Functional analysis of two solanesyl diphosphate synthases from Arabidopsis thaliana

被引:37
|
作者
Hirooka, K
Izumi, Y
An, CI
Nakazawa, Y
Fukusaki, E
Kobayashi, A
机构
[1] Osaka Univ, Grad Sch Engn, Dept Biotechnol, Suita, Osaka 5650871, Japan
[2] Hitachi Zosen Corp, Innoshima, Hiroshima 7222393, Japan
关键词
isoprenoid; prenyltransferase; nonaprenyl diphosphate; plastoquinone; ubiquinone;
D O I
10.1271/bbb.69.592
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
Solanesyl diphosphate (SPP) is regarded as the precursor of the side-chains of both plastoquinone and ubiquinone in Arabidopsis thaliana. We previously analyzed A. thaliana SPP synthase (At-SPS1) (Hirooka et al, Biochem. J., 370, 679-686 (2003)). In this study, we cloned a second SPP synthase (At-SPS2) gene from A. thaliana and characterized the recombinant protein. Kinetic analysis indicated that At-SPS2 prefers geranylgeranyl diphosphate to farnesyl diphosphate as the allylic substrate. Several of its features, including the substrate preference, were similar to those of At-SPS1. These data indicate that At-SPS1 and At-SPS2 share their basic catalytic machinery. Moreover, analysis of the subcellular localization by the transient expression of green fluorescent protein-fusion proteins showed that At-SPS2 is transported into chloroplasts, whereas At-SPS1 is likely to be localized in the endoplasmic reticulum in the A. thaliana cells. It is known that the ubiquinone side-chain originates from isopentenyl diphosphate derived from the cytosolic mevalonate pathway, while the plastoquinone side-chain is synthesized from isopentenyl diphosphate derived from the plastidial methylerythritol phosphate pathway. Based on this information, we propose that At-SPS1 contributes to the biosynthesis of the ubiquinone side-chain and that At-SPS2 supplies the precursor of the plastoquinone side-chain in A. thaliana.
引用
收藏
页码:592 / 601
页数:10
相关论文
共 50 条
  • [32] Functional characterization of two different decaprenyl diphosphate synthases in the vetch aphid Megoura viciae
    Song, Xuan
    Li, Zheng-Xi
    ARCHIVES OF INSECT BIOCHEMISTRY AND PHYSIOLOGY, 2022, 110 (04)
  • [33] Functional analysis of the NIP subfamily of Arabidopsis thaliana aquaporins
    Watanabe, Satoshi
    Nakagawa, Tuyoshi
    Maeshima, Masayoshi
    PLANT AND CELL PHYSIOLOGY, 2007, 48 : S228 - S228
  • [34] Functional analysis of Arabidopsis thaliana NAD biosynthetic genes
    Hashida, Shin-nosuke
    Itami, Taketo
    Takahashi, Hideyuki
    Kawai-Yamada, Maki
    Uchimiya, Hirofumi
    PLANT AND CELL PHYSIOLOGY, 2007, 48 : S42 - S42
  • [35] Functional analysis of CYCD4 of Arabidopsis thaliana
    Kono, A
    Uchimiya, H
    Umeda, M
    PLANT AND CELL PHYSIOLOGY, 2004, 45 : S208 - S208
  • [36] Functional analysis of AtVamp727 in Arabidopsis thaliana
    Okatani, Yusuke
    Ebine, Kazuo
    Dainobu, Tomoko
    Goh, Tatsuaki
    Uemura, Tomohiro
    Nakano, Akihiko
    Ueda, Takashi
    PLANT AND CELL PHYSIOLOGY, 2007, 48 : S205 - S205
  • [37] Functional analysis of plastidic dicarboxylate transporters in Arabidopsis thaliana
    Taniguchi, M
    Taniguchi, Y
    Kawasaki, M
    Sato, S
    Kato, T
    Tabata, S
    Miyake, H
    Sugiyama, T
    PLANT AND CELL PHYSIOLOGY, 2002, 43 : S50 - S50
  • [38] Transcriptome analysis for functional transformation of peroxisomes in Arabidopsis thaliana
    Kamada, T
    Hayashi, M
    Nishimura, M
    PLANT AND CELL PHYSIOLOGY, 2004, 45 : S58 - S58
  • [39] Molecular and functional analysis of hypoxanthine-guanine phosphoribosyltransferase from Arabidopsis thaliana
    Liu, Xueying
    Qian, Weiqiang
    Liu, Xin
    Qin, Huanju
    Wang, Daowen
    NEW PHYTOLOGIST, 2007, 175 (03) : 448 - 461
  • [40] Functional characterization of long-chain prenyl diphosphate synthases from tomato
    Jones, Matthew O.
    Perez-Fons, Laura
    Robertson, Francesca P.
    Bramley, Peter M.
    Fraser, Paul D.
    BIOCHEMICAL JOURNAL, 2013, 449 : 729 - 740