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Volume 38 Issue 4
Apr.  2023
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Article Contents
SHI P T, JIANG Y H, LIN Y, et al. Cadmium Accumulation and Food Safety of First Crop and Ratoon Rice [J]. Fujian Journal of Agricultural Sciences,2023,38(4):468−474 doi: 10.19303/j.issn.1008-0384.2023.04.011
Citation: SHI P T, JIANG Y H, LIN Y, et al. Cadmium Accumulation and Food Safety of First Crop and Ratoon Rice [J]. Fujian Journal of Agricultural Sciences,2023,38(4):468−474 doi: 10.19303/j.issn.1008-0384.2023.04.011

Cadmium Accumulation and Food Safety of First Crop and Ratoon Rice

doi: 10.19303/j.issn.1008-0384.2023.04.011
  • Received Date: 2022-10-16
  • Accepted Date: 2022-10-16
  • Rev Recd Date: 2023-03-06
  • Available Online: 2023-04-14
  • Publish Date: 2023-04-28
  •   Objective  Accumulation and food safety of cadmium in first crop and ratoon rice were studied.  Method  In a greenhouse experiment, plants of Xiangliangyou 900 , touted as the “Super Rice”, were grown in pots with artificially added Cd in the soil at a rate of 0 (CK), 0.2, 0.4, 0.8, 1.2, or 1.5 mg·kg−1. Cd contents in the roots, stems, leaves, and grains of the first and ratoon crops of the rice were determined, cumulation pattern analyzed, and risk of safety for consumption assessed.  Result   Cd in various organs of the rice plants of both first and ratoon crops increased with increasing Cd in soil in the order of roots>leaves>stems>grains. In the ratoon season, the plants contained less Cd than in the first season. The roots of the first crop plants contained Cd in the range of 0.2317–0.9581 mg·kg−1, which was 5.1%–20.5% and averaging 15.2% higher than the ratoon counterparts of 0.2128–0.7802 mg·kg−1. The stems of the first crop plants had Cd in the range of 0.0212–0.0846 mg·kg−1, which was 10.8%–42.6% and averaging 29.7% higher than the ratoon counterparts of 0.0189–0.0621 mg·kg−1. In the leaves, the first crop plants showed Cd in the range of 0.0273–0.1157 mg·kg−1, which was 10.3%–65.6% averaging 45.5% higher than the ratoon plants of 0.0245–0.0689 mg·kg−1. And in the grains, the Cd content of the first crop rice was in the range of 0.0172–0.0516 mg·kg−1, which was 12.8%–53.1% averaging 33.2% higher than 0.0150–0.0312 mg·kg−1 of the ratoon plants. Other than CK, at a same level of Cd in the pot soil, significant differences on Cd contents between the two different crops of same rice plants were observed (P<0.05). The capacity of accumulating Cd ranked by different organs was roots>leaves>stems>grains. The heavy metal risk coefficients for individual organs of the ratoon rice were all less than 1.  Conclusion   Cd in various organs were less in the ratoon than the first crop rice. After harvest of first crop, the regenerated roots and stems on a ratoon rice plant did not inherit or transfer the Cd. Consequently, consumption of ratoon Xiangliangyou 900 rice would mean a reduced food safety risk for the consumers.
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  • [1]
    DONG H L, CHEN Q, WANG W Q, et al. The growth and yield of a wet-seeded rice-ratoon rice system in central China [J]. Field Crops Research, 2017, 208: 55−59. doi: 10.1016/j.fcr.2017.04.003
    [2]
    谢华安. 超级稻作再生稻高产栽培特性的研究 [J]. 杂交水稻, 2010, 25(S1):17−26.

    XIE H A. Studies on high-yielding cultivation characteristics of super hybrid rice grown as ratoon rice [J]. Hybrid Rice, 2010, 25(S1): 17−26.(in Chinese)
    [3]
    朱校奇, 邓启云, 陈春光, 等. 再生稻及超级杂交稻再生利用研究进展 [J]. 杂交水稻, 2007, 22(3):6−9.

    ZHU X Q, DENG Q Y, CHEN C G, et al. Progresses in research on ratooning rice and ratooning utilization of super hybrid rice [J]. Hybrid Rice, 2007, 22(3): 6−9.(in Chinese)
    [4]
    全国土壤污染状况调查公报(2014年4月17日)[J]. 环境教育, 2014(6): 8-10.

    Bulletin of the national survey on soil pollution (April 17, 2014)[J]. Environmental Education, 2014(6): 8-10. (in Chinese)
    [5]
    陈碧珊, 杨漫婷, 莫华萍, 等. 雷州半岛土壤: 水稻系统重金属含量特征及其迁移规律 [J]. 南方农业学报, 2022, 53(1):68−77.

    CHEN B S, YANG M T, MO H P, et al. Soil-rice system characteristics and migration regularity of heavy metal content in Leizhou Peninsula [J]. Journal of Southern Agriculture, 2022, 53(1): 68−77.(in Chinese)
    [6]
    沈体忠, 朱明祥, 肖杰. 天门市土壤—水稻系统重金属迁移积累特征及其健康风险评估 [J]. 土壤通报, 2014, 45(1):221−226.

    SHEN T Z, ZHU M X, XIAO J. Characteristics of migration and accumulation of heavy metals in Soil-Rice system of Tianmen and its health risk assessment [J]. Chinese Journal of Soil Science, 2014, 45(1): 221−226.(in Chinese)
    [7]
    陈基旺, 屠乃美, 易镇邪, 等. 湖南镉污染稻区再生稻发展需解决的重点问题 [J]. 农学学报, 2020, 10(1):32−36.

    CHEN J W, TU N M, YI Z X, et al. Rice areas contaminated by cadmium in Hunan: Key issues to be addressed in ratoon rice development [J]. Journal of Agriculture, 2020, 10(1): 32−36.(in Chinese)
    [8]
    刘国华, 邓化冰, 陈立云, 等. 中稻头季稻与再生稻的品质比较研究 [J]. 杂交水稻, 2002, 17(1):45−47.

    LIU G H, DENG H B, CHEN L Y, et al. Comparison of grain quality between main and ratooning crops of middle-season rice [J]. Hybrid Rice, 2002, 17(1): 45−47.(in Chinese)
    [9]
    姚晓云, 彭志勤, 陈春莲, 等. 头季与再生季稻米品质比较及留桩高度对品质性状的影响 [J]. 杂交水稻, 2021, 36(6):70−76.

    YAO X Y, PENG Z Q, CHEN C L, et al. Comparison of rice quality between main crop and ratoon crop and effects of stubble height on quality traits [J]. Hybrid Rice, 2021, 36(6): 70−76.(in Chinese)
    [10]
    吴延寿, 姚晓云, 曹国军, 等. 优质再生稻产量形成和稻米品质比较分析 [J]. 杂交水稻, 2019, 34(5):57−63.

    WU Y S, YAO X Y, CAO G J, et al. Analysis of yield formation and comparison of grain quality of fine quality ratoon rice [J]. Hybrid Rice, 2019, 34(5): 57−63.(in Chinese)
    [11]
    袁珅, 彭少兵. 再生稻头季和再生季稻米重金属含量的比较研究 [J]. 作物学报, 2022, 48(7):1822−1831.

    YUAN S, PENG S B. Comparison of grain heavy metal concentration between main and ratoon seasons of ratoon rice [J]. Acta Agronomica Sinica, 2022, 48(7): 1822−1831.(in Chinese)
    [12]
    陈基旺, 陈平平, 王晓玉, 等. 不同节位再生稻镉积累分配及其与头季稻的差异 [J]. 南方农业学报, 2020, 51(4):790−797.

    CHEN J W, CHEN P P, WANG X Y, et al. Cadmium accumulation and distribution in ratooning rice from different nodes and its differences with main crop [J]. Journal of Southern Agriculture, 2020, 51(4): 790−797.(in Chinese)
    [13]
    张悦妍, 郭兴强, 莫桂兰, 等. 重金属镉在土壤-水稻中迁移转化特征 [J]. 贵州农业科学, 2021, 49(9):143−149. doi: 10.3969/j.issn.1001-3601.2021.09.021

    ZHANG Y Y, GUO X Q, MO G L, et al. Migration transformation characteristics of heavy metal cadmium in soil-rice [J]. Guizhou Agricultural Sciences, 2021, 49(9): 143−149.(in Chinese) doi: 10.3969/j.issn.1001-3601.2021.09.021
    [14]
    周静, 杨洋, 孟桂元, 等. 不同镉污染土壤下水稻镉富集与转运效率 [J]. 生态学杂志, 2018, 37(1):89−94.

    ZHOU J, YANG Y, MENG G Y, et al. Cadmium accumulation and translocation efficiency of rice under different cadmium-polluted soils [J]. Chinese Journal of Ecology, 2018, 37(1): 89−94.(in Chinese)
    [15]
    周继勇, 林绿, 刘夏平, 等. 湘两优900在华南作双季超级稻高产攻关中的种植表现及高产栽培技术 [J]. 杂交水稻, 2017, 32(6):34−36.

    ZHOU J Y, LIN L, LIU X P, et al. Performance and high-yielding cultural techniques of xiangliangyou 900 grown as double-cropping super rice in South China [J]. Hybrid Rice, 2017, 32(6): 34−36.(in Chinese)
    [16]
    周鸿凯, 何觉民, 陈小丽, 等. 大田生产条件下不同品种水稻植株中镉的分布特点 [J]. 农业环境科学学报, 2010, 29(2):229−234.

    ZHOU H K, HE J M, CHEN X L, et al. The Cd uptake and distribution features in plant organs of four rice cultivars [J]. Journal of Agro-Environment Science, 2010, 29(2): 229−234.(in Chinese)
    [17]
    张子叶, 纪雄辉, 谢运河, 等. 水稻对镉和砷的吸收转运规律研究 [J]. 杂交水稻, 2020, 35(6):68−74.

    ZHANG Z Y, JI X H, XIE Y H, et al. Studies on the uptake and transport dynamics of cadmium and arsenic in rice [J]. Hybrid Rice, 2020, 35(6): 68−74.(in Chinese)
    [18]
    胡莹, 黄益宗, 段桂兰, 等. 镉对不同生态型水稻的毒性及其在水稻体内迁移转运 [J]. 生态毒理学报, 2012, 7(6):664−670.

    HU Y, HUANG Y Z, DUAN G L, et al. Cadmium toxicity and its translocation in two ecotype rice cultivars [J]. Asian Journal of Ecotoxicology, 2012, 7(6): 664−670.(in Chinese)
    [19]
    CHENG F M, ZHAO N C, XU H M, et al. Cadmium and lead contamination in japonica rice grains and its variation among the different locations in southeast China [J]. Science of the Total Environment, 2006, 359(1/2/3): 156−166.
    [20]
    LIU J G, ZHU Q S, ZHANG Z J, et al. Variations in cadmium accumulation among rice cultivars and types and the selection of cultivars for reducing cadmium in the diet [J]. Journal of the Science of Food and Agriculture, 2005, 85(1): 147−153. doi: 10.1002/jsfa.1973
    [21]
    赵中秋, 朱永官, 蔡运龙. 镉在土壤-植物系统中的迁移转化及其影响因素 [J]. 生态环境, 2005, 14(2):282−286.

    ZHAO Z Q, ZHU Y G, CAI Y L. Transport and transformation of cadmium in soil-plant systems and the influence factors [J]. Ecology and Environmental Sciences, 2005, 14(2): 282−286.(in Chinese)
    [22]
    张雨婷, 田应兵, 黄道友, 等. 典型污染稻田水分管理对水稻镉累积的影响 [J]. 环境科学, 2021, 42(5):2512−2521.

    ZHANG Y T, TIAN Y B, HUANG D Y, et al. Effects of water management on cadmium accumulation by rice (Oryza sativa L. ) growing in typical paddy soil [J]. Environmental Science, 2021, 42(5): 2512−2521.(in Chinese)
    [23]
    张燕, 江建锋, 黄奇娜, 等. 水分管理调控水稻镉污染的研究与应用进展 [J]. 中国稻米, 2021, 27(3):10−16.

    ZHANG Y, JIANG J F, HUANG Q N, et al. Advances in research and application of water management related to cadmium contamination in rice [J]. China Rice, 2021, 27(3): 10−16.(in Chinese)
    [24]
    杨小粉, 吴勇俊, 张玉盛, 等. 水分管理对水稻镉吸收的影响 [J]. 中国稻米, 2019, 25(4):34−37.

    YANG X F, WU Y J, ZHANG Y S, et al. Effects of water management on the absorption of cadmium in rice [J]. China Rice, 2019, 25(4): 34−37.(in Chinese)
    [25]
    杨小粉, 伍湘, 汪泽钱, 等. 水分管理对水稻镉砷吸收积累的影响研究 [J]. 生态环境学报, 2020, 29(10):2091−2101.

    YANG X F, WU X, WANG Z Q, et al. Effects of water management on the absorption and accumulation of cadmium and arsenic in rice [J]. Ecology and Environmental Sciences, 2020, 29(10): 2091−2101.(in Chinese)
    [26]
    吴照祥, 孙小艳, 刘腾云, 等. 中、轻度污染农田杂交水稻对Cd的吸收和累积分布 [J]. 江西农业大学学报, 2019, 41(3):423−430.

    WU Z X, SUN X Y, LIU T Y, et al. Cd accumulation, distribution and transport in varieties of hybrid rice grown in medium to low Cd-polluted farmland [J]. Acta Agriculturae Universitatis Jiangxiensis, 2019, 41(3): 423−430.(in Chinese)
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