Crops ›› 2017, Vol. 33 ›› Issue (6): 104-108.doi: 10.16035/j.issn.1001-7283.2017.06.018

Previous Articles     Next Articles

Effects of Soil Cadmium Contamination on Growth, Cadmium Accumulation and Nutrient Uptake of Vicia sativa L.

Rui Haiyun1,Shen Zhenguo2,Zhang Fenqin3   

  1. 1College of Pharmacy and Chemistry & Chemical Engineering,Taizhou University,Taizhou 225300,Jiangsu,China;
    2College of Life Sciences,Nanjing Agricultural University,Nanjing 210095,Jiangsu,China
    3College of Agriculture and Biotechnology,Hexi University,Zhangye 734000,Gansu,China
  • Received:2017-08-07 Revised:2017-09-08 Online:2017-12-15 Published:2018-08-26

Abstract:

We investigated the effects of soil with cadmium (Cd) addition of 2.5mg/kg and 10.0mg/kg on growth, Cd accumulation and nutrient uptake of V. sativa using sand culture experiments. Results showed that Cd addition didn’t have siginificant effects on aboveground and underground biomass, but decreased the seed biomass of V. sativa. Under light and severe cadmium pollution conditions, the Cd enrichment coefficient of underground part, aboveground part and seed are 21.12-26.39, 0.47-1.00 and 0.46-1.16, respectively, and the Cd transfer coefficient of V. sativa was 0.02~0.05. Cd accumulation in underground part reached 268.97mg/kg under 10.0mg/kg Cd addition condition and Cd accumulation in aboveground part and seed exceeded the national standards for food under 2.5mg/kg and 10.0mg/kg Cd addition condition. The concentrations of nutrients, especially Fe, Zn, Mn, and P were significantly affected by the Cd addition. Results indicated that V. sativa could be used for phytoremediation of Cd contaminated soil, but there were needs to guard against risk of food Cd contamination. Effect of Cd on nutrient uptake was one of the causes for the growth inhibition of V. sativa under Cd stress.

Key words: Vicia sativa L., Soil, Cadmium, Nutrient elements

"

收获时间
Harvest time
处理
Treatment
地下部的干重
Underground part dry weight
地上部的干重
Aboveground part dry weight
种子的干重
Seed dry weight
豆荚的干重
Pod dry weight
播种后35d 35 days after sowing 对照CK 0.42±0.08b 1.81±0.13b / /
T1 0.37±0.05b 1.64±0.24b / /
T2 0.38±0.04b 1.69±0.05b / /
播种后55d 55 days after sowing 对照CK 1.46±0.04a 3.49±0.46a 0.45±0.07a 0.46±0.04a
T1 1.43±0.06a 3.41±0.16a 0.36±0.08ab 0.36±0.08ab
T2 1.42±0.05a 3.59±0.40a 0.30±0.04b 0.32±0.07b

Table 2

Effects of Cd addition on the Cd accumulation in V.sativa mg/kg"

项目Item 播种后35d 35days after sowing 播种后55d 55days after sowing
对照CK T1 T2 对照CK T1 T2
地下部镉积累
Underground part cadmium accumulation
0.87±0.12d
57.10±9.37c
215.47±6.27b
0.96±0.15d
71.24±11.24c
268.97±21.09a
地下部镉富集系数
Underground part cadmium enrichment coefficient
4.34±0.60c
21.15±3.47b
21.12±0.61b
4.80±0.75c
26.39±4.16a
26.37±2.07a
地上部(不含果实)镉积累
Aboveground part cadmium accumulation
0.12±0.04d
2.58±0.35c
4.83±0.52b
0.11±0.02d
2.69±0.89c
6.19±0.02a
地上部镉富集系数
Aboveground part cadmium enrichment coefficient
0.60±0.18b
0.95±0.13a
0.47±0.05b
0.57±0.12b
1.00±0.33a
0.61±0.01b
转运系数
Transfer coefficient
0.14±0.06a
0.05±0.01b
0.02±0.00b
0.12±0.04a
0.04±0.01b
0.02±0.00b
种子镉积累
Seed cadmium accumulation
/
/
/
0.05±0.01c
3.12±0.23b
4.69± 0.14a
种子镉富集系数
Seed cadmium enrichment coefficient
/
/
/
0.26±0.01c
1.16±0.05a
0.46±0.01b
豆荚镉积累
Pod cadmium accumulation
/
/
/
0.05±0.01c
2.75±0.33b
4.45±0.55a
豆荚镉富集系数
Pod cadmium enrichment coefficient
/
/
/
0.26±0.03c
1.00±0.20a
0.44±0.05b

Table 3

Effects of Cd addition on concentration of nutrient elements in V.sativa which harvest at 55 days after sowing"

植物组织Tissues 处理Treatment Fe(μg/kg) Zn(μg/kg) Mn(μg/kg) Mg(mg/kg) Ca(mg/kg) P(mg/kg)
地上部 对照CK 193.50±13.69a 22.04±1.58a 43.60±5.62a 5.82±0.41a 33.39±2.91a 2.43±0.05b
Aboveground part T1 168.97±6.60b 19.56±2.06ab 34.63±1.53b 5.77±0.58a 29.27±1.50a 2.62±0.26ab
T2 156.30±9.16b 17.64±0.24b 33.44±2.79b 5.65±0.31a 29.84±3.15a 2.84±0.14a
地下部 对照CK 3 533.90±429.22a 43.79±3.37a 90.94±5.62b 7.65±0.62b 25.99±3.20a 3.59±0.22a
Underground part T1 3 619.86±207.66a 40.15±1.64ab 91.58±6.42b 9.09±0.56a 27.21±0.31a 3.64±0.14a
T2 3 556.88±331.86a 37.88±2.68b 107.02±4.44a 8.94±0.67a 24.98±0.41a 3.76±0.19a
种子Seed 对照CK 76.09±9.08a 22.01±3.09b 14.12±0.74a 1.59±0.09b 1.54±0.11b 5.34±0.35b
T1 85.18±7.59a 25.02±0.54ab 14.54±0.76a 1.74±0.07a 1.53±0.15b 6.06±0.34a
T2 86.61±3.91a 26.15±1.17a 14.54±1.05a 1.67±0.04ab 1.79±0.03a 5.61±0.27ab
豆荚Pod 对照CK 149.05±5.95a 22.52±3.09a 27.45±2.48a 4.40±0.30b 11.98±0.81ab 5.48±0.63b
T1 138.38±5.65a 24.14±2.81a 26.56±2.37a 4.49±0.19b 11.71±0.74b 6.44±0.46a
T2 137.55±13.34a 25.29±0.97a 28.06±3.23a 5.10±0.29a 13.55±0.73a 5.58±0.21ab
[1] 芮海云, 张兴兴, 沈振国 , 等. 箭筈豌豆镉胁迫下的失水胁迫和渗透调节物质的积累.作物杂志, 2017(3):69-74.
doi: 10.16035/j.issn.1001-7283.2017.03.013
[2] Verbruggen N, Hermans C, Schat H , et al. Mechanisms to cope with arsenic or cadmium excess in plants. Current Opinion in Plant Biology, 2009,12(3):364-372.
doi: 10.1016/j.pbi.2009.05.001 pmid: 19501016
[3] Maestri E, Marmiroli M, Visioli G , et al. Metal tolerance and hyperaccumulation:costs and trade-offs between traits and environment. Environmental & Experimental Botany, 2010,68(1):1-13.
doi: 10.1016/j.envexpbot.2009.10.011
[4] 张芬琴 . 镉胁迫对二种不同耐性豆科植物生长与活性氧代谢的影响及水杨酸对镉毒害的缓解效应. 南京:南京农业大学, 2009.
[5] Zhao F J, Jiang R F, Dunham S J , et al. Cadmium uptake,translocation and tolerance in the hyperaccumulator Arabidopsis halleri. New Phytologist, 2006,172(4):646-654.
doi: 10.1111/j.1469-8137.2006.01867.x pmid: 17096791
[6] Yu Z G, Zhou Q X . Growth responses and cadmium accumulation of Mirabilis jalapa L.under interaction between cadmium and phosphorus. Journal of Hazardous Materials, 2009,167:38-43.
doi: 10.1016/j.jhazmat.2008.12.082
[7] 李铭红, 李侠, 宋瑞生 . 受污农田中农作物对重金属镉的富集特征研究. 中国生态农业学报, 2008,16(3):675-679.
[8] Nocito F F, Lancilli C, Dendena B , et al. Cadmium retention in rice roots is influenced by cadmium availability,chelation and translocation. Plant Cell & Environment, 2011,34(6):994-1008.
[9] Mclaughlin M J, Parker D R, Clarke J M . Metals and micronutrients-food safety issues. Field Crops Research, 1999,60(1-2):143-163.
doi: 10.1016/S0378-4290(98)00137-3
[10] Clemens S , Aarts M G M,Thomine S,et al.Plant science:the key to preventing slow cadmium poisoning. Trends in Plant Science, 2013,18(2):92-99.
doi: 10.1016/j.tplants.2012.08.003 pmid: 22981394
[11] 孙建云, 沈振国 . 镉胁迫对不同甘蓝基因型光合特性和养分吸收的影响. 应用生态学报, 2007,18(11):2605-2610.
[12] Metwally A, Safronova V I, Belimov A A , et al. Genotypic variation of the response to cadmium toxicity in Pisum sativum L. Journal of Experimental Botany, 2005,56(409):167-178.
doi: 10.1093/jxb/eri017 pmid: 15533881
[13] Rogers E E, Eide D J, Guerinot M L . Altered selectivity in an Arabidopsis metal transporter. Proceedings of the National Academy of Sciences of the United States of America, 2000,97(22):12356-12360.
doi: 10.1073/pnas.210214197
[14] Hernández L E , Lozano-Rodrı́Guez E,Gárate A,et al.Influence of cadmium on the uptake,tissue accumulation and subcellular distribution of manganese in pea seedlings. Plant Science, 1998,132(2):139-151.
doi: 10.1016/S0168-9452(98)00011-9
[15] Küpper H, Kochian L V . Transcriptional regulation of metal transport genes and mineral nutrition during acclimatization to cadmium and zinc in the Cd/Zn hyperaccumulator,Thlaspi caerulescens (Ganges population). New Phytologist, 2010,185(1):114-129.
[16] Xu Q, Min H, Cai S , et al. Subcellular distribution and toxicity of cadmium in Potamogeton crispus L. Chemosphere, 2012,89(1):114-120.
doi: 10.1016/j.chemosphere.2012.04.046 pmid: 22609454
[17] Gussarsson M, Asp H, Adalsteinsson S , et al. Enhancement of cadmium effects on growth and nutrient composition of birch (Betula pendula) by buthionine sulphoximine (BSO). Journal of Experimental Botany, 1996,47(295):211-215.
doi: 10.1093/jxb/47.2.211
[18] Brune A, Dietz K J . A comparative analysis of element composition of barley roots and leaves under cadmium-,molybdenum-,nickel-,and zinc-stress. Journal of Plant Nutrition, 1995,18:853-868.
doi: 10.1080/01904169509364943
[19] Dong J, Wu F, Zhang G . Influence of cadmium on antioxidant capacity and four microelement concentrations in tomato seedlings (Lycopersicon esculentum). Chemosphere, 2006,64(10):1659-1666.
doi: 10.1016/j.chemosphere.2006.01.030
[20] Monteiro M S, Santos C, Soares A M , et al. Assessment of biomarkers of cadmium stress in lettuce. Ecotoxicology & Environmental Safety, 2009,72(3):811-818.
doi: 10.1016/j.ecoenv.2008.08.002 pmid: 18952284
[21] 段昌群, 王焕校, 曲仲湘 . 重金属对蚕豆根尖的核酸含量及核酸酶活性影响的研究. 环境科学, 1992,13(5):31-35.
[1] Zhiqiang Tang,Liqiang Dong,Rui Li,Liying Zhang,Na He,Yuedong Li. Effects of Nitrogen and Soil Type on Seedling Quality and Nutrient Absorption in Rice [J]. Crops, 2018, 34(3): 141-147.
[2] Yuqiao Cao,Qingkai Nie,Yun Gao,Zicheng Xu,Wuxing Huang. The Studies on Cadmium and Its Chelate Related Transporters in Plants [J]. Crops, 2018, 34(3): 15-24.
[3] Shumin Liang,Ying Wang,Zhechao Pan,Lei Zhang,Ningsheng Xu,Yanshan Li,Qiongfen Yang,Xianping Li,Jianming ai,Chunguang Yao,Lili Lu,Qijun Sui. Effects of Soil Moisture and Temperature with Different Cultivation Methods on the Yield and Tuberization of Potato [J]. Crops, 2018, 34(3): 90-96.
[4] Xiaohua Shi,Haiying Yang,Wenqin Kang,Yonglin Qin,Mingshou Fan,Liguo Jia. Effects of Nitrogen Fertilization on Crop Yields and Soil Nitrogen Balance in Potato-Wheat System [J]. Crops, 2018, 34(2): 108-116.
[5] Xiaojuan Wang,Yuanfeng Zhao,Juanling Wang,Guangqian Zhai,Enke Liu,Chunlin Dong,Liuying Yan,Wei Zhang,Chunxia Jiang,Zheng Zhang. Effects of Different Mulching Patterns on Water Use and Economic Returns of Drop Irrigation Tomato Planted in Plastic House [J]. Crops, 2018, 34(2): 103-107.
[6] Zhengui Yuan,Pingping Chen,Lili Guo,Naimei Tu,Zhenxie Yi. Varietal Difference in Yield and Cd Accumulation and Distribution in Panicle of Rice Affected by Soil Cd Content [J]. Crops, 2018, 34(1): 107-112.
[7] Jianghui Cui,Fuzhu Cui,Jianfu Xue,Jianping Hao,Tianqing Du,Longxiang Sun. Effects of Fertilizer Reduction on Distribution and Stability of Soil Aggregates Based on Wheat-Sorghum System [J]. Crops, 2018, 34(1): 126-132.
[8] Li Zhao,Qiang Wang,Yongxiang Lin,Yi Zhang. NPK Fertilizer Use Efficiency by Sesame Grown in Yellow Cinnamon Soil in Jianghuai Region [J]. Crops, 2017, 33(6): 154-159.
[9] Yingjie Zhu,Xuhong Chang,Demei Wang,Yushuang Yang,Yu Wang,Bing Lü,Ruiqi Ma,Ying Liu,Yujiao Wang,Guangcai Zhao,Zhiqiang Tao. Effects of Black Soil and Alluvial Soil on Nutritional Quality of Different Spring Wheat [J]. Crops, 2017, 33(6): 84-90.
[10] Youyu Jia,Xiong Zhang,Yu Gao,Jian Zhang,Yongfeng Ren,Xiulan Yin,Peiyi Zhao,Shengpeng Diao,Jing Nie,Caixia Di,Hao An. Effects of Mulching Ways on Soil Hydro-Thermal Condition and Yield of Sunflowers on Rainfed Farmland [J]. Crops, 2017, 33(6): 72-78.
[11] Li Song,Wanyou Liao,Yejun Wang,Youjian Su,Yongli Zhang,Yi Luo,Jun Liao,Weiguo Wu. Research Progress in Intercropping Upland Crops with Green Manure [J]. Crops, 2017, 33(6): 7-11.
[12] Jianfu Wu,Zhihong Lu,Dandan Hu. Scientifically Understanding the Role of Organic Fertilizer in Agricultural Production [J]. Crops, 2017, 33(5): 1-6.
[13] Peina Lu,Jinghui Liu,Baoping Zhao,Lijun Li,Xuefeng Lei,Fengyi Zhang. Effects of Microbial Fertilizer on Soil Characteristics and Root Exudates of Oats in Saline-alkali Land [J]. Crops, 2017, 33(5): 85-92.
[14] Jingang Liang,Zhengguang Zhang. Advance on Effects of Genetically ModifiedCrops on Soil Ecosystems [J]. Crops, 2017, 33(4): 1-6.
[15] Wenchao Zhang,Yufeng Wang,Yifei Zhang,Jingyu Xu,Qiong Wu,Tianyu Chen,Pengfei Zhang,Chen Pang,Chunshuang Tang,Jian Fu,Kejun Yang. Effects of Different Tillage Methods on Changes of Soil Nutrients and Grain Yield of Maize in Semi-Arid Regions of Songnen Plain [J]. Crops, 2017, 33(4): 123-128.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] Guangcai Zhao,Xuhong Chang,Demei Wang,Zhiqiang Tao,Yanjie Wang,Yushuang Yang,Yingjie Zhu. General Situation and Development of Wheat Production[J]. Crops, 2018, 34(4): 1 -7 .
[2] Baoquan Quan,Dongmei Bai,Yuexia Tian,Yunyun Xue. Effects of Different Leaf-Peg Ratio on Photosynthesis and Yield of Peanut[J]. Crops, 2018, 34(4): 102 -105 .
[3] Xuefang Huang,Mingjing Huang,Huatao Liu,Cong Zhao,Juanling Wang. Effects of Annual Precipitation and Population Density on Tiller-Earing and Yield of Zhangzagu 5 under Film Mulching and Hole Sowing[J]. Crops, 2018, 34(4): 106 -113 .
[4] Wenhui Huang, Hui Wang, Desheng Mei. Research Progress on Lodging Resistance of Crops[J]. Crops, 2018, 34(4): 13 -19 .
[5] Yun Zhao,Cailong Xu,Xu Yang,Suzhen Li,Jing Zhou,Jicun Li,Tianfu Han,Cunxiang Wu. Effects of Sowing Methods on Seedling Stand and Production Profit of Summer Soybean under Wheat-Soybean System[J]. Crops, 2018, 34(4): 114 -120 .
[6] Mei Lu,Min Sun,Aixia Ren,Miaomiao Lei,Lingzhu Xue,Zhiqiang Gao. Effects of Spraying Foliar Fertilizers on Dryland Wheat Growth and the Correlation with Yield Formation[J]. Crops, 2018, 34(4): 121 -125 .
[7] Xiaofei Wang,Haijun Xu,Mengqiao Guo,Yu Xiao,Xinyu Cheng,Shuxia Liu,Xiangjun Guan,Yaokun Wu,Weihua Zhao,Guojiang Wei. Effects of Sowing Date, Density and Fertilizer Utilization Rate on the Yield of Oilseed Perilla frutescens in Cold Area[J]. Crops, 2018, 34(4): 126 -130 .
[8] Pengjin Zhu,Xinhua Pang,Chun Liang,Qinliang Tan,Lin Yan,Quanguang Zhou,Kewei Ou. Effects of Cold Stress on Reactive Oxygen Metabolism and Antioxidant Enzyme Activities of Sugarcane Seedlings[J]. Crops, 2018, 34(4): 131 -137 .
[9] Jie Gao,Qingfeng Li,Qiu Peng,Xiaoyan Jiao,Jinsong Wang. Effects of Different Nutrient Combinations on Plant Production and Nitrogen, Phosphorus and Potassium Utilization Characteristics in Waxy Sorghum[J]. Crops, 2018, 34(4): 138 -142 .
[10] Na Shang,Zhongxu Yang,Qiuzhi Li,Huihui Yin,Shihong Wang,Haitao Li,Tong Li,Han Zhang. Response of Cotton with Vegetative Branches to Plant Density in the Western of Shandong Province[J]. Crops, 2018, 34(4): 143 -148 .