数字农科院2.0

Modulation of an evolutionarily conserved epigenetic regulon controlling abscisic acid catabolism enhances drought tolerance in wheat

文献类型: 外文期刊

作者: Li, Yunzhen;Jin, Liujie;Li, Wanying;Wang, Ke;Su, Handong;Mao, Hailiang;Chen, Wei;Lan, Caixia;Li, Qiang;Kaufmann, Kerstin;Yan, Wenhao

作者机构:

关键词: ABA metabolism;CRISPR/Cas;CYP707A;drought tolerance

期刊名称: NEW PHYTOLOGIST

ISSN: 0028-646X

年卷期: 2025 年

页码:

收录情况: SCIE(2025版)

摘要: Drought stress significantly reduces crop yield by triggering abscisic acid (ABA) accumulation in plants. It involves the suppression of CYP707A genes, which encode enzymes that catalyze ABA. However, little is known about epigenetic control in the CYP707A gene-mediated drought stress response in wheat. In this study, we reported that TaCYP707A-6A/6B/6D but not TaCYP707A-5A/5B/5D participates in drought response in common wheat. Disruption of TaCYP707A-6B showed enhanced drought tolerance but also decreased fertility. Expression of TaCYP707A-6B is negatively associated with H3K27me3 level. An evolutionarily conserved CTCTGYTY motif cluster (binding site for a Jumonji H3K27me3 demethylase) was found in the intron of TaCYP707A-6B as well as the intron of CYP707A homologs in other plant species. Blocking the CTCTGYTY motif by dead Cas9 (dCas9) maintained a high level of H3K27me3 on the CYP707A gene, while decreasing its expression level leading to enhanced drought tolerance in both wheat and Arabidopsis. In particular, the mutant in which the intron bound by H3K27me3 demethylase was cut out without change of splicing pattern showed enhanced drought tolerance. Therefore, our study provides a novel approach to improve plant drought tolerance by manipulating an evolutionarily conserved cis-element bound by histone demethylases in the intron of CYP707A genes. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(ABA)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)CYP707A(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)ABA(sic)(sic)(sic).(sic)(sic), (sic)(sic)(sic)CYP707A(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic) (sic),(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)TaCYP707A-6A/6B/6D(sic)(sic)TaCYP707A-5A/5B/5D (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).TaCYP707A-6B(sic)(sic)(sic)(sic)(sic)(sic) (sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).TaCYP707A-6B(sic)(sic)(sic)(sic)H3K27me3(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)TaCYP707A-6B(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)CTCTGYTY(sic)(sic)(sic)((sic)H3K27me3(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)). (sic)(sic)dCas9(sic)(sic)CTCTGYTY(sic)(sic)(sic), CYP707A(sic)(sic)(sic)H3K27me3(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), CYP707A(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)H3K27me3(sic)(sic)(sic)(sic)(sic) (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic),(sic)(sic)(sic)(sic)(sic)TaCYP707(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic): (sic)(sic)(sic)(sic)(sic)CYP707A(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).

分类号:

  • 相关文献

[1]鳞翅目昆虫基因编辑技术研究进展. 程英,靳明辉,萧玉涛. 2020

[2]基因编辑技术研究进展及在水稻品质研究中的展望(英文). 谢红军,朱明东,汤国华,凌春强,余应弘. 2017

[3]基因编辑技术的研究及在玉米中的应用. 张东民,张晓星,朱慧,张德贵,翁建峰,郝转芳,李明顺. 2018

[4]CRISPR/Cas基因编辑系统及其在植物中的研究进展. 赵欣,胡军. 2015

[5]基因组编辑技术在昆虫功能基因组研究中的应用. 张忠杰,刘晓静,李木旺,谭安江,黄勇平. 2015

[6]基因组编辑技术应用于作物遗传改良的进展与挑战. 王福军,赵开军. 2018

[7]鳞翅目昆虫基因编辑技术研究进展. 程英,靳明辉,萧玉涛. 2019

[8]细菌的CRISPR/cas免疫及免疫识别. 马延滨,常惠芸. 2012

[9]碱基编辑技术及其在昆虫中的应用和展望. 王晓迪,冀顺霞,申晓娜,刘万学,万方浩,张桂芬,吕志创. 2021

[10]基因编辑技术及其水稻中的发展和应用. 任俊,曹跃炫,黄勇,董慧荣,刘庆,王克剑. 2021

[11]基因编辑技术及其在农作物中的应用进展. 闫磊,张金山,朱健康,夏兰琴. 2023

[12]农作物基因编辑科技研发及应用. 闫磊,李晶莹,李慧园,夏兰琴. 2023

[13]CRISPR/Cas基因编辑技术在水稻育种中的研究进展. 李可,吴传银,隋毅. 2024

[14]基因编辑技术及其在作物抗病中的应用. 姚璐,王如意,宁约瑟,谢卡斌. 2025

[15]提高丝状真菌精准基因编辑效率的策略. 杨浩萌,梁丽存,宋祖洹,徐欣欣,罗会颖,姚斌,黄火清. 2024

[16]CRISPR/Cas介导的作物精准基因编辑前沿表现力格局与中国策略. 孙巍,郭佳和,杨玉影. 2025

[17]Systematic Identification Of Endogenous Rna P.olymerase Iii Promoters For E fficient Rna Guide-Based Genome Editing Technologies In Maize. Qi, XT, Dong, L, Liu, CL, Mao, L, Liu, F, Zhang, X, Cheng, BJ, Xie, CX. 2018

[18]A Recombinase Polymerase Amplification-Coupled Cas12a Mutant-Based Module for Efficient Detection of Streptomycin-Resistant Mutations in Mycobacterium tuberculosis. Peng Liu,Xinjie Wang,Juan Liang,Qian Dong,Jinping Zhang,Dongxin Liu,Shuai Wang,Jing Bi,Wenqi Liu,Zhaoqin Wang,Liang Chen,Lei Liu,Xingxu Huang,Guoliang Zhang. 2022

[19]Editorial: Plant Viruses, Volume II: Molecular Plant Virus Epidemiology and Its Management. Rajarshi Kumar Gaur, Akhtar Ali, Xiaofei Cheng, Kristiina Mäkinen, Bright Agindotan, Xifeng Wang. 2021

[20]High-Throughput Base Editing-Mediated Artificial Evolution Streamlines Trait Gene Identification in Rice. Yan F.,Yu M.,Wang M.,Zhou H.. 2023

作者其他论文 更多>>