Phylogenic and phosphorylation regulation difference of phosphoenolpyruvate carboxykinase of C3 and C4 plants

被引:20
|
作者
Shen, Zhuo [1 ]
Dong, Xiu-Mei [2 ]
Gao, Zhi-Fang [2 ]
Chao, Qing [2 ]
Wang, Bai-Chen [2 ]
机构
[1] Northeast Forestry Univ, State Key Lab Tree Genet & Breeding, Harbin 150040, Peoples R China
[2] Chinese Acad Sci, Inst Bot, Key Lab Photobiol, Photosynth Res Ctr, Beijing 100093, Peoples R China
基金
中国国家自然科学基金;
关键词
PEPCK; Phylogenic tree; Phosphorylation; Decarboxylase activity; PYRUVATE ORTHOPHOSPHATE DIKINASE; C-4; PHOTOSYNTHESIS; PEP-CARBOXYKINASE; CRYSTAL-STRUCTURE; METABOLISM; LEAVES; SEEDS; SITE; COTYLEDONS; REVEALS;
D O I
10.1016/j.jplph.2017.02.008
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
In C4 plants, phosphoenolpyruvate carboxykinase (PEPCK) plays a key role in the C4 cycle. PEPCK is also involved in gluconeogenesis and is conserved in both lower and higher organisms, including in animals and plants. A phylogenic tree constructed from PEPCK sequences from bacteria to higher plants indicates that the C4 Poaceae PEPCKs are conserved and have diverged from the PEPCKs of C3 plants. The maximum enzymatic activities of wild-type and phosphorylation mimic PEPCK proteins indicate that there is a significant difference between C3 and C4 plant PEPCKs. The conserved PEPCK phosphorylation sites are regulated differently in C3 and C4 plants. These results suggest that the functions of PEPCK have been conserved, but that sequences have diverged and regulation of PEPCK is important in C4 plants, but not in herbaceous and, in particular, woody C3 plants. (C) 2017 Elsevier GmbH. All rights reserved.
引用
收藏
页码:16 / 22
页数:7
相关论文
共 50 条
  • [21] Photosynthesis of C3, C4 and CAM plants at low leaf water potential
    Kawamitsu, Y.
    Hiyane, S.
    Uehara, N.
    Fukuzawa, Y.
    Egami, K.
    Matsushima, U.
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR & INTEGRATIVE PHYSIOLOGY, 2005, 141 (03): : S315 - S315
  • [22] Best practice procedures for the establishment of a C4 cycle in transgenic C3 plants
    Peterhansel, Christoph
    JOURNAL OF EXPERIMENTAL BOTANY, 2011, 62 (09) : 3011 - 3019
  • [23] Combining genetic and evolutionary engineering to establish C4 metabolism in C3 plants
    Li, Yuanyuan
    Heckmann, David
    Lercher, Martin J.
    Maurino, Veronica G.
    JOURNAL OF EXPERIMENTAL BOTANY, 2017, 68 (02) : 117 - 125
  • [24] Physical, chemical, and regulatory properties of glycolate oxidase in C3 and C4 plants
    Eprintsev, A. T.
    Semenov, A. E.
    Navid, M.
    Popov, V. N.
    RUSSIAN JOURNAL OF PLANT PHYSIOLOGY, 2009, 56 (02) : 164 - 167
  • [25] The Path from C3 to C4 Photosynthesis
    Gowik, Udo
    Westhoff, Peter
    PLANT PHYSIOLOGY, 2011, 155 (01) : 56 - 63
  • [26] Photorespiration connects C3 and C4 photosynthesis
    Braeutigam, Andrea
    Gowik, Udo
    JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (10) : 2953 - 2962
  • [27] Evolutionary transition from C3 to C4 photosynthesis and the route to C4 rice
    Liu, Zheng
    Sun, Ning
    Yang, Shangjun
    Zhao, Yanhong
    Wang, Xiaoqin
    Hao, Xingyu
    Qiao, Zhijun
    BIOLOGIA, 2013, 68 (04) : 577 - 586
  • [28] Evolutionary transition from C3 to C4 photosynthesis and the route to C4 rice
    Zheng Liu
    Ning Sun
    Shangjun Yang
    Yanhong Zhao
    Xiaoqin Wang
    Xingyu Hao
    Zhijun Qiao
    Biologia, 2013, 68 : 577 - 586
  • [29] You're so vein: bundle sheath physiology, phylogeny and evolution in C3 and C4 plants
    Griffiths, Howard
    Weller, George
    Toy, Lydia F. M.
    Dennis, Ross J.
    PLANT CELL AND ENVIRONMENT, 2013, 36 (02) : 249 - 261
  • [30] A scheme for C4 evolution derived from a comparative analysis of the closely related C3, C3–C4 intermediate, C4-like, and C4 species in the genus Flaveria
    Yuri N. Munekage
    Yukimi Y. Taniguchi
    Plant Molecular Biology, 2022, 110 : 445 - 454