Soybean RING-type E3 ligase GmCHYR16 ubiquitinates the GmERF71 transcription factor for degradation to negatively regulate bicarbonate stress tolerance

IF 8.1 1区 生物学 Q1 PLANT SCIENCES New Phytologist Pub Date : 2025-03-13 DOI:10.1111/nph.70041
Tong Wu, Yan Wang, Jun Jin, Bingqian Zhao, Shengyang Wu, Bowei Jia, Xiaoli Sun, Dajian Zhang, Mingzhe Sun
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Abstract

  • Plant AP2/ERF (APETALA2/ethylene response factor) transcription factors are key regulators of environmental stress tolerance. We previously characterized that the wild soybean ERF71 transcription factor conferred bicarbonate stress tolerance; however, the underlying mechanism still remains elusive.
  • Here, multiple approaches were used to identify the E3 ubiquitin ligase GmCHYR16 as an interactor of GmERF71. Ubiquitination and protein degradation of GmERF71 mediated by GmCHYR16 were then analyzed. Overexpression transgenic lines were generated to evaluate the function of GmCHYR16 and GmERF71 in bicarbonate stress response.
  • GmCHYR16 interacts with GmERF71. GmERF71 proteins undergo ubiquitination and 26S proteasome-mediated degradation, and GmCHYR16 mediates the ubiquitination of GmERF71 for degradation. The GmCHYR16-mediated ubiquitination and proteasome-dependent degradation of GmERF71 are reduced under bicarbonate stress. GmCHYR16 expression in transgenic Arabidopsis, soybean hairy roots, and stable transgenic soybean reduces bicarbonate stress tolerance. GmERF71 degradation is decreased in the protein extracts of atchyr1/7 mutants, and atchyr1/7 mutants display higher bicarbonate tolerance. Overexpression of GmERF71 in transgenic soybean obviously increases bicarbonate tolerance, and GmCHYR16 reduces the bicarbonate tolerance of transgenic hairy root composite soybean plants by repressing GmERF71.
  • Our results demonstrate that GmCHYR16 directly ubiquitinates GmERF71 for degradation and negatively regulates bicarbonate stress tolerance.
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大豆RING-type E3连接酶GmCHYR16泛素化GmERF71转录因子降解,负调控碳酸氢盐胁迫耐受
AP2/ERF (APETALA2/乙烯反应因子)转录因子是植物环境胁迫耐受的关键调控因子。我们之前的研究表明,野生大豆ERF71转录因子具有碳酸氢盐胁迫耐受性;然而,潜在的机制仍然难以捉摸。本研究采用多种方法鉴定E3泛素连接酶GmCHYR16是GmERF71的相互作用物。然后分析GmCHYR16介导的GmERF71泛素化和蛋白降解。构建过表达转基因系,评价GmCHYR16和GmERF71在碳酸氢盐胁迫应答中的功能。GmCHYR16与GmERF71相互作用。GmERF71蛋白经过泛素化和26S蛋白酶体介导的降解,GmCHYR16介导GmERF71泛素化降解。gmchyr16介导的泛素化和蛋白酶体依赖的GmERF71降解在碳酸氢盐胁迫下减少。GmCHYR16在转基因拟南芥、大豆毛状根和稳定型转基因大豆中的表达降低了对碳酸氢盐的耐受性。atchyr1/7突变体的蛋白质提取物降低了GmERF71的降解,atchyr1/7突变体表现出更高的碳酸氢盐耐受性。转基因大豆中过表达GmERF71明显提高了转基因毛状根复合大豆的耐碳酸盐能力,GmCHYR16通过抑制GmERF71降低了转基因毛状根复合大豆的耐碳酸盐能力。我们的研究结果表明GmCHYR16直接泛素化GmERF71进行降解,并负调控碳酸氢盐胁迫耐受性。
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来源期刊
New Phytologist
New Phytologist 生物-植物科学
自引率
5.30%
发文量
728
期刊介绍: New Phytologist is an international electronic journal published 24 times a year. It is owned by the New Phytologist Foundation, a non-profit-making charitable organization dedicated to promoting plant science. The journal publishes excellent, novel, rigorous, and timely research and scholarship in plant science and its applications. The articles cover topics in five sections: Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology. These sections encompass intracellular processes, global environmental change, and encourage cross-disciplinary approaches. The journal recognizes the use of techniques from molecular and cell biology, functional genomics, modeling, and system-based approaches in plant science. Abstracting and Indexing Information for New Phytologist includes Academic Search, AgBiotech News & Information, Agroforestry Abstracts, Biochemistry & Biophysics Citation Index, Botanical Pesticides, CAB Abstracts®, Environment Index, Global Health, and Plant Breeding Abstracts, and others.
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