Effects of Salinity Stress on Carotenoids, Anthocyanins, and Color of Diverse Tomato Genotypes

被引:133
作者
Borghesi, Eva [1 ]
Lourdes Gonzalez-Miret, M. [2 ]
Luisa Escudero-Gilete, M. [2 ]
Malorgio, Fernando [1 ]
Heredia, Francisco J. [2 ]
Melendez-Martinez, Antonio J. [2 ]
机构
[1] Univ Pisa, Dipartimento Biol Plante Agr, I-56124 Pisa, Italy
[2] Univ Seville, Fac Farm, Dept Nutr & Food Sci, Food Colour & Qual Lab, E-41012 Seville, Spain
关键词
Anthocyanin fruit type (Aft) tomato; Atroviolaceum (Aty) tomato; carotenoids; color; image analysis; lycopene; salinity stress; Sun Black tomato (SB); LYCOPERSICON-ESCULENTUM; SALT STRESS; ANTIOXIDANTS; PENNELLII; FRUITS; BETA;
D O I
10.1021/jf2021623
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
One nonanthocyanin-accumulating (Ailsa Craig) and three anthocyanin-accumulating tomato genotypes (Anthocyanin fruit type, Atroviolaceum, and Sun Black) were analyzed to assess differences in their carotenoid and anthocyanin levels and color and to evaluate the effects of nutrient solutions with different salt concentrations on these parameters The carotenoid content of control Atroviolaceum tomatoes was ca. 2-2 5-fold higher relative to the other two types, and the color of its puree could be visually distinguished from those of other genotypes Salinity stress led in some cases to a 2-3-fold increase in the lycopene content Saline treatment increased the accumulation of total anthocyanins in fruits of Sun Black (2-fold increase), while it reduced it in fruits of Anthocyanin (10-fold decrease) In general, the treatment increased the differences in color, of,different purees These results indicate that salinity stress can lead to similar or higher increases in tomato carotenoids than those achieved by genetic engineering In addition; these changes were accompanied by visually discernible color differences in tomato products Our findings show the considerable potential of exploiting saline soils to obtain tomatoes with higher levels of secondary metabolites like carotenoids and anthocyanins
引用
收藏
页码:11676 / 11682
页数:7
相关论文
共 35 条
[21]  
Melendez Martinez A. J, 2010, FASEB J, V24, P539
[22]   Accumulation of health promoting phytochemicals in wild relatives of tomato and their contribution to in vitro antioxidant activity [J].
Melendez-Martinez, Antonio J. ;
Fraser, Paul D. ;
Bramley, Peter M. .
PHYTOCHEMISTRY, 2010, 71 (10) :1104-1114
[23]  
Melgosa M., 2001, Opt. Pura Apl, V34, P1
[24]   Characterization of tomatoes expressing anthocyanin in the fruit [J].
Mes, Peter J. ;
Boches, Peter ;
Myers, James R. ;
Durst, Robert .
JOURNAL OF THE AMERICAN SOCIETY FOR HORTICULTURAL SCIENCE, 2008, 133 (02) :262-269
[25]   Salt stress induces up-regulation of an efficient chloroplast antioxidant system in the salt-tolerant wild tomato species Lycopersicon pennellii but not in the cultivated species [J].
Mittova, V ;
Tal, M ;
Volokita, M ;
Guy, M .
PHYSIOLOGIA PLANTARUM, 2002, 115 (03) :393-400
[26]  
Pazmiño-Durán EA, 2001, FOOD CHEM, V73, P327, DOI 10.1016/S0308-8146(00)00305-8
[27]   Seasonal variations in antioxidant components of cherry tomatoes (Lycopersicon esculentum cv. Naomi F1) [J].
Raffo, A ;
La Malfa, G ;
Fogliano, V ;
Malani, G ;
Quaglia, G .
JOURNAL OF FOOD COMPOSITION AND ANALYSIS, 2006, 19 (01) :11-19
[28]   Exploitation of Dunaliella for β-carotene production [J].
Raja, R. ;
Hemaiswarya, S. ;
Rengasamy, R. .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2007, 74 (03) :517-523
[29]   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
[30]   An alternative pathway to β-carotene formation in plant chromoplasts discovered by map-based cloning of Beta and old-gold color mutations in tomato [J].
Ronen, G ;
Carmel-Goren, L ;
Zamir, D ;
Hirschberg, J .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (20) :11102-11107