced N sensitivity and grain yield under both low and high N conditions. Our findings establish a D53-BRN1-NLP3 regulatory module controlling rice NUE, providing a target for rice breeding to sustain high productivity with improved resource sustainability.

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Huwei Sun, Yake Chen, Yibo Hu, Hanyun Wang, Wenjun Zhu, Yuqing Liu, Ningning Ren, Bin Hu, Chengcai Chu. 2026-08-11. Natural variation in BRN1 enhances nitrogen sensitivity to improve rice nitrogen use efficiency.. https://doi.org/10.1038/s41467-026-76279-9

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