Acta Agron Sin ›› 2013, Vol. 39 ›› Issue (10): 1909-1915.doi: 10.3724/SP.J.1006.2013.01909
• RESEARCH NOTES • Previous Articles
ZHANG Xiu,GUO Zai-Hua*,DU Shuang-Shuang,WANG Yang,SHI Le-Yi,ZHANG Li-Mei,HE Li-Yuan
[1]Su Y H, Steve P M, Zhao F J. Rice is more efficient in arsenite uptake and translocation than wheat and barley. Plant Soil, 2010, 328: 27–34[2]Zhu Y G, Williams P N, Meharg A A. Exposure to inorganic arsenic from rice: a global health issue? Environ Pollut, 2008, 154: 169–171[3]Xiao X-Y(肖细元), Chen T-B(陈同斌), Liao X-Y(廖晓勇), Wu B(武斌), Yan X-L(阎秀兰), Zhai L-M(翟丽梅), Xie H(谢华), Wang L-X(王莉霞). Regional distribution of arsenic contained minerals and arsenic pollution in China. Geogr Res (地理研究), 2008, 27(1): 201–212 (in Chinese with English abstract)[4]Khan M A, Islam M R, Panaullah G M, Duxbury J M, Jahiruddin M, Loeppert R H. Accumulation of arsenic in soil and rice under wetland condition in Bangladesh. Plant Soil, 2010, 333: 263–274[5]Smith E, Naidu R, Alston A M. Chemistry of inorganic arsenic in soils: II. Effect of phosphorus, sodium, and calcium on arsenic sorption. J Environ Qual, 2002, 31: 557–563[6]Zou Q(邹强), Liu F(刘芳), Yang J-H(杨剑虹). Adsorption-desorption and competitive adsorption of arsenic and phosphorus in purple soil. Chin J Appl Ecol (应用生态学报), 2009, 20(6): 1383–1389 (in Chinese with English abstract)[7]Xu H X, Weng X Y, Yang Y. Effect of phosphorus deficiency on the photosynthetic characteristics of rice plants. Russian J Plant Physiol, 2007, 54: 741–748[8]Lu Y, Dong F, Deacon C, Chen H J, Raab A, Meharg A A. Arsenic accumulation and phosphorus status in two rice (Oryza sativa L.) cultivars surveyed from fields in South China. Environ Pollut, 2010, 158: 1536–1541[9]Talukder A S M H M, Meisner C A, Sarkar M A R, Islam M S, Sayre K D, Duxbury J M, Lauren J G. Effect of water management, arsenic and phosphorus levels on rice in a high-arsenic soil-water system: II. Arsenic uptake. Ecotox Environ Safe, 2012, 80: 145–151[10]Guo Z-H(郭再华). Screening and Classification of Rice with Different Phosphorus Efficiency and Physiology Mechanism. Ph.D dissertation of Huazhong Agricultural University, 2005 (in Chinese with English abstract)[11]Lei M(雷梅), Chen T-B(陈同斌), Fan Z-L(范稚莲), Mo L-Y(莫良玉), Huang Z-C(黄泽春). Effect of phosphorus on arsenic adsorption by three different soils. Chin J Appl Ecol (应用生态学报), 2003, 14(11): 1989–1992 (in Chinese with English abstract)[12]Geng Z-X(耿志席), Liu X-H(刘小虎), Li L-F(李莲芳), Zeng X-B(曾希柏). Effects of phosphorus fertilization on the bioavailability of arsenic in soils. J Agro-Environ Sci (农业环境科学学报), 2009, 28(11): 2338–2342 (in Chinese with English abstract)[13]Zhang G-L(张广莉), Song G-Y(宋光煜), Zhao H-X(赵红霞). Effect of phosphorus on distribution of inorganic arsenic fractions in rhizosphere and growth of rice. Acta Pedol Sin (土壤学报), 2002, 39(1): 23–28 (in Chinese with English abstract)[14]Liao X-Y(廖晓勇), Chen T-B(陈同斌), Yan X-L(阎秀兰), Xie H(谢华), Xiao X-Y(肖细元), Zhai L-M(翟丽梅). Effects of different forms of P fertilizers on phytoremediation for As-contaminated soils using As-hyperaccumulator Pteris vittata L. Environ Sci (环境科学), 2008, 29(10): 2906–2911 (in Chinese with English abstract)[15]Tu S X, Ma L Q. Interactive effects of pH, arsenic and phosphorus on uptake of As and P and growth of the arsenic hyperaccumulator Pteris vittata L. under hydroponic conditions. Environ Exp Bot, 2003, 50: 243–251[16]Abedin M J, Feldmann J, Meharg A A. Uptake kinetics of arsenic species in rice plants. Plant Physiol, 2002, 128: 1120–1128[17]Zhao F J, Ma J F, Meharg A A, McGrath S P. Arsenic uptake and metabolism in plants. New Phytologist, 2009, 181: 777–794[18]Lou-Hing D, Zhang B, Price A H, Meharg A A. Effects of phosphate on arsenate and arsenite sensitivity in two rice (Oryza sativa L.) cultivars of different sensitivity. Environ Exp Bot, 2011, 72: 47–52[19]Meharg A A, Jardine L. Arsenite transport into paddy rice (Oryza sativa L.) roots. New Phytologist, 2003, 157: 39–44[20]Yamaguchi N, Nakamura T, Dong D, Takahashi Y, Amachi S, Makino T. Arsenic release from flooded paddy soils is influenced by speciation, Eh, pH, and iron dissolution. Chemosphere, 2011, 83: 925–932[21]Zeng X-B(曾希柏), He Q-H(和秋红), Li L-F(李莲芳), Bai L-Y(白玲玉). Influence of flooding on form transformation of soil arsenic. Chin J Appl Ecol (应用生态学报), 2010, 21(11): 2997–3000 (in Chinese with English abstract)[22]Li R Y, Stroud J L, Ma J F, McGrath S P, Zhao F J. Mitigation of arsenic accumulation in rice with water management and silicon fertilization. Environ Sci Technol, 2009, 43: 3778–3783[23]Xu X Y, McGrath S P, Meharg A A, Zhao F J. Growing rice aerobically markedly decreases arsenic accumulation. Environ Sci Technol, 2008, 42: 5574–5579[24]Sarkar S, Basu B, Kundu C K, Patra P K. Deficit irrigation: An option to mitigate arsenic load of rice grain in West Bengal, India. Agric Ecosyst Environ, 2012, 146: 147–152 |
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