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水杨酸对镉胁迫下不结球白菜幼苗生长及生理的响应

陈华 陈永快 王涛 黄语燕 廖水兰 兰婕 康育鑫

陈华,陈永快,王涛,等. 水杨酸对镉胁迫下不结球白菜幼苗生长及生理的响应 [J]. 福建农业学报,2020,35(12):1321−1329 doi: 10.19303/j.issn.1008-0384.2020.12.005
引用本文: 陈华,陈永快,王涛,等. 水杨酸对镉胁迫下不结球白菜幼苗生长及生理的响应 [J]. 福建农业学报,2020,35(12):1321−1329 doi: 10.19303/j.issn.1008-0384.2020.12.005
CHEN H, CHEN Y K, WANG T, et al. Effects of Salicylic Acid on Growth and Physiology of Non-heading Chinese Cabbage Seedlings under Cadmium Stress [J]. Fujian Journal of Agricultural Sciences,2020,35(12):1321−1329 doi: 10.19303/j.issn.1008-0384.2020.12.005
Citation: CHEN H, CHEN Y K, WANG T, et al. Effects of Salicylic Acid on Growth and Physiology of Non-heading Chinese Cabbage Seedlings under Cadmium Stress [J]. Fujian Journal of Agricultural Sciences,2020,35(12):1321−1329 doi: 10.19303/j.issn.1008-0384.2020.12.005

水杨酸对镉胁迫下不结球白菜幼苗生长及生理的响应

doi: 10.19303/j.issn.1008-0384.2020.12.005
基金项目: 福建省农业科学院设施专项(A20170-3);福建省农业科学院智慧农业创新团队项目(STIT2017-2-12);福建省农业科学院青年人才自由探索创新项目(AA2018-26);福建省农业科学院科技示范基地项目(sfjd1829);福建省发改委项目(闽发改投资[2018]206号)
详细信息
    作者简介:

    陈华(1976−),男,硕士,副研究员,研究方向:生态循环农业(Email:fjch1976@163.com

  • 中图分类号: S 634.3

Effects of Salicylic Acid on Growth and Physiology of Non-heading Chinese Cabbage Seedlings under Cadmium Stress

  • 摘要:   目的  探讨水杨酸(Salicylic acid,SA)诱导不结球白菜抗镉(Cadmium,Cd)胁迫的响应及对Cd吸收积累和转运差异,为利用SA减轻Cd胁迫对不结球白菜的伤害提供理论依据。  方法  以华冠不结球白菜为试验材料,研究Cd胁迫(50 mg·L−1 CdCl·2.5H2O)及喷施SA(0.01~0.5 mmol·L−1)对幼苗生长、光合色素含量、根系活力、渗透调节物质、丙二醛(MDA)含量、抗氧化酶活性和Cd积累的影响。  结果  与空白对照(CK1)相比,Cd胁迫对照组(50 mg·L−1 CdCl·2.5H2O,CK2)显著抑制不结球白菜幼苗的生长,降低光合色素含量、根系活力、蛋白质含量、脯氨酸(Pro)含量和抗氧化酶活性,提高丙二醛(MDA)含量。在Cd胁迫下,喷施0.01~0.05 mmol·L−1SA可以促进不结球白菜幼苗生长,以0.05 mmol·L−1SA处理效果最好;在Cd胁迫10 d时,不结球白菜幼苗的根冠比、脯氨酸含量、POD、CAT活性较CK2提高140%、44.98%、118.18%、70.43%,且显著降低幼苗地上部分Cd含量和转运系数;而喷施0.1~0.5 mmol·L−1SA幼苗生长受抑。  结论  0.05 mmol·L−1SA是最适宜的喷施浓度,能有效缓解Cd对不结球白菜幼苗的毒害,提高幼苗的耐Cd性。
  • 图  1  外源SA对Cd胁迫下不结球白菜幼苗根系活力的影响

    注:同处理数值不同字母表示处理间差异达到0.05显著水平;图25同.

    Figure  1.  Effect of exogenous SA on root activity of non-heading Chinese cabbage seedlings under Cd-stress

    Note: :Different letters of the same treatment indicated that the difference was significant at 0.05 level. The same as Fig. 2-5.

    图  2  外源SA对Cd胁迫下不结球白菜幼苗叶片可溶性蛋白含量的影响

    Figure  2.  Effect of exogenous SA on soluble protein content of non-heading Chinese cabbage seedling leaves under Cd-stress

    图  3  外源SA对Cd胁迫下不结球白菜幼苗叶片脯氨酸含量的影响

    Figure  3.  Effect of exogenous SA on proline content of non-heading Chinese cabbage seedling leaves under Cd-stress

    图  4  外源SA对Cd胁迫下不结球白菜幼苗叶片MDA含量的影响

    Figure  4.  Effect of exogenous SA on MDA content in non-heading Chinese cabbage seedling leaves under Cd-stress

    图  5  外源SA对Cd胁迫下不结球白菜幼苗叶片抗氧化酶活性的影响

    Figure  5.  Effect of exogenous SA on antioxidant enzyme activities of non-heading Chinese cabbage seedling leaves under Cd-stress

    表  1  外源SA对Cd胁迫下不结球白菜幼苗生长的影响

    Table  1.   Effect of exogenous SA on growth of non-heading Chinese cabbage seedlings under Cd-stress

    处理时间
    Processing time/d
    SA/(mmol·L−1株高
    Plant height/cm
    茎粗
    Stem thickness/cm
    根长
    Root length/cm
    叶面积
    Leaf area/cm2
    根冠比
    Root shoot ratio
    壮苗指数
    seedling index
    5 0(CK1 10.67±0.35 ab 0.28±0.02 a 8.37±0.32 de 12.99±1.00 b 0.12±0.02 a 0.69±0.03 a
    0(CK2 9.93±0.40 b 0.23±0.02 b 7.90±0.46 e 12.35±0.73 b 0.07±0.02 c 0.48±0.04 b
    0.01 11.57±0.80 a 0.28±0.03 a 9.70±0.10 b 15.19±1.60 a 0.09±0.00 bc 0.52±0.03 b
    0.05 10.63±0.85 ab 0.27±0.03 a 11.83±0.21 a 16.33±0.62 a 0.09±0.01 b 0.50±0.09 b
    0.1 10.37±0.65 b 0.21±0.02 bc 9.17±0.29 c 11.25±1.32 bc 0.08±0.01 bc 0.48±0.01 b
    0.5 8.43±0.32 c 0.17±0.01 c 8.60±0.17 d 9.89±0.18 c 0.08±0.00 bc 0.53±0.04 b
    10 0(CK1 10.87±0.10 b 0.29±0.03 ab 12.00±1.13 a 17.31±0.55 a 0.20±0.02 a 0.61±0.01 a
    0(CK2 10.23±0.25 c 0.26±0.02 bc 8.90±0.36 b 13.29±1.45 b 0.08±0.04 c 0.42±0.06 b
    0.01 11.77±0.21 a 0.33±0.02 a 9.17±0.58 b 16.65±0.34 a 0.12±0.00 bc 0.50±0.07 ab
    0.05 10.80±0.26 b 0.32±0.02 a 9.60±0.36 b 16.55±1.41 a 0.18±0.08 ab 0.44±0.04 b
    0.1 10.47±0.15 bc 0.22±0.01 cd 9.33±1.26 b 12.26±0.32 b 0.09±0.03 c 0.43±0.09 b
    0.5 10.27±0.25 c 0.20±0.01 d 9.50±0.50 b 12.18±1.06 b 0.10±0.01 c 0.41±0.05 b
    注:同列同处理数值不同字母表示处理间差异达到0.05显著水平;表23同。
    Note: Data with different letters on same column under same treatment indicate significant difference at level of 0.05. Same for below.
    下载: 导出CSV

    表  2  外源SA对Cd胁迫下不结球白菜幼苗叶片光合色素的影响

    Table  2.   Effect of exogenous SA on photosynthetic pigment in non-heading Chinese cabbage seedling leaves under Cd-stress

    处理时间
    Processing time/d
    SA/(mmol·L−1叶绿素a
    Chlorophyll a/(mg·g−1
    叶绿素b
    Chlorophyll b/(mg·g−1
    叶绿素(a+b)
    Total chlorophyll content/(mg·g−1
    类胡萝卜素
    Carotenoid/(mg·g−1
    5 0(CK1 0.43±0.01 de 0.16±0.00 c 0.59±0.01 c 0.12±0.01 ab
    0(CK2 0.42±0.01 e 0.10±0.01 e 0.52±0.01 d 0.10±0.00 c
    0.01 0.59±0.00 a 0.21±0.01 a 0.80±0.01 a 0.13±0.01 a
    0.05 0.56±0.01 b 0.18±0.01 b 0.74±0.03 b 0.12±0.02 ab
    0.1 0.44±0.00 cd 0.15±0.01 c 0.59±0.00 c 0.11±0.01 bc
    0.5 0.46±0.02 c 0.12±0.01 d 0.58±0.02 c 0.09±0.01 c
    10 0(CK1 1.06±0.01 a 0.35±0.03 a 1.41±0.04 a 0.28±0.00 ab
    0(CK2 0.97±0.01 b 0.28±0.01 b 1.25±0.01 b 0.24±0.01 c
    0.01 1.09±0.01 a 0.35±0.01 a 1.44±0.02 a 0.27±0.02 b
    0.05 1.06±0.02 a 0.35±0.02 a 1.40±0.02 a 0.30±0.01 a
    0.1 0.84±0.02 c 0.26±0.00 bc 1.10±0.02 c 0.25±0.00 c
    0.5 0.77±0.04 d 0.23±0.01 c 1.00±0.05 d 0.21±0.00 d
    下载: 导出CSV

    表  3  外源SA对Cd胁迫下不结球白菜幼苗地上、地下部分Cd含量及转运系数的影响

    Table  3.   Effect of exogenous SA on Cd Content and transport coefficient of aboveground and underground parts of non-heading Chinese cabbage seedlings under Cd-stress

    处理时间
    Processing time/d
    SA/mmol·L−1地上部分Cd含量
    Cd content in above ground/(mg·kg−1
    地下部分Cd含量
    Cd content in underground part/(mg·kg−1
    转运系数
    Transport coefficient
    50(CK2)483.33±7.02 a215.97±4.80 a2.24±0.02 a
    0.01319.03±5.67 c185.97±4.28 b1.72±0.07 c
    0.05251.87±3.48 e167.53±4.28 d1.50±0.03 d
    0.1269.23±3.00 d175.37±4.11 c1.54±0.02 d
    0.5334.87±4.45 b174.40±4.75 cd1.92±0.03 b
    100(CK2)677.70±2.33 a397.73±3.00 a1.70±0.01 b
    0.01534.33±3.52 c348.10±2.98 c1.54±0.02 c
    0.05503.47±2.34 d375.77±4.98 b1.34±0.02 d
    0.1594.07±4.44 b338.67±4.77 d1.75±0.04 a
    0.5598.13±3.44 b350.77±3.31 c1.71±0.02 b
    下载: 导出CSV
  • [1] 孙丽娟, 秦秦, 宋科, 等. 镉污染农田土壤修复技术及安全利用方法研究进展 [J]. 生态环境学报, 2018, 27(7):1377−1386.

    SUN L J, QIN Q, SONG K, et al. The remediation and safety utilization techniques for Cd contaminated farmland soil: A review [J]. Ecology and Environmental Sciences, 2018, 27(7): 1377−1386.(in Chinese)
    [2] 陈雯, 龙翔, 王宁涛, 等. 福州市土壤重金属污染现状评价与分析 [J]. 安全与环境工程, 2015, 22(5):68−72.

    CHEN W, LONG X, WANG N T, et al. Pollution evaluation and analysis of heavy metals in soils of Fuzhou City [J]. Safety and Environmental Engineering, 2015, 22(5): 68−72.(in Chinese)
    [3] 张鹏帅, 朱旭彬, 苏雪玲, 等. 福州市郊农田土壤与蔬菜重金属污染状况分析 [J]. 福建师范大学学报(自然科学版), 2018, 34(3):85−94.

    ZHANG P S, ZHU X B, SU X L, et al. Analysing the pollution of heavy metal contamination in soils and vegetables in Fuzhou suburb [J]. Journal of Fujian Normal University (Natural Science Edition), 2018, 34(3): 85−94.(in Chinese)
    [4] 王苗苗, 强沥文, 王伟, 等. 纳米二氧化钛对镉胁迫下小白菜毒性效应的影响 [J]. 农业环境科学学报, 2020, 39(6):1185−1195. doi: 10.11654/jaes.2019-1422

    WANG M M, QIANG L W, WANG W, et al. Effects of nano titanium dioxide on the toxicity of Chinese cabbage under cadmium stress [J]. Journal of Agro-Environment Science, 2020, 39(6): 1185−1195.(in Chinese) doi: 10.11654/jaes.2019-1422
    [5] 肖旭峰, 李猛, 龙俊敏, 等. 镉诱导小白菜活性氧及抗氧化酶活性与自噬关系分析 [J]. 江西农业大学学报, 2019, 41(5):873−880.

    XIAO X F, LI M, LONG J M, et al. Relationship of active oxygen, antioxidant enzyme activity and autophagy under Cd stress in pakchoi [J]. Acta Agriculturae Universitatis Jiangxiensis, 2019, 41(5): 873−880.(in Chinese)
    [6] 刘自力, 黄一凡, 朱正波, 等. 叶面喷施褪黑素对小白菜幼苗镉耐性的影响 [J]. 植物生理学报, 2018, 54(4):660−668.

    LIU Z L, HUANG Y F, ZHU Z B, et al. Effects of foliar feeding of melatonin on cadmium tolerance of Chinese cabbage seedlings [J]. Plant Physiology Journal, 2018, 54(4): 660−668.(in Chinese)
    [7] CHUNG T, PHILLIPS A R, VIERSTRA R D. ATG8 lipidation and ATG8-mediated autophagy in Arabidopsis require ATG12 expressed from the differentially controlled ATG12A AND ATG12B loci [J]. The Plant Journal, 2010, 62(3): 483−493. doi: 10.1111/j.1365-313X.2010.04166.x
    [8] 谢玉英. 水杨酸与植物抗逆性的关系 [J]. 生物学杂志, 2007, 24(4):12−15, 20. doi: 10.3969/j.issn.2095-1736.2007.04.004

    XIE Y Y. Relationship between salicylicacid and anti-adversity in plants [J]. Journal of Biology, 2007, 24(4): 12−15, 20.(in Chinese) doi: 10.3969/j.issn.2095-1736.2007.04.004
    [9] 陈珍. 水杨酸对镉胁迫下花椰菜种子萌发及幼苗生长的影响 [J]. 种子, 2009, 28(2):39−43. doi: 10.3969/j.issn.1001-4705.2009.02.012

    CHEN Z. Effects of salicylic acid on seeds germination and seedlings growth of cauliflower under cadmium stress [J]. Seed, 2009, 28(2): 39−43.(in Chinese) doi: 10.3969/j.issn.1001-4705.2009.02.012
    [10] 王瑞波. 水杨酸对镉胁迫小麦叶绿素荧光参数的影响 [J]. 生物技术通报, 2017, 33(7):96−99.

    WANG R B. Effect of salicylic acid on chlorophyll fluorescence parameters in wheat under cadmium stress [J]. Biotechnology Bulletin, 2017, 33(7): 96−99.(in Chinese)
    [11] 任艳芳, 何俊瑜, 王思梦, 等. 水杨酸对镉胁迫下莴苣幼苗生长和氧化胁迫的缓解效应 [J]. 西南农业学报, 2009, 22(6):1567−1570. doi: 10.3969/j.issn.1001-4829.2009.06.015

    REN Y F, HE J Y, WANG S M, et al. Relieving effect of exogenous salicylic acid on seedling growth and oxidative stress of lettuce under cadmium stress [J]. Southwest China Journal of Agricultural Sciences, 2009, 22(6): 1567−1570.(in Chinese) doi: 10.3969/j.issn.1001-4829.2009.06.015
    [12] 王小红, 郭军康, 贾红磊, 等. 外源水杨酸缓解镉对番茄毒害作用的研究 [J]. 农业环境科学学报, 2019, 38(12):2705−2714. doi: 10.11654/jaes.2019-0754

    WANG X H, GUO J K, JIA H L, et al. The effect of exogenous salicylic acid on alleviating cadmium toxicity in tomato plants [J]. Journal of Agro-Environment Science, 2019, 38(12): 2705−2714.(in Chinese) doi: 10.11654/jaes.2019-0754
    [13] 叶静渊. 我国油菜的名实考订及其栽培起源 [J]. 自然科学史研究, 1989, 8(2):158−165.

    YE J Y. The name and reality of the rape (brassjca campestris and Brassica juncea) in China [J]. Studies in the History of Natural Sciences, 1989, 8(2): 158−165.(in Chinese)
    [14] 侯喜林, 宋小明. 不结球白菜种质资源的研究与利用 [J]. 南京农业大学学报, 2012, 35(05):35−42.

    HOU X L, SONG X M. Research and utilization of Brassica campestris ssp. chinensis Makino(non-heading Chinese cabbage)germplasm resources [J]. Journal of Nanjing Agricultural University, 2012, 35(05): 35−42.(in Chinese)
    [15] ZHOU H, YANG W T, ZHOU X, et al. Accumulation of heavy metals in vegetable species planted in contaminated soils and the health risk assessment [J]. International Journal of Environmental Research and Public Health, 2016, 13(3): E289. doi: 10.3390/ijerph13030289
    [16] 陈永快, 王涛, 黄语燕, 等. 不同品种叶用莴苣营养液膜栽培性状及产量分析 [J]. 福建农业学报, 2019, 34(10):1158−1166.

    CHEN Y K, WANG T, HUANG Y Y, et al. Greenhouse nutrient film technique cultivation and production of lettuce [J]. Fujian Journal of Agricultural Sciences, 2019, 34(10): 1158−1166.(in Chinese)
    [17] 秦伟, 刘震, 王民乾, 等. 复配基质对西瓜幼苗光合能力、壮苗指数及根系活力的影响 [J]. 天津农业科学, 2020, 26(6):21−24. doi: 10.3969/j.issn.1006-6500.2020.06.006

    QIN W, LIU Z, WANG M Q, et al. Effect of compound substrate on the photosynthetic capacity, seedling strength index and root activity of watermelon seedlings [J]. Tianjin Agricultural Sciences, 2020, 26(6): 21−24.(in Chinese) doi: 10.3969/j.issn.1006-6500.2020.06.006
    [18] 张宪政. 植物叶绿素含量测定: 丙酮乙醇混合液法 [J]. 辽宁农业科学, 1986(3):26−28.

    ZHANG X Z. Determination of plant chlorophyll content-acetone-ethanol mixture method [J]. Liaoning Agricultural Science, 1986(3): 26−28.(in Chinese)
    [19] 杨晴, 郭守华. 植物生理生化实验[M]. 北京: 中国农业科学技术出版社, 2010: 9.
    [20] 王学奎. 植物生理生化实验原理和技术[M]. 北京: 高等教育出版社, 2006.
    [21] ZAYED A, GOWTHAMAN S, TERRY N. Phytoaccumulation of trace elements by wetland plants: I. duckweed [J]. Journal of Environmental Quality, 1998, 27(3): 715−721.
    [22] 刘俊祥, 魏树强, 翟飞飞, 等. Cd2+胁迫下多年生黑麦草的生长与生理响应 [J]. 核农学报, 2015, 29(3):587−594. doi: 10.11869/j.issn.100-8551.2015.03.0587

    LIU J X, WEI S Q, ZHAI F F, et al. Growth and physiology response of perennial ryegrass to Cd2+Stress [J]. Journal of Nuclear Agricultural Sciences, 2015, 29(3): 587−594.(in Chinese) doi: 10.11869/j.issn.100-8551.2015.03.0587
    [23] RIZWAN M, ALI S, QAYYUM M F, et al. Use of Maize (Zea mays L.) for phytomanagement of Cd-contaminated soils: A critical review [J]. Environmental Geochemistry and Health, 2017, 39(2): 259−277. doi: 10.1007/s10653-016-9826-0
    [24] 贺国强, 刘茜, 郭振楠, 等. 镉胁迫对烤烟叶片光合和叶绿素荧光特性的影响 [J]. 华北农学报, 2016, 31(S1):388−393. doi: 10.7668/hbnxb.2016.S1.065

    HE G Q, LIU Q, GUO Z N, et al. Effects of cadmium stress on photosynthetic and characteristics, chlorophyll fluorescence in leaves of flue-cured tobacco [J]. Acta Agriculturae Boreali-Sinica, 2016, 31(S1): 388−393.(in Chinese) doi: 10.7668/hbnxb.2016.S1.065
    [25] 王红霞, 施国新, 徐勤松, 等. Cr6+胁迫对槐叶苹叶片光合生理特征及超微结构的影响 [J]. 西北植物学报, 2008(11):2244−2250. doi: 10.3321/j.issn:1000-4025.2008.11.017

    WANG H X, SHI G X, XU Q S, et al. Photosynthetic physiological characteristics and ultrastructure of Salvinia natans leaves under Cr6+ stress [J]. Acta Botanica Boreali-Occidentalia Sinica, 2008(11): 2244−2250.(in Chinese) doi: 10.3321/j.issn:1000-4025.2008.11.017
    [26] 张永平, 陈幼源, 杨少军, 等. 外源水杨酸对镉胁迫甜瓜幼苗生长与光合气体交换和叶绿素荧光特性的影响 [J]. 西北植物学报, 2014, 34(04):778−785.

    ZHANG Y P, CHEN Y Y, YANG S J, et al. Effects of exogenous salicylic acid on seedling growth, photosynthetic and chlorophyll fluorescent parameters in melon seedlings under cadmium stress [J]. Acta Botanica Boreali-Occidentalia Sinica, 2014, 34(04): 778−785.(in Chinese)
    [27] 邵小杰, 杨洪强, 冉昆, 等. 水杨酸对镉胁迫下葡萄根系质膜ATPase和自由基的影响 [J]. 中国农业科学, 2010, 43(7):1441−1447. doi: 10.3864/j.issn.0578-1752.2010.07.015

    SHAO X J, YANG H Q, RAN K, et al. Effects of salicylic acid on plasma membrane ATPase and free radical of grape root under cadmium stress [J]. Scientia Agricultura Sinica, 2010, 43(7): 1441−1447.(in Chinese) doi: 10.3864/j.issn.0578-1752.2010.07.015
    [28] 钟鹏, 刘杰, 王建丽, 等. 花生对低温胁迫的生理响应及抗寒性评价 [J]. 核农学报, 2018, 32(6):1195−1202.

    ZHONG P, LIU J, WANG J L, et al. Physiological responses and cold resistance evaluation of peanut under low-temperature stress [J]. Journal of Nuclear Agricultural Sciences, 2018, 32(6): 1195−1202.(in Chinese)
    [29] 张芬琴, 李晓利, 马斌山, 等. 水杨酸对镉胁迫下玉米幼苗生理特性的影响 [J]. 湖北农业科学, 2006(5):567−569. doi: 10.3969/j.issn.0439-8114.2006.05.015

    ZHANG F Q, LI X L, MA B S, et al. Effects of SA on physiological characteristics of maize seedling under Cd2+ stress [J]. Hubei Agricultural Sciences, 2006(5): 567−569.(in Chinese) doi: 10.3969/j.issn.0439-8114.2006.05.015
    [30] PARIDA A K, JHA B. Antioxidative defense potential to salinity in the euhalophyte Salicornia brachiata [J]. Journal of Plant Growth Regulation, 2010, 29(2): 137−148. doi: 10.1007/s00344-009-9129-0
    [31] LIANG Y C, CHEN Q, LIU Q, et al. Exogenous silicon (Si) increases antioxidant enzyme activity and reduces lipid peroxidation in roots of salt-stressed barley (Hordeum vulgareL.) [J]. Journal of Plant Physiology, 2003, 160(10): 1157−1164. doi: 10.1078/0176-1617-01065
    [32] CHO U H, SEO N H. Oxidative stress in Arabidopsis thaliana exposed to cadmium is due to hydrogen peroxide accumulation [J]. Plant Science, 2005, 168(1): 113−120. doi: 10.1016/j.plantsci.2004.07.021
    [33] 赵新月, 何茂, 石辉, 等. 外源水杨酸对镉胁迫下玉米幼苗的叶氮素代谢和根系抗氧化酶的影响 [J]. 农业环境科学学报, 2013, 32(10):1950−1958. doi: 10.11654/jaes.2013.10.007

    ZHAO X Y, HE M, SHI H, et al. Role of exogenous salicylic acid in alleviating nitrogen metabolism in leaves and antioxidase in root by cadmium stress in maize seedling [J]. Journal of Agro-Environment Science, 2013, 32(10): 1950−1958.(in Chinese) doi: 10.11654/jaes.2013.10.007
    [34] 李君, 葛跃, 王明新, 等. 镉对蓖麻耐性生理及营养元素吸收转运的影响 [J]. 环境科学学报, 2016, 36(8):3081−3087.

    LI J, GE Y, WANG M X, et al. Effect of Cd on tolerance physiology, nutrients uptake and translocation in Ricinus communis L [J]. Acta Scientiae Circumstantiae, 2016, 36(8): 3081−3087.(in Chinese)
    [35] 任艳军, 任学军, 马建军, 等. Cd/Cr复合胁迫下不同品种蔬菜对Cd和Cr积累与转运的差异研究 [J]. 核农学报, 2018, 32(5):993−1002. doi: 10.11869/j.issn.100-8551.2018.05.0993

    REN Y J, REN X J, MA J J, et al. Study on the variety difference of Cd and Cr accumulation and translocation in vegetable under Cd/Cr combination stress [J]. Journal of Nuclear Agricultural Sciences, 2018, 32(5): 993−1002.(in Chinese) doi: 10.11869/j.issn.100-8551.2018.05.0993
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  • 收稿日期:  2020-09-10
  • 修回日期:  2020-11-01
  • 刊出日期:  2020-12-31

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