Effects of Salinity on Tagetes Growth, Physiology, and Shelf Life of Edible Flowers Stored in Passive Modified Atmosphere Packaging or Treated With Ethanol

被引:29
作者
Chrysargyris, Antonios [1 ]
Tzionis, Andreas [1 ]
Xylia, Panayiota [1 ]
Tzortzakis, Nikos [1 ]
机构
[1] Cyprus Univ Technol, Dept Agr Sci Biotechnol & Food Sci, Limassol, Cyprus
来源
FRONTIERS IN PLANT SCIENCE | 2018年 / 9卷
关键词
edible flowers; tagetes; Tagetes patula; antioxidant capacity; shelf-life; hydroponics; nutraceutical foods; ESSENTIAL OIL COMPOSITION; SALT-STRESS; ANTIOXIDANT ACTIVITY; LIPID-PEROXIDATION; PHENOLIC-COMPOUNDS; SODIUM-CHLORIDE; QUALITY; PLANTS; RESPONSES; LEAVES;
D O I
10.3389/fpls.2018.01765
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Irrigation with saline water causes significant crop yield loss. However, short-term saline application might cause less negative effects on yield yet at the same time improve quality aspects of edible products. Tagetes (Tagetes patula L.) plants were subjected to salinity (0, 50, and 100 mM NaCl) and harvested flowers were stored up to 14 days in passive modified atmosphere packaging (with or without ethanol application). Salinity of 100 mM NaCl decreased plant biomass and plant size (i.e., height) and had a negative effect on physiological processes such as stomatal closure and chlorophylls content decrease. Salinity increased flower polyphenols, antioxidant activities, and total carotenoids but decreased anthocyanins, and greater impacts were found at salinity of 100 mM NaCl, providing higher antioxidant value of the edible flowers. Short-term saline exposure of tagetes plants activated metabolic processes and as a result there was an accumulation of minerals such as N, P, Na, and Zn on edible flowers. During storage, salinity maintained but ethanol application increased the flower CO2 production. Ethanol application decreased the decay of flowers subjected to 100 mM NaCl. Flower weight losses and marketability accelerated at salinity of 100 mM NaCl after 14 days of storage. Tagetes flowers demonstrated induction in both non-enzymatic (i.e., praline content) and enzymatic mechanisms (catalase) to overcome stress caused by salinity during harvest stage and/or ethanol at storage. Our results have shown that short-term exposure to salinity and/or ethanol is able to achieve higher carotenoids and anthocyanins levels and these compounds can be considered as a new source of nutraceuticals.
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页数:13
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共 63 条
  • [31] Effect of storage temperature on the quality of edible flowers
    Kelley, KM
    Cameron, AC
    Biernbaum, JA
    Poff, KL
    [J]. POSTHARVEST BIOLOGY AND TECHNOLOGY, 2003, 27 (03) : 341 - 344
  • [32] Yield, essential oil and pigment content of Calendula officinalis L. flower heads cultivated under salt stress conditions
    Khalid, Khalid A.
    Teixeira da Silva, Jaime A.
    [J]. SCIENTIA HORTICULTURAE, 2010, 126 (02) : 297 - 305
  • [33] Proline induces the expression of salt-stress-responsive proteins and may improve the adaptation of Pancratium maritimum L. to salt-stress
    Khedr, AHA
    Abbas, MA
    Wahid, AAA
    Quick, WP
    Abogadallah, GM
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2003, 54 (392) : 2553 - 2562
  • [34] Kiarostami Kh., 2010, J. Stress Physiol. Biochem., V6, P114
  • [35] Klados E, 2014, J SOIL SCI PLANT NUT, V14, P211, DOI 10.4067/S0718-95162014005000017
  • [36] Extending the Shelf Life of Edible Flowers with Controlled Release of 1-Methylcyclopropene and Modified Atmosphere Packaging
    Kou, Liping
    Turner, Ellen R.
    Luo, Yaguang
    [J]. JOURNAL OF FOOD SCIENCE, 2012, 77 (05) : S188 - S193
  • [37] Edible Flowers: A Rich Source of Phytochemicals with Antioxidant and Hypoglycemic Properties
    Loizzo, Monica Rosa
    Pugliese, Alessandro
    Bonesi, Marco
    Tenuta, Maria Concetta
    Menichini, Francesco
    Xiao, Jianbo
    Tundis, Rosa
    [J]. JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2016, 64 (12) : 2467 - 2474
  • [38] Isoprene produced by leaves protects the photosynthetic apparatus against ozone damage, quenches ozone products, and reduces lipid peroxidation of cellular membranes
    Loreto, F
    Velikova, V
    [J]. PLANT PHYSIOLOGY, 2001, 127 (04) : 1781 - 1787
  • [39] Use of sawdust, coco soil and pumice in hydroponically grown strawberry
    Marinou, E.
    Chrysargyris, A.
    Tzortzakis, N.
    [J]. PLANT SOIL AND ENVIRONMENT, 2013, 59 (10) : 452 - 459
  • [40] Flavonoid biosynthesis in white-flowered Sim carnations (Dianthus caryophyllus)
    Mato, M
    Onozaki, T
    Ozeki, Y
    Higeta, D
    Itoh, Y
    Yoshimoto, Y
    Ikeda, H
    Yoshida, H
    Shibata, M
    [J]. SCIENTIA HORTICULTURAE, 2000, 84 (3-4) : 333 - 347