Association between iron, zinc and protein concentration in the embryo and endosperm regions of rice grain

被引:0
作者
Kampuang, K. [1 ]
Jaksomsak, P. [1 ]
Prom-u-thai, C. [1 ,2 ]
机构
[1] Chiang Mai Univ, Agron Div, Dept Plant & Soil Sci, Fac Agr, Chiang Mai 50200, Thailand
[2] Chiang Mai Univ, Lanna Rice Res Ctr, Chiang Mai 50200, Thailand
来源
INTERNATIONAL FOOD RESEARCH JOURNAL | 2017年 / 24卷 / 05期
关键词
Brown rice; Starchy endosperm; Embryo; Grain region; ORYZA-SATIVA L; GENOTYPIC VARIATION; ALEURONE LAYER; TISSUES; BIOFORTIFICATION; ACCUMULATION; DEFICIENCY; FERTILIZER; BODIES;
D O I
暂无
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
This study evaluated the relationships between iron (Fe), zinc (Zn) and protein concentrations in the embryo and endosperm regions of rice grain and its relationship to the total concentrations of these nutrients in brown rice. This study used 12 genotypes of brown rice with wide variations in nutrient concentrations. All genotypes were grown in the same condition and management to avoid environmental effects on nutrients concentration in rice grain. Brown rice was separated into two regions (embryo and endosperm intact with the pericarp) for the nutrient concentration analysis. Nutrient concentrations varied widely, ranging from 47 to 166 mg kg(-1) for Zn, 26 to 80 mg kg(-1) for Fe and 13 to 25% for protein in the embryo region; and from 13 to 37 mg kg(-1) for Zn, 4 to 19 mg kg(-1) for Fe and 7 to 13% for protein in the endosperm region. Zn, Fe and protein concentrations were 4.7, 6.5 and 2.0 times higher, respectively, in the embryo than the endosperm. Different relationships between nutrients were found within the embryo and endosperm regions, with correlations found between concentrations of Fe and Zn, Fe and protein and Zn and protein in the embryo, but only between Fe and protein in the endosperm. The concentrations of all nutrients in the endosperm and embryo significantly influenced their total concentration in brown rice, with the endosperm contributing the most. This study confirmed the possibility of the embryo and endosperm binding nutrients differently. In selecting genotypes of brown rice for high levels of nutrients, either for consumption and/or breeding purposes, nutrient levels in both the embryo and endosperm should be considered, as concentrations there, particularly in the starchy endosperm, significantly influenced the overall nutrient concentrations in brown rice. (c) All Rights Reserved
引用
收藏
页码:1919 / 1924
页数:6
相关论文
共 50 条
[21]   Genome-wide association analysis of grain iron and zinc in rice grown under agroclimatic sites with contrasting soil iron status [J].
Kumar, Amit ;
Singh, Vikram Jeet ;
Bhowmick, Prolay Kumar ;
Nandakumar, Shekharappa ;
Yadav, Sunaina ;
Krishnan, Subbaiyan Gopala ;
Ellur, Ranjith Kumar ;
Bollinedi, Haritha ;
Singh, Ashok Kumar ;
Vinod, Kunnummal Kurungara .
FRONTIERS IN PLANT SCIENCE, 2025, 16
[22]   Winter Wheat Grain Quality, Zinc and Iron Concentration Affected by a Combined Foliar Spray of Zinc and Iron Fertilizers [J].
Niyigaba, Etienne ;
Twizerimana, Angelique ;
Mugenzi, Innocent ;
Ngnadong, Wansim Aboubakar ;
Ye, Yu Ping ;
Wu, Bang Mo ;
Hai, Jiang Bo .
AGRONOMY-BASEL, 2019, 9 (05)
[23]   GIANT EMBRYO encodes CYP78A13, required for proper size balance between embryo and endosperm in rice [J].
Nagasawa, Nobuhiro ;
Hibara, Ken-Ichiro ;
Heppard, Elmer P. ;
Vander Velden, Kent A. ;
Luck, Stanley ;
Beatty, Mary ;
Nagato, Yasuo ;
Sakai, Hajime .
PLANT JOURNAL, 2013, 75 (04) :592-605
[24]   Zinc and Iron Concentration as Affected by Nitrogen Fertilization and Their Localization in Wheat Grain [J].
Singh, Bal R. ;
Timsina, Yadu N. ;
Lind, Ole C. ;
Cagno, Simone ;
Janssens, Koen .
FRONTIERS IN PLANT SCIENCE, 2018, 9
[25]   Genome-Wide Association Mapping Identifies Key Genomic Regions for Grain Zinc and Iron Biofortification in Bread Wheat [J].
Juliana, Philomin ;
Govindan, Velu ;
Crespo-Herrera, Leonardo ;
Mondal, Suchismita ;
Huerta-Espino, Julio ;
Shrestha, Sandesh ;
Poland, Jesse ;
Singh, Ravi P. .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[26]   Grain zinc concentration and its relation to soil nutrient availability in different wheat cropping regions of China [J].
Huang, Tingmiao ;
Huang, Qiannan ;
She, Xu ;
Ma, Xiaolong ;
Huang, Ming ;
Cao, Hanbing ;
He, Gang ;
Liu, Jinshan ;
Liang, Dongli ;
Malhi, Sukhdev S. ;
Wang, Zhaohui .
SOIL & TILLAGE RESEARCH, 2019, 191 :57-65
[27]   Variation of grain zinc, phytate concentration and phytate : Zn molar ratio in unpolished and polished rice affected by foliar zinc application among Thai rice varieties [J].
Bodeerath, Sitthikorn ;
Jumrus, Suchada ;
Veeradittakit, Jeeraporn ;
Utasee, Suchila ;
Jamjod, Sansanee ;
Prom-u-Thai, Chanakan .
PLANT PRODUCTION SCIENCE, 2024, 27 (04) :304-319
[28]   Nitrogen fertilizer increases grain zinc along with yield in high yield rice varieties initially low in grain zinc concentration [J].
Khampuang, Kankunlanach ;
Rerkasem, Benjavan ;
Lordkaew, Sithisavet ;
Prom-u-thai, Chanakan .
PLANT AND SOIL, 2021, 467 (1-2) :239-252
[29]   Improved nitrogen status enhances zinc and iron concentrations both in the whole grain and the endosperm fraction of wheat [J].
Kutman, Umit Bans ;
Yildiz, Bahar ;
Cakmak, Ismail .
JOURNAL OF CEREAL SCIENCE, 2011, 53 (01) :118-125
[30]   Genetic variation for grain iron and zinc concentration in the US sorghum [Sorghum bicolor (L.) Moench] association panel [J].
Djanaguiraman, M. ;
Vimala, K. ;
Sofi, P. A. ;
Perumal, R. ;
Prasad, P. V. V. .
CROP SCIENCE, 2024, 64 (05) :2652-2665