A detailed and comprehensive study of amaranth (Amaranthus cruentus L.) oil fatty profile

被引:65
|
作者
León-Camacho, M [1 ]
García-González, DL [1 ]
Aparicio, R [1 ]
机构
[1] CSIC, Inst Grasa, Seville 41012, Spain
关键词
amaranth oil; triglycerides; fatty acids; hydrocarbons; sterols;
D O I
10.1007/s002170100340
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
The oil of Amaranthus cruentus has been characterized by major and minor compounds. The series of fatty acids, triglycerides, sterols, methylsterols, terpenic and aliphatic alcohols, tocopherols, and hydrocarbons have been identified, by standards and mass spectrometry, and quantified by HRGC and HPLC. The content of these chemical compounds, together with the equivalent carbon numbers (ECN) and triglyceride carbon numbers (TCN), have been compared with the results of other edible vegetable and cereal oils. Composition of hydrocarbons is remarkable; mostly the high content of squalene (4.16 g/k-g of seed) as well as concentration of n-alkenes (C23:1 -C33:1) that reaches 332 ppm, while the concentration of n-alkanes (C23-C33) is only 155 ppm. The high concentration of beta -tocopherol (546 ppm) and the profile of fatty acids show that amaranth oil is not protected against rapid oxidation while most of the sterols are esterified. Pharmaceutical and industrial applications of the most unique chemical compounds are also given.
引用
收藏
页码:349 / 355
页数:7
相关论文
共 50 条
  • [21] Association of Papaya leaf curl virus with the leaf curl disease of grain amaranth (Amaranthus cruentus L.) in India
    A. Srivastava
    M. Jaidi
    S. Kumar
    S. K. Raj
    S. Shukla
    Phytoparasitica, 2015, 43 : 97 - 101
  • [22] Effect of various NPK fertilizer doses on total antioxidant capacity of soil and amaranth leaves (Amaranthus cruentus L.)
    Skwarylo-Bednarz, B.
    Krzepilko, A.
    INTERNATIONAL AGROPHYSICS, 2009, 23 (01) : 61 - 65
  • [23] Characterization of a new granule-bound starch synthase gene found in amaranth grains (Amaranthus cruentus L.)
    Park, Young-Jun
    Nishikawa, Tomotaro
    Matsushima, Kenichi
    Nemoto, Kazuhiro
    MOLECULAR BREEDING, 2017, 37 (09)
  • [24] ADVENTITIOUS SHOOTS INDUCTION OF AMARANTHUS CRUENTUS L. IN VITRO
    Gajdosova, Alena
    Libiakova, Gabriela
    Iliev, Ivan
    Hricova, Andrea
    PROPAGATION OF ORNAMENTAL PLANTS, 2013, 13 (01): : 33 - 39
  • [25] Growth, accumulation and distribution of dry matter in two varieties of amaranth (Amaranthus hypochondriacus L. y A. cruentus L.) under fertigation
    Monroy-Pedroza, Diego
    de Jesus Martinez-Hernandez, Jose
    Gavi-Reyes, Francisco
    Torres-Aquino, Margarita
    Hernandez-Rios, Ismael
    BIOTECNIA, 2021, 23 (03): : 14 - 21
  • [26] Yield and yield component relationships in Amaranthus cruentus L.
    Showemimo, F. A.
    Olarewaju, J. D.
    TROPICAL AGRICULTURE, 2004, 81 (03): : 175 - 178
  • [27] EFFECT OF VARIOUS DOSES OF NPK FERTILIZERS ON CHLOROPHYLL CONTENT IN THE LEAVES OF TWO VARIETIES OF AMARANTH (Amaranthus cruentus L.)
    Skwarylo-Bednarz, Barbara
    Krzepilko, Anna
    ECOLOGICAL CHEMISTRY AND ENGINEERING A-CHEMIA I INZYNIERIA EKOLOGICZNA A, 2009, 16 (10): : 1373 - 1378
  • [28] Pigment Analysis and Tissue Culture of Amaranthus cruentus L.
    Yaacob, J. S.
    Hwei, L. C.
    Taha, R. M.
    Nor, N. A. Mat
    Aziz, N.
    I INTERNATIONAL SYMPOSIUM ON SUSTAINABLE VEGETABLE PRODUCTION IN SOUTHEAST ASIA, 2012, 958 : 171 - 178
  • [29] Amaranthus cruentus L.: Phytochemical characterization and phytotoxic activity
    Allemann, I.
    Cawood, M. E.
    Allemann, J.
    SOUTH AFRICAN JOURNAL OF BOTANY, 2017, 109 : 325 - 325
  • [30] Cytogenetic characterization of Amaranthus caudatus L. and Amaranthus hybridus subsp. cruentus (L.) Thell.
    V. Prajitha
    J. E. Thoppil
    Cytotechnology, 2018, 70 : 95 - 101