数字农科院2.0

A Raf-Like MAPKKK Gene TaHT1 Controls Drought Tolerance and Primary Root Length in Wheat

文献类型: 外文期刊

作者: Wang, Min;Li, Chaonan;Wang, Jingyi;Li, Yuying;Zhang, Yanfei;Yang, Lili;Zhang, Yining;Zhang, Jie;Zhang, Zihui;Yan, Wen;Zuo, Yuang;Zhao, Qiancheng;Li, Long;Mao, Xinguo;Jing, Ruilian

作者机构:

关键词: drought tolerance;functional marker;primary root length;TaHT1;TaSnRK2.10

期刊名称: PLANT CELL AND ENVIRONMENT

ISSN: 0140-7791

年卷期: 2025 年

页码:

收录情况: SCIE(2025版)

摘要: Wheat (Triticum aestivum L.) is one of the world's staple food crops, but it often suffers from water shortages during the growing season. Mitogen-activated protein kinase kinase kinases (MAPKKKs) are the critical signaling modules in plant drought response signaling pathways. However, the molecular mechanism of its involvement in wheat drought tolerance has not been fully elucidated. In the present study, we identified a novel wheat Raf-like MAPKKK high leaf temperature 1 (TaHT1) that interacts with sucrose non-fermenting 1-related protein kinase 2.10 (TaSnRK2.10), which plays a signaling hub role in drought stress response. TaHT1 is downregulated by polyethylene glycol (PEG) and abscisic acid (ABA) treatments. Ectopic expression of TaHT1 in rice (Oryza sativa) conferred short-root and drought-sensitive phenotype, the latter was manifested by increased malondialdehyde (MDA) accumulation, decreased cell membrane stability and plant survival rates under drought stress. TaHT1 regulates the expression of multiple genes involved in drought response and reactive oxygen species (ROS) scavenging pathways. In addition, sequence polymorphism and association analysis revealed that TaHT1-5B was significantly correlated with seedling primary root length. The superior haplotype Hap-5B-3 of TaHT1-5B with long primary root has been positively selected in the main wheat production zones in China wheat breeding history. Our study demonstrates that TaHT1 negatively regulates drought tolerance via its interaction with TaSnRK2.10, and its superior allele Hap-5B-3 and functional marker will provide valuable tools for wheat breeding.

分类号:

  • 相关文献

[1]Regulating drought tolerance in cotton by the expression of a specific allele of heat shock protein 70. Yaping Guo,Yanying Qu,Rong Fan,Fenglei Sun,Qin Chen,Jianbin Shi,Kai Zheng,zhiyong Ni,Yibin Zhang,Quanjia Chen,Ning Wang,Gentu Yan. 2023

[2]小麦TaSnRK2.10的多态性及与农艺性状的关联. 王倩,毛新国,昌小平,贾继增,刘惠民,景蕊莲. 2014

[3]A genotypic difference in primary root length is associated with the inhibitory role of transforming growth factor-beta receptor-interacting protein-1 on root meristem size in wheat. He, Xue,Fang, Jingjing,Li, Jingjuan,Qu, Baoyuan,Ren, Yongzhe,Ma, Wenying,Zhao, Xueqiang,Li, Bin,Wang, Daowen,Li, Zhensheng,Tong, Yiping,Fang, Jingjing,Li, Jingjuan,Ren, Yongzhe. 2014

[4]Allelic Variation at the TaZds-A1 Locus on Wheat Chromosome 2A and Development of a Functional Marker in Common Wheat. Dong Chang-hai,Ma Zhi-ying,Dong Chang-hai,Xia Xian-chun,Zhang Li-ping,He Zhong-hu,He Zhong-hu,Zhang Li-ping. 2012

[5]Allelic variation of a soluble acid invertase gene (SAI-1) and development of a functional marker in sweet sorghum [Sorghum bicolor (L.) Moench]. Liu, Yang,Nie, Yuan-Dong,Han, Fen-Xia,Zhao, Xiang-Na,Dun, Bao-Qing,Lu, Ming,Li, Gui-Ying,Liu, Yang. 2014

[6]Cloning and characterization of Tabas1-B1 gene associated with flag leaf chlorophyll content and thousand-grain weight and development of a gene-specific marker in wheat. Zhu, Xiao-Feng,Zhang, Hai-Ping,Hu, Ming-Jian,Wu, Zeng-Yun,Jiang, Hao,Cao, Jia-Jia,Xia, Xian-Chun,Ma, Chuan-Xi,Chang, Cheng,Xia, Xian-Chun.

[7]Cloning and haplotype analysis of TaSTE, which is associated with plant height in bread wheat (Triticum aestivum L.). Zhang, Wenping,Zhang, Lei,Qiao, Linyi,Lv, Wenyan,Wu, Jing,Zhao, Guangyao,Jing, Ruilian,Jia, Jizeng.

[8]Development of an allele-specific marker for Glu-B3 alleles in common wheat and establishment of a multiplex PCR assay. Sui, Xinxia,Wang, Linhai,Xia, Xianchun,He, Zhonghu,Sui, Xinxia,Wang, Zhenlin,He, Zhonghu. 2010

[9]A new deletion mutation of fragrant gene and the development of three molecular markers for fragrance in rice. G. N. Shao , A. Tang , S. Q. TANG , J. LUO , G. A. JIAO , J. L. WU , P. S. HU *. 2011

[10]Breeding of the Long-Grain Restorer of Indica-Japonica Hybrid Rice by Using the Genetic Effects of Grain Shape QTLs. Liu K.,Peng Z.,Sun Z.,Zhou Z.,Li Y.,Zhou R.,He D.,Huang C.,Chen D.,Cheng S.,Cao L.,Zhan X.,Sun L.. 2023

[11]Identification of effective alleles and haplotypes conferring pre-harvest sprouting resistance in winter wheat cultivars. Huang Yiwen,Dai Xuran,Liu Hongwei,Yu Shuo,Mai Chunyan,Yu Liqiang,Yu Guangjun,Yang Li,Zhou Yang,Li Hongjie,Zhang Hongjun. 2022

[12]Development of markers for identification and maker-assisted breeding of Xa7 gene in rice (Oryza sativa L.). Pengcheng Liu,Le Mei,Lumei He,Yiling Xu,Yiting Zhang,Dali Zeng,Xiaoming Zhang,Qian Qian,Xifeng Chen,Bojun Ma. 2021

[13]The wheat basic helix-loop-helix gene TabHLH123 positively modulates the formation of crown roots and is associated with plant height and 1000-grain weight under various conditions. Wang, Jinping,Li, Chaonan,Mao, Xinguo,Wang, Jingyi,Li, Long,Li, Jialu,Fan, Zipei,Zhu, Zhi,He, Liheng,Jing, Ruilian. 2023

[14]The Ability To Regulate Transmembrane P.otassium Transport In Root I s Critical For Drought Tolerance In Barley. Zhang, Shuo,Cai, Kangfeng,Wu, Xiaojian,Gao, Huaizhou,Zeng, Fanrong,Han, Zhigang,Zhang, Guoping,Chen, Xiaohui. 2019

[15]Osnar2.1 Positively Regulates Drought Tolerance A.nd Grain Yield Under D rought Stress Conditions In Rice. Fan, Xiaorong,Yin, Xiaoming,Chen, Jingguang,Fan, Xiaoru,Hu, Zhi,Qi, Tiantian,Xu, Guohua,Iqbal, Muhammad Faseeh,Zhu, Longlong,Chen, Jingguang. 2019

[16]Expressing TERF1 in tobacco enhances drought tolerance and abscisic acid sensitivity during seedling development. Zhang, XL,Zhang, ZJ,Chen, J,Chen, Q,Wang, XC,Huang, RF. 2005

[17]Genetic Dissection And Simultaneous Improvement O.f Drought And Low N itrogen Tolerances By Designed Qtl Pyramiding In Rice. Wang, Bingbing,Ali, Jauhar,Xu, Jianlong,Zheng, Tianqing,Zhang, Wenzhong,Xu, Jianlong,Li, Zhikang,Chen, Kai,Cui, Yanru,Li, Zhikang,Zhu, Yajun,Wu, Zhichao,Feng, Bo,Feng, Bo. 2018

[18]QTLs affecting morph-physiological traits related to drought tolerance detected in overlapping introgression lines of rice (Oryza sativa L.). Zhao, Xiu-Qin,Xu, Jian-Long,Zhao, Ming,Zhu, Ling-Hua,Fu, Bin-Ying,Gao, Yong-Ming,Li, Zhi-Kang,Zhao, Xiu-Qin,Xu, Jian-Long,Lafitte, Renee,Fu, Bin-Ying,Gao, Yong-Ming,Li, Zhi-Kang. 2008

[19]An analysis of the polymorphisms in a gene for being involved in drought tolerance in maize. Li, Liang,Hao, Zhuanfang,Li, Xinhai,Xie, Chuanxiao,Li, Mingshun,Zhang, Degui,Weng, Jianfeng,Su, Zhijun,Zhang, Shihuang,Liang, Xiaoling. 2011

[20]GmDREB2, a soybean DRE-binding transcription factor, conferred drought and high-salt tolerance in transgenic plants. Chen, Ming,Wang, Qiao-Yan,Cheng, Xian-Guo,Xu, Zhao-Shi,Li, an-Cheng Li,Ye, Xing-Guo,Xia, Lan-Qin,Ma, You-Zhi. 2007

作者其他论文 更多>>