Knocking Out the Transcription Factor OsNAC092 Promoted Rice Drought Tolerance

Author:

Wang BoORCID,Wang Yiheng,Yu Wancong,Wang Luping,Lan Qingkuo,Wang Yong,Chen Chengbin,Zhang YongORCID

Abstract

Environmental drought stress threatens rice production. Previous studies have reported that related NAC (NAM, ATAF1/2, and CUC) transcription factors play an important role in drought stress. Herein, we identified and characterized OsNAC092, encoding an NAC transcription factor that is highly expressed and induced during drought tolerance. OsNAC092 knockout lines created using the clustered regularly interspaced palindromic repeats (CRISPR)-associated protein 9 (Cas9) system exhibited increased drought resistance in rice. RNA sequencing showed that the knockout of OsNAC092 caused a global expression change, and differential gene expression is chiefly associated with “response to light stimulus,” “MAPK signaling pathway,” “plant hormone signal transduction,” “response to oxidative stress,” “photosynthesis,” and “water deprivation.” In addition, the antioxidants and enzyme activities of the redox response were significantly increased. OsNAC092 mutant rice exhibited a higher ability to scavenge more ROS and maintained a high GSH/GSSG ratio and redox level under drought stress, which could protect cells from oxidant stress, revealing the importance of OsNAC092 in the rice’s response to abiotic stress. Functional analysis of OsNAC092 will be useful to explore many rice resistance genes in molecular breeding to aid in the development of modern agriculture.

Funder

Youth Science and Technology Innovation Project of Tianjin Academy of Agricultural Sciences

Publisher

MDPI AG

Subject

General Agricultural and Biological Sciences,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology

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1. Nanobiotechnology-mediated regulation of reactive oxygen species homeostasis under heat and drought stress in plants;Frontiers in Plant Science;2024-08-27

2. Picea wilsonii NAC31 and DREB2A Cooperatively Activate ERD1 to Modulate Drought Resistance in Transgenic Arabidopsis;International Journal of Molecular Sciences;2024-02-07

3. Molecular Mechanisms and Regulatory Pathways Underlying Drought Stress Response in Rice;International Journal of Molecular Sciences;2024-01-18

4. Molecular mechanism of abiotic stress regulation in crop plants;Nanotechnology for Abiotic Stress Tolerance and Management in Crop Plants;2024

5. Abiotic Stress Tolerance in Plants by Genome Editing Applications;Applications of Genome Engineering in Plants;2023-12-15

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