Understanding carotenoid metabolism as a necessity for genetic engineering of crop plants

被引:135
作者
Sandmann, Gerhard
Roemer, Susanne
Fraser, Paul D.
机构
[1] Goethe Univ Frankfurt, D-60054 Frankfurt, Germany
[2] Univ Kiel, Inst Bot, D-24098 Kiel, Germany
[3] Univ London, Royal Holloway & Bedford New Coll, Sch Biol Sci, Egham TW20 0EX, Surrey, England
关键词
carotenoid; metabolic engineering; crop plants; health-promoting phytochemicals;
D O I
10.1016/j.ymben.2006.01.005
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
As a proof of concept, the qualitative and quantitative engineering of carotenoid formation has been achieved in crop plants. Successful reports in tomato, potato, rice, and canola all describe the enhancement of carotenoid with nutritional value, while in model systems such as tobacco and Arabidopsis the engineering of carotenoid to confer abiotic stress has been described. For all the successful applications there have been many examples of unintended/unpredicted phenotypes and results. Typically this has resided from our lack of understanding of carotenoid formation and its regulation. In the present article, we will review advances in carotenoid formation and its regulation to illustrate-how metabolic engineering experiments have shed light on regulatory mechanisms. (C) 2006 Elsevier Inc. All rights reserved.
引用
收藏
页码:291 / 302
页数:12
相关论文
共 107 条
  • [21] Virtually complete conversion of lycopene into β-carotene in fruits of tomato plants transformed with the tomato lycopene β-cyclase (tlcy-b) cDNA
    D'Ambrosio, C
    Giorio, G
    Marino, I
    Merendino, A
    Petrozza, A
    Salfi, L
    Stigliani, AL
    Cellini, F
    [J]. PLANT SCIENCE, 2004, 166 (01) : 207 - 214
  • [22] DAVULURI GR, 2005, NAT BIOTECHNOL, V7, P825
  • [23] Plant metabolic engineering
    DellaPenna, D
    [J]. PLANT PHYSIOLOGY, 2001, 125 (01) : 160 - 163
  • [24] Metabolic engineering of xanthophyll content in tomato fruits
    Dharmapuri, S
    Rosati, C
    Pallara, P
    Aquilani, R
    Bouvier, F
    Camara, B
    Giuliano, G
    [J]. FEBS LETTERS, 2002, 519 (1-3) : 30 - 34
  • [25] PURIFICATION OF ISOPENTENYL PYROPHOSPHATE ISOMERASE AND GERANYLGERANYL PYROPHOSPHATE SYNTHASE FROM CAPSICUM CHROMOPLASTS BY AFFINITY-CHROMATOGRAPHY
    DOGBO, O
    CAMARA, B
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA, 1987, 920 (02) : 140 - 148
  • [26] Metabolic engineering of high carotenoid potato tubers containing enhanced levels of β-carotene and lutein
    Ducreux, LJM
    Morris, WL
    Hedley, PE
    Shepherd, T
    Davies, HV
    Millam, S
    Taylor, MA
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2005, 56 (409) : 81 - 89
  • [27] SPECIFIC CAROTENOIDS AND PROTEINS AS PREREQUISITES FOR CHROMOPLAST TUBULE FORMATION
    EMTER, O
    FALK, H
    SITTE, P
    [J]. PROTOPLASMA, 1990, 157 (1-3) : 128 - 135
  • [28] Metabolic engineering of the mevalonate and non-mevalonate isopentenyl diphosphate-forming pathways for the production of health-promoting isoprenoids in tomato
    Enfissi, EMA
    Fraser, PD
    Lois, LM
    Boronat, A
    Schuch, W
    Bramley, PM
    [J]. PLANT BIOTECHNOLOGY JOURNAL, 2005, 3 (01) : 17 - 27
  • [29] 1-deoxy-D-xylulose-5-phosphate synthase, a limiting enzyme for plastidic isoprenoid biosynthesis in plants
    Estévez, JM
    Cantero, A
    Reindl, A
    Reichler, S
    León, P
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (25) : 22901 - 22909
  • [30] Accumulation of secondary compounds in barley and wheat roots in response to inoculation with an arbuscular mycorrhizal fungus and co-inoculation with rhizosphere bacteria
    Fester, T
    Maier, W
    Strack, D
    [J]. MYCORRHIZA, 1999, 8 (05) : 241 - 246