Cross-phosphorylation between Arabidopsis thaliana Sucrose Nonfermenting 1-related Protein Kinase 1 (AtSnRK1) and Its Activating Kinase (AtSnAK) Determines Their Catalytic Activities

被引:63
|
作者
Crozet, Pierre [1 ]
Jammes, Fabien [1 ]
Valot, Benoit [2 ]
Ambard-Bretteville, Francoise [1 ]
Nessler, Sylvie [3 ]
Hodges, Michael [1 ]
Vidal, Jean [1 ]
Thomas, Martine [1 ]
机构
[1] Univ Paris 11, Lab Signalisat & Regulat Metab, Inst Biol Plantes, CNRS,UMR 8618, F-91405 Orsay, France
[2] Univ Paris 11, UMR Genet Vegetale INRA, CNRS, INA PG, F-91190 Gif Sur Yvette, France
[3] CNRS, Lab Enzymol & Biochim Struct, UPR 3082, CNRS, F-91198 Gif Sur Yvette, France
关键词
UPSTREAM KINASE; YEAST SNF1; IN-VITRO; ENERGY; SNRK1; EXPRESSION; REGULATORS; REDUCTASE; BETA; LOOP;
D O I
10.1074/jbc.M109.079194
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Arabidopsis thaliana sucrose nonfermenting 1-related protein kinase 1 complexes belong to the SNF1/AMPK/SnRK1 protein kinase family that shares an ancestral function as central regulators of metabolism. In A. thaliana, the products of AtSnAK1 and AtSnAK2, orthologous to yeast genes, have been shown to autophosphorylate and to phosphorylate/activate the AtSnRK1.1 catalytic subunit on Thr(175). The phosphorylation of these kinases has been investigated by site-directed mutagenesis and tandem mass spectrometry. The autophosphorylation site of AtSnAK2 was identified as Thr(154), and it was shown to be required for AtSnAK catalytic activity. Interestingly, activated AtSnRK1 exerted a negative feedback phosphorylation on AtSnAK2 at Ser(261) (Ser(260) of AtSnAK1) that was dependent on AtSnAK autophosphorylation. The dynamics of these reciprocal phosphorylation events on the different kinases was established, and structural modeling allowed clarification of the topography of the AtSnAK phosphorylation sites. A mechanism is proposed to explain the observed changes in the enzymatic properties of each kinase triggered by these phosphorylation events.
引用
收藏
页码:12071 / 12077
页数:7
相关论文
共 50 条
  • [41] Genome-wide identification and expression analysis of sucrose nonfermenting-1-related protein kinase (SnRK) genes in Triticum aestivum in response to abiotic stress
    Shefali Mishra
    Pradeep Sharma
    Rajender Singh
    Ratan Tiwari
    Gyanendra Pratap Singh
    Scientific Reports, 11
  • [42] Genome-wide identification and expression analysis of sucrose nonfermenting-1-related protein kinase (SnRK) genes in Triticum aestivum in response to abiotic stress
    Mishra, Shefali
    Sharma, Pradeep
    Singh, Rajender
    Tiwari, Ratan
    Singh, Gyanendra Pratap
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [43] Sucrose non-fermenting 1-related protein kinase 2-14 participating in lipid elevating efficacy and biodiesel upgrade by Coccomyxa subllipsoidea
    Luo, Yuanyuan
    Zhao, Sisi
    Fan, Zhixuan
    Li, Yuqin
    Peng, Zongfan
    Zhang, Yulong
    Feng, Siran
    Mou, Jinhua
    Wang, Zhenyao
    Lin, Carol Sze Ki
    Li, Xuan
    CHEMICAL ENGINEERING JOURNAL, 2025, 505
  • [44] Suppressor of K transport growth defect 1 (SKD1) interacts with RING-type ubiquitin ligase and sucrose non-fermenting 1-related protein kinase (SnRK1) in the halophyte ice plant
    Chiang, Chih-Pin
    Li, Chang-Hua
    Jou, Yingtzy
    Chen, Yu-Chan
    Lin, Ya-Chung
    Yang, Fang-Yu
    Huang, Nu-Chuan
    Yen, Hungchen Emilie
    JOURNAL OF EXPERIMENTAL BOTANY, 2013, 64 (08) : 2385 - 2400
  • [45] Glucose-dependent activation of protein kinase A activity in Saccharomyces cerevisiae and phosphorylation of its TPK1 catalytic subunit
    Portela, P
    Moreno, S
    CELLULAR SIGNALLING, 2006, 18 (07) : 1072 - 1086
  • [46] Balance between activities of Rho kinase and type 1 protein phosphatase modulates turnover of phosphorylation and dynamics of desmin/vimentin filaments
    Inada, H
    Togashi, H
    Nakamura, Y
    Kaibuchi, K
    Nagata, K
    Inagaki, M
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (49) : 34932 - 34939
  • [47] Repressing the expression of the SUCROSE NONFERMENTING-1-RELATED PROTEIN KINASE gene in pea embryo causes pleiotropic defects of maturation similar to an abscisic acid-insensitive phenotype
    Radchuk, R
    Radchuk, V
    Weschke, W
    Borisjuk, L
    Weber, H
    PLANT PHYSIOLOGY, 2006, 140 (01) : 263 - 278
  • [48] SUPPRESSOR OF MAX2 LIKE 6, 7, and 8 Interact with DDB1 BINDING WD REPEAT DOMAIN HYPERSENSITIVE TO ABA DEFICIENT 1 to Regulate the Drought Tolerance and Target SUCROSE NONFERMENTING 1 RELATED PROTEIN KINASE 2.3 to Abscisic Acid Response in Arabidopsis
    Lian, Yuke
    Lian, Chengfei
    Wang, Lei
    Li, Zhimin
    Yuan, Guoqiang
    Xuan, Lijuan
    Gao, Huanhuan
    Wu, Haijun
    Yang, Tao
    Wang, Chongying
    BIOMOLECULES, 2023, 13 (09)
  • [49] TaSnRK2.9, a Sucrose Non-fermenting 1-Related Protein Kinase Gene, Positively Regulates Plant Response to Drought and Salt Stress in Transgenic Tobacco
    Feng, Jialu
    Wang, Lianzhe
    Wu, Yanan
    Luo, Qingchen
    Zhang, Yang
    Qiu, Ding
    Han, Jiapeng
    Su, Peipei
    Xiong, Zhiyong
    Chang, Junli
    Yang, Guangxiao
    He, Guangyuan
    FRONTIERS IN PLANT SCIENCE, 2019, 9
  • [50] The Sucrose Non-Fermenting 1-Related Protein Kinase 2 (SnRK2) Genes Are Multifaceted Players in Plant Growth, Development and Response to Environmental Stimuli
    Mao, Xinguo
    Li, Yuying
    Rehman, Shoaib Ur
    Miao, Lili
    Zhang, Yanfei
    Chen, Xin
    Yu, Chunmei
    Wang, Jingyi
    Li, Chaonan
    Jing, Ruilian
    PLANT AND CELL PHYSIOLOGY, 2020, 61 (02) : 225 - 242