J Integr Plant Biol. ›› 2025, Vol. 67 ›› Issue (1): 101-116.DOI: 10.1111/jipb.13801  cstr: 32098.14.jipb.13801

• Metabolism and Biochemistry • Previous Articles     Next Articles

Zinc finger transcription factors BnaSTOP2s regulate sulfur metabolism and confer Sclerotinia sclerotiorum resistance in Brassica napus

Lihong Dai1†, Zhaoqi Xie2†, Tianxu Ai1, Yushun Jiao1, Xiaoyi Lian1, Angchen Long1, Jinyun Zhang1, Guangsheng Yang1,3* and Dengfeng Hong1,3,4*   

  1. 1. National Key Laboratory of Crop Genetic Improvement, College of Plant Science and Technology, Huazhong Agricultural University, Wuhan 430070, China
    2. Lushan Botanical Garden, Chinese Academy of Sciences, Jiujiang 332900, China
    3. Hubei Hongshan Laboratory, Wuhan 430070, China
    4. Yazhouwan National Laboratory, Sanya 572024, China

    †These authors contributed equally to this work.
    *Correspondence: Guangsheng Yang (gsyang@mail.hzau.edu.cn); Dengfeng Hong (dfhong@mail.hzau.edu.cn, Dr. Hong is fully responsible for the distribution of all materials associated with this article)
  • Received:2024-02-28 Accepted:2024-10-08 Online:2024-11-06 Published:2025-01-01
  • Supported by:
    This research was supported by the National Key Research and Development Program of China (2022YFD1200400) and the Program for Modern Agricultural Industrial Technology System (CARS‐12).

Abstract: Rapeseed (Brassica napus L.) exhibits high-sulfur requirements to achieve optimal growth, development, and pathogen resistance. Despite the importance of sulfur, the mechanisms regulating its metabolism and disease resistance are not fully understood. In this study, we found that the zinc finger transcription factors BnaSTOP2s play a pivotal role in sulfur metabolism and Sclerotinia sclerotiorum resistance. Our findings indicate that BnaSTOP2s are involved in sulfur metabolism, as evidenced by extensive protein interaction screening. BnaSTOP2s knockout reduced the content of essential sulfur-containing metabolites, including glucosinolate and glutathione, which is consistent with the significantly lowered transcriptional levels of BnaMYB28s and BnaGTR2s, key factors involved in glucosinolate synthesis and transportation, respectively. Comprehensive RNA-seq analysis revealed the substantial effect of BnaSTOP2s on sulfur metabolism from roots to siliques, which serve as pivotal sources and sinks for sulfur metabolism, respectively. Furthermore, we found that leaf lesion size significantly decreased and increased in the BnaSTOP2-OE and Bnastop2 mutants, respectively, compared with the wild-type during S. sclerotiorum infection, suggesting a vital role of BnaSTOP2s in plant defense response. In conclusion, BnaSTOP2s act as global regulators of sulfur metabolism and confer resistance to S. sclerotiorum infection in B. napus. Thus, they have potential implications for improving crop resilience.

Key words: BnaSTOP2, Brassica napus, CRISPR/Cas9, glucosinolate, Sclerotinia sclerotiorum, sulfur metabolism

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