Metabolic engineering of carotenoid accumulation by creating a metabolic sink

被引:88
作者
Li, Li [1 ]
van Eck, Joyce
机构
[1] Cornell Univ, USDA ARS, Soil & Nutr Lab, Ithaca, NY 14853 USA
[2] Cornell Univ, Boyce Thompson Inst Plant Res, Ithaca, NY 14853 USA
关键词
carotenoids; metabolic sink; carotenoid sequestering structures; chromoplasts; Cauliflower Or gene;
D O I
10.1007/s11248-007-9111-1
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Carotenoids are highly beneficial for human nutrition and health because they provide essential nutrients and important antioxidants in our diets. However, many food crops, especially the major staple crops contain only trace to low amounts of carotenoids. Although significant progress has been made in developing food crops rich in carotenoids by altering the expression of carotenoid biosynthetic genes, in many cases it has proved to be difficult to reach the desired levels of carotenoid enrichment. The recent identification and characterization of a novel gene mutation in cauliflower reveals that creating a metabolic sink to sequester carotenoids is an important mechanism to control carotenoid accumulation in plants. The successful demonstration of increased carotenoid accumulation in association with the formation of sink structures in transgenic crops offers a new and alternative approach to increase carotenoid content. Manipulation of the formation of metabolic sink along with the catalytic activity of the pathway may represent a promising strategy for maximally improving the nutritional quality of food crops.
引用
收藏
页码:581 / 585
页数:5
相关论文
共 32 条
[21]   The cauliflower or gene encodes a DnaJ cysteine-rich domain-containing protein that mediates high levels of β-carotene accumulation [J].
Lu, Shan ;
Van Eck, Joyce ;
Zhou, Xiangjun ;
Lopez, Alex B. ;
O'Halloran, Diana M. ;
Cosman, Kelly M. ;
Conlin, Brian J. ;
Paolillo, Dominick J. ;
Garvin, David F. ;
Vrebalov, Julia ;
Kochian, Leon V. ;
Kupper, Hendrik ;
Earle, Elizabeth D. ;
Cao, Jun ;
Li, Li .
PLANT CELL, 2006, 18 (12) :3594-3605
[22]   Improving the nutritional value of Golden Rice through increased pro-vitamin A content [J].
Paine, JA ;
Shipton, CA ;
Chaggar, S ;
Howells, RM ;
Kennedy, MJ ;
Vernon, G ;
Wright, SY ;
Hinchliffe, E ;
Adams, JL ;
Silverstone, AL ;
Drake, R .
NATURE BIOTECHNOLOGY, 2005, 23 (04) :482-487
[23]   Induced β-carotene synthesis driven by triacylglycerol deposition in the unicellular alga Dunaliella bardawil [J].
Rabbani, S ;
Beyer, P ;
Von Lintig, J ;
Hugueney, P ;
Kleinig, H .
PLANT PHYSIOLOGY, 1998, 116 (04) :1239-1248
[24]   Elevation of the provitamin A content of transgenic tomato plants [J].
Römer, S ;
Fraser, PD ;
Kiano, JW ;
Shipton, CA ;
Misawa, N ;
Schuch, W ;
Bramley, PM .
NATURE BIOTECHNOLOGY, 2000, 18 (06) :666-669
[25]   Understanding carotenoid metabolism as a necessity for genetic engineering of crop plants [J].
Sandmann, Gerhard ;
Roemer, Susanne ;
Fraser, Paul D. .
METABOLIC ENGINEERING, 2006, 8 (04) :291-302
[26]   Why is Golden Rice golden (yellow) instead of red? [J].
Schaub, P ;
Al-Babili, S ;
Drake, R ;
Beyer, P .
PLANT PHYSIOLOGY, 2005, 138 (01) :441-450
[27]   Seed-specific overexpression of phytoene synthase: increase in carotenoids and other metabolic effects [J].
Shewmaker, CK ;
Sheehy, JA ;
Daley, M ;
Colburn, S ;
Ke, DY .
PLANT JOURNAL, 1999, 20 (04) :401-412
[28]   Carotenoid biosynthesis in plant storage organs: recent advances and prospects for improving plant food quality [J].
Taylor, M ;
Ramsay, G .
PHYSIOLOGIA PLANTARUM, 2005, 124 (02) :143-151
[29]   Carotenoid sequestration in plants: the role of carotenoid-associated proteins [J].
Vishnevetsky, M ;
Ovadis, M ;
Vainstein, A .
TRENDS IN PLANT SCIENCE, 1999, 4 (06) :232-235
[30]   Molecular cloning of a carotenoid-associated protein from Cucumis sativus corollas: Homologous genes involved in carotenoid sequestration in chromoplasts [J].
Vishnevetsky, M ;
Ovadis, M ;
Itzhaki, H ;
Levy, M ;
LibalWeksler, Y ;
Adam, Z ;
Vainstein, A .
PLANT JOURNAL, 1996, 10 (06) :1111-1118