数字农科院2.0

Cellulose synthase-like protein OsCSLD4 plays an important role in the response of rice to salt stress by mediating abscisic acid biosynthesis to regulate osmotic stress tolerance

文献类型: 外文期刊

作者: Zhao, Hui;Li, Zixuan;Wang, Yayun;Wang, Jiayi;Xiao, Minggang;Liu, Hai;Quan, Ruidang;Zhang, Haiwen;Huang, Rongfeng;Zhu, Li;Zhang, Zhijin

作者机构:

关键词: cell wall polysaccharides;salt stress;osmotic stress;ABA;OsCSLD4

期刊名称: PLANT BIOTECHNOLOGY JOURNAL

ISSN: 1467-7644

年卷期: 2021 年

页码:

收录情况: SCIE(2022版)

摘要: Cell wall polysaccharide biosynthesis enzymes play important roles in plant growth, development and stress responses. The functions of cell wall polysaccharide synthesis enzymes in plant growth and development have been well studied. In contrast, their roles in plant responses to environmental stress are poorly understood. Previous studies have demonstrated that the rice cell wall cellulose synthase-like D4 protein (OsCSLD4) is involved in cell wall polysaccharide synthesis and is important for rice growth and development. This study demonstrated that the OsCSLD4 function-disrupted mutant nd1 was sensitive to salt stress, but insensitive to abscisic acid (ABA). The expression of some ABA synthesis and response genes was repressed in nd1 under both normal and salt stress conditions. Exogenous ABA can restore nd1-impaired salt stress tolerance. Moreover, overexpression of OsCSLD4 can enhance rice ABA synthesis gene expression, increase ABA content and improve rice salt tolerance, thus implying that OsCSLD4-regulated rice salt stress tolerance is mediated by ABA synthesis. Additionally, nd1 decreased rice tolerance to osmotic stress, but not ion toxic tolerance. The results from the transcriptome analysis showed that more osmotic stress-responsive genes were impaired in nd1 than salt stress-responsive genes, thus indicating that OsCSLD4 is involved in rice salt stress response through an ABA-induced osmotic response pathway. Intriguingly, the disruption of OsCSLD4 function decreased grain width and weight, while overexpression of OsCSLD4 increased grain width and weight. Taken together, this study demonstrates a novel plant salt stress adaptation mechanism by which crops can coordinate salt stress tolerance and yield.

分类号:

  • 相关文献

[1]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

[2]Overexpression of ZmOPR1 in Arabidopsis enhanced the tolerance to osmotic and salt stress during seed germination. Zheng, Jun,Wang, Guoying,Gu, Dan,Liu, Xihui,Wang, Maoyan,Hou, Wei,Wang, Guoying,Wang, Jianhua,Zheng, Jun,Wang, Guoying. 2008

[3]The physiological and metabolic changes in sugar beet seedlings under different levels of salt stress. Wang, Yuguang,Yu, Lihua,Zhao, Huijie,Sun, Xuewei,Sun, Fei,Geng, Gui,Wang, Yuguang,Yu, Lihua,Geng, Gui,Wang, Yuguang,Stevanato, Piergiorgio.

[4]Seed Germination, Seedling Emergence, and Response to Herbicides of Triquetrous Murdannia (Murdannia triquetra) in Rice. Tang, Wei,Zhang, Jianping,Lu, Yongliang,Chen, Jie.

[5]NaCl affects photosynthetic and stomatal dynamics by osmotic effects and reduces photosynthetic capacity by ionic effects in tomato. Zhang, Yuqi,Kaiser, Elias,Li, Tao,Marcelis, Leo F. M.. 2022

[6]Two Aquaporin Genes, GhPIP2;7 and GhTIP2;1, Positively Regulate the Tolerance of Upland Cotton to Salt and Osmotic Stresses. Anhui Guo,Jianfeng Hao,Ying Su,Bin Li,Nan Zhao,Meng Zhu,Yi Huang,Baoming Tian,Gongyao Shi,Jinping Hua. 2022

[7]Calcium-dependent protein kinase 21 phosphorylates 14-3-3 proteins in response to ABA signaling and salt stress in rice. Chen, Yixing,Zhou, Xiaojin,Chang, Shu,Chu, Zhilin,Wang, Hanmeng,Han, Shengcheng,Wang, Yingdian,Zhou, Xiaojin.

[8]CLE14 functions as a “brake signal” to suppress age-dependent and stress-induced leaf senescence by promoting JUB1-mediated ROS scavenging in Arabidopsis. Zenglin Zhang,Cheng Liu,Kui Li,Xiaoxu Li,Mengmeng Xu,Yongfeng Guo. 2022

[9]OsSTS, a Novel Allele of Mitogen-Activated Protein Kinase Kinase 4 (OsMKK4), Controls Grain Size and Salt Tolerance in Rice. Jianguo Liu,Lan Shen,Longbiao Guo,Guangheng Zhang,Zhenyu Gao,Li Zhu,Jiang Hu,Guojun Dong,Deyong Ren,Qiang Zhang,Qing Li,Dali Zeng,Changjie Yan,Qian Qian. 2023

[10]Influences of microwave pre-drying and explosion puffing drying induced cell wall polysaccharide modification on physicochemical properties, texture, microstructure and rehydration of pitaya fruit chips. Yi, Jianyong,Zhou, Linyan,Bi, Jinfeng,Liu, Xuan,Chen Qinqin,Wu, Xinye. 2016

[11]High hydrostatic pressure induced physiological changes and physical damages in asparagus spears. Yi, Jianyong,Feng, Haihong,Bi, Jinfeng,Zhou, Linyan,Zhou, Mo,Cao, Jiankang,Feng, Haihong,Li, Jun.

[12]Hydroxyl radical is involved in cell wall disassembly and aril breakdown in mulberry fruit during storage. Chen, Hangjun,Gao, Haiyan,Fang, Xiangjun,Li, Jiaojiao,Cao, Shifeng.

[13]Differential pulp cell wall structures lead to diverse fruit textures in apple (Malus domestica). Yang, Ling,Cong, Peihua,He, Jiali,Bu, Haidong,Qin, Sijun,Lyu, Deguo. 2022

[14]Cell wall polysaccharides and mono-/disaccharides as chemical determinants for the texture and hygroscopicity of freeze-dried fruit and vegetable cubes. Shuhan Feng,Jinfeng Bi,Jianyong Yi,Xuan Li,Jiangkuo Li,Youchuan Ma. 2022

[15]Post-harvest ripening affects drying behavior, antioxidant capacity and flavor release of peach via alteration of cell wall polysaccharides content and nanostructures, water distribution and status. Jia Bao Ni,Magdalena Zielinska,Jun Wang,Xiao Ming Fang,Parag Prakash Sutar,Suo Bin Li,Xiang Xin Li,Hui Wang,Hong Wei Xiao. 2023

[16]Low-voltage electrostatic field delays postharvest softening of ‘France’ prune by inhibiting cell wall degradation. Di Shen,Yuzhuo Lu,Lingling Pang,Jinxiao Cheng,Yapeng Wang,Yi Zhi,Renchang Dai,Yanfang Pan,Yining Xia. 2025

[17]CsAREB转录因子在柑橘果实发育中的作用. 庞少萍,董翠翠,马岩岩,钱春,何绍兰,谢让金,邓烈. 2017

[18]外源ABA和Ca~(2+)对低温及低温恢复下赤霞珠幼苗蔗糖代谢的影响. 姜寒玉,王旺田,雷天翔,何百,张金林. 2017

[19]ABA、BA及DPI对高表达玉米C_4pepc基因的水稻光合特性及叶绿素荧光特性的影响. 李霞,任承钢. 2012

[20]水分胁迫下紫花苜蓿根系特征与ABA含量的变化. 毕舒贻,曹婧,李跃,万里强,李向林. 2016

作者其他论文 更多>>