J Integr Plant Biol.

• Research Article • Previous Articles    

OVATE family protein 6 controls leaf angle through dual regulation of cytokinin catabolism and leaf dorsiventrality in lettuce

Ruiyu Chen1†, Wei Shao2†, Weizhen Guo3†, Yong Wang1†, Haoyu Chen1, Temoor Ahmed4, Lei Zhu1, Luming Yang1, Yetong Qi4* and Guanghui An1*   

  1. 1. College of Horticulture, Henan Agricultural University, Zhengzhou 450046, China
    2. National Key Laboratory for Germplasm Innovation & Utilization of Horticultural Crops, College of Horticulture and Forestry Sciences, Huazhong Agricultural University, Wuhan 430070, China
    3. Foreign Language School, Guangzhou Institute of Science and Technology, Guangzhou 510540, China
    4. Xianghu Laboratory, Hangzhou 311231, China
    These authors contributed equally to this work.
    *Correspondences: Guanghui An (agh@henau.edu.cn, Dr. An is fully responsible for the distribution of all materials associated with this article); Yetong Qi (qiyetong@xhlab.ac.cn)
  • Received:2025-08-30 Accepted:2026-01-19 Online:2026-02-11
  • Supported by:
    This work was supported by the Zhejiang Provincial Natural Science Foundation of China (LQK26C150002), the National Natural Science Foundation of China (32302549), the Natural Science Foundation of Henan (242300421108), and the China Postdoctoral Science Foundation (2023M741061).

Abstract: Leaf angle is a key agronomic trait for improving planting density and yield in lettuce, particularly in controlled-environment agriculture and high-density field cultivation. Leaf angle regulation is well studied in monocots; however, the genetic and molecular mechanisms in dicots remain largely unknown. Here, we genetically clone and functionally characterize LsOFP6a, an OVATE family protein gene, as a key regulator of leaf angle in lettuce. A nonsense mutation in LsOFP6a in large-leaf-angle cultivars produces a truncated protein with impaired function. CRISPR/Cas9 knockout and complementary tests confirmed that LsOFP6a negatively regulates leaf angle in lettuce. LsOFP6a physically interacts with the BELL-like homeodomain transcription factor LsBLH2. Genetic analyses revealed that LsOFP6a regulates leaf angle through an LsBLH2-dependent pathway, and LsBLH2 is recessive-epistatic to LsOFP6a. LsBLH2 directly upregulates the expression of the cytokinin oxidase gene LsCKX5a. LsOFP6a represses the transcriptional activity of LsBLH2 on LsCKX5, leading to elevated cytokinin levels and small leaf angle. Furthermore, LsOFP6a inhibits the effects of LsBLH2 on repressing abaxial gene LsYAB1, leading to enhanced abaxial cell elongation and erect leaves. Loss of function of LsOFP6a decreases the cytokinin level and represses abaxial cells, resulting in large leaf angles. In summary, the LsOFP6a–LsBLH2 module orchestrates cytokinin catabolism and leaf dorsiventrality to regulate lettuce leaf angle. Our study suggests potential novel strategies for the breeding of lettuce with compact architecture and suitable for high-density planting in the open field and plant factories.

Key words: BSR-seq, Lactuca sativa, map-based cloning, plant architecture, SAWTOOTH 1 gene, YABBY family

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