Xu Pengfei, Wan Qihui, Shao Wenna, Wu You, Wu Feijie, Li Xiaorong, Ren Wenqing, He Yuke, Li Shuxia, Yu Xiang
Joint International Research Laboratory of Metabolic and Developmental Sciences, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, 200240, China.
National Key Laboratory of Plant Molecular Genetics, CAS Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, the Chinese Academy of Sciences, Shanghai, 200032, China.
J Integr Plant Biol. 2025 Jul;67(7):1805-1822. doi: 10.1111/jipb.13893. Epub 2025 Apr 1.
Leaf curvature significantly contributes to important economic traits in vegetable crops. The upward-curling leaf phenotype has been consistently observed upon overexpression of a miR156/157-resistant version of the SQUAMOSA PROMOTER BINDING PROTEIN-LIKE 10 (SPL10) transcription factor (rSPL10). However, the role of SPL10 in regulating leaf curvature has not been well characterized. In this study, using DNA affinity purification sequencing followed by transient transactivation assays, we found that SPL10 can bind to the promoter and gene body of REVOLUTA (REV), augmenting its expression. The rSPL10 rev-6 double mutant plant displayed a downward-curling leaf phenotype similar to the rev-6 plant, supporting the notion that REV functions downstream of SPL10. Importantly, the SPL10 protein physically interacts with the REV protein, which attenuates the expression of REV promoted by SPL10, leading to the downregulation of REV-regulated genes involved in leaf curvature, such as HB2 and HB4. These findings suggest that the SPL10-REV module acts as a molecular rheostat to prevent excessive amplification of REV transcripts in Arabidopsis. Furthermore, overexpression of the BrpREV1 gene in Chinese cabbage caused the transformation of rosette leaves from flat to upward-curving and accelerated heading. Taken together, our findings reveal the role of SPL10-REV module in orchestrating leaf curvature, which could potentially be utilized for molecular breeding of economical traits in vegetable crops.
叶片卷曲对蔬菜作物的重要经济性状有显著贡献。在过表达抗miR156/157的SQUAMOSA启动子结合蛋白样10(SPL10)转录因子(rSPL10)后,一直观察到叶片向上卷曲的表型。然而,SPL10在调节叶片卷曲中的作用尚未得到充分表征。在本研究中,通过DNA亲和纯化测序和瞬时反式激活分析,我们发现SPL10可以结合到REVOLUTA(REV)的启动子和基因体上,增强其表达。rSPL10 rev-6双突变体植株表现出与rev-6植株相似的向下卷曲叶片表型,支持了REV在SPL10下游起作用的观点。重要的是,SPL10蛋白与REV蛋白发生物理相互作用,这减弱了SPL10促进的REV表达,导致参与叶片卷曲的REV调控基因(如HB2和HB4)的下调。这些发现表明SPL10-REV模块作为一种分子变阻器,可防止拟南芥中REV转录本的过度扩增。此外,大白菜中BrpREV1基因的过表达导致莲座叶从扁平变为向上卷曲并加速抽薹。综上所述,我们的研究结果揭示了SPL10-REV模块在协调叶片卷曲中的作用,这可能潜在地用于蔬菜作物经济性状的分子育种。