A single-nucleus atlas of ligular region uncovers brassinosteroid-driven cell fate transitions controlling leaf angle in maize

The ligular region is a critical determinant of leaf angle (LA) and plant architecture in maize, yet its developmental mechanisms remain largely unknown. In this study, we generate a comprehensive single-nucleus RNA-seq atlas of the maize ligular region, spanning from leaf primordium through the preligule band (PLB) to the mature stage. By integrating cellular and transcriptomic analyses, we reveal that brassinosteroid (BR) inhibits cell division in the adaxial division zone while promoting elongation in adaxial hypodermal cells. Consequently, BR treatment leads to ectopic emergence of the auricle and ligule. At early stages, GDSL esterases/lipase genes (GELP2/3/6) act as key regulators of emergence, as their disruption causes both ectopic initiation and impaired outgrowth of the ligule and auricle. At later stages, adaxial hypodermal cells serve as pivotal sites for BR-mediated cell elongation and LA expansion, where the transcription factors LIGULELESS1 (LG1) and BRASSINAZOLE-RESISTANT1 (BZR1) cooperatively drive cell elongation to increase LA. Strikingly, comparative snRNA-seq analyses reveal that variation in adaxial cell elongation and subsequent hypodermal lignification explains LA diversity across inbred lines. Together, our findings elucidate the molecular mechanism of BR-driven cell fate transitions in the ligular region and offer potential targets for breeding high-yield maize varieties with ideal plant architecture. Here the authors integrate single-nucleus transcriptomic and cellular analyse to reveal that brassinosteroid drives cell division, elongation, and subsequent lignification in the ligular region, thereby controlling leaf angle diversity in maize.

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Publication Details

Journal
Nature Communications
Published
2026-09-12
DOI
https://doi.org/10.1038/s41467-026-77393-4
Primary Topic
Plant Molecular Biology Research
Type
article
Field-Weighted Citation Impact
0.00

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article

A single-nucleus atlas of ligular region uncovers brassinosteroid-driven cell fate transitions controlling leaf angle in maize

Qingbiao Shi, Zihao Jiao, Naiqian Li, Chenglai Wu et al.
Nature Communications
Plant Molecular Biology Research
article

A single-nucleus atlas of ligular region uncovers brassinosteroid-driven cell fate transitions controlling leaf angle in maize

Qingbiao Shi, Zihao Jiao, Naiqian Li, Chenglai Wu, Pinghua Li, Bosheng Li, Haiyang Wang, Gang Li, Ying Xia, Zhiliang Yue, Haisen Zhang, Qing Tao, Yiduo An, Fanying Kong, Junfen Li, Ran Gao, Xiaofei Wang, Qibin Wang, Hengjia Yang, Qiuyue Guo, Yue Wang, Shuxuan Quan, Jirong Wan
article en

Abstract

The ligular region is a critical determinant of leaf angle (LA) and plant architecture in maize, yet its developmental mechanisms remain largely unknown. In this study, we generate a comprehensive single-nucleus RNA-seq atlas of the maize ligular region, spanning from leaf primordium through the preligule band (PLB) to the mature stage. By integrating cellular and transcriptomic analyses, we reveal that brassinosteroid (BR) inhibits cell division in the adaxial division zone while promoting elongation in adaxial hypodermal cells. Consequently, BR treatment leads to ectopic emergence of the auricle and ligule. At early stages, GDSL esterases/lipase genes (GELP2/3/6) act as key regulators of emergence, as their disruption causes both ectopic initiation and impaired outgrowth of the ligule and auricle. At later stages, adaxial hypodermal cells serve as pivotal sites for BR-mediated cell elongation and LA expansion, where the transcription factors LIGULELESS1 (LG1) and BRASSINAZOLE-RESISTANT1 (BZR1) cooperatively drive cell elongation to increase LA. Strikingly, comparative snRNA-seq analyses reveal that variation in adaxial cell elongation and subsequent hypodermal lignification explains LA diversity across inbred lines. Together, our findings elucidate the molecular mechanism of BR-driven cell fate transitions in the ligular region and offer potential targets for breeding high-yield maize varieties with ideal plant architecture. Here the authors integrate single-nucleus transcriptomic and cellular analyse to reveal that brassinosteroid drives cell division, elongation, and subsequent lignification in the ligular region, thereby controlling leaf angle diversity in maize.

Nature Communications
Shandong University of Technology (CN), Shandong Agricultural University (CN)
National Natural Science Foundation of China
Life in Land
Openalex Percentile: Top 12%
Plant Molecular Biology Research
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