The C2H2‐type zinc finger transcription factor OSIC1 positively regulates stomatal closure under osmotic stress in poplar

Author:

Bai Qiuxian12,Niu Zhimin1,Chen Qingyuan1,Gao Chengyu1,Zhu Mingjia1,Bai Jiexian3,Liu Meijun1,He Ling1,Liu Jianquan1,Jiang Yuanzhong4ORCID,Wan Dongshi1ORCID

Affiliation:

1. State Key Laboratory of Grassland Agro‐Ecosystem, College of Ecology Lanzhou University Lanzhou China

2. Department of Pharmacology Ningxia Medical University Yinchuan China

3. College of Computer Information Engineering,Shanxi Technology and Business College Taiyuan China

4. Key Laboratory for Bio‐resources and Eco‐environment of Ministry of Education, College of Life Science Sichuan University Chengdu China

Abstract

SummarySalt and drought impair plant osmotic homeostasis and greatly limit plant growth and development. Plants decrease stomatal aperture to reduce water loss and maintain osmotic homeostasis, leading to improved stress tolerance. Herein, we identified the C2H2 transcription factor gene OSMOTIC STRESS INDUCED C2H2 1 (OSIC1) from Populus alba var. pyramidalis to be induced by salt, drought, polyethylene glycol 6000 (PEG6000) and abscisic acid (ABA). Overexpression of OSIC1 conferred transgenic poplar more tolerance to high salinity, drought and PEG6000 treatment by reducing stomatal aperture, while its mutant generated by the CRISPR/Cas9 system showed the opposite phenotype. Furthermore, OSIC1 directly up‐regulates PalCuAOζ in vitro and in vivo, encoding a copper‐containing polyamine oxidase, to enhance H2O2 accumulation in guard cells and thus modulates stomatal closure when stresses occur. Additionally, ABA‐, drought‐ and salt‐induced PalMPK3 phosphorylates OSIC1 to increase its transcriptional activity to PalCuAOζ. This regulation of OSIC1 at the transcriptional and protein levels guarantees rapid stomatal closure when poplar responds to osmotic stress. Our results revealed a novel transcriptional regulatory mechanism of H2O2 production in guard cells mediated by the OSIC1‐PalCuAOζ module. These findings deepen our understanding of how perennial woody plants, like poplar, respond to osmotic stress caused by salt and drought and provide potential targets for breeding.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Genome Editing in Forest Trees;A Roadmap for Plant Genome Editing;2023-12-15

2. Application of CRISPR/Cas genome editing in woody plant trait improvement;Chinese Science Bulletin;2023-12-01

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