期刊文献+

砷对水稻根部渗氧分布和铁膜形成的影响(英文) 被引量:1

Effect of arsenic on spatial pattern of radial oxygen loss and iron plaque formation in rice
下载PDF
导出
摘要 研究砷对三种水稻品种(玉香油占、CNT87059和南洋占)生物量、根部渗氧径向分布、根表铁膜形成以及砷在植物体内积累的影响。在土壤中分别添加50和100 mg/kg砷、并以未经处理的含砷8.5 mg/kg的土壤作为对照,结果表明,随着砷处理浓度的增加,水稻根表铁膜的含量增加;水稻根尖渗氧率与根基部渗氧率的比值随着砷处理浓度的增加而降低,水稻根部渗氧模式从"紧密型"向"疏松型"转变;与对照样品相比,50和100 mg/kg砷处理能显著增加水稻根部的砷积累(P<0.05);低渗氧能力水稻品种(南洋占)谷粒砷含量显著高于高渗氧能力水稻品种(CNT87059,P<0.05)的谷粒砷含量。 The effects of different arsenic (As) treatments on spatial pattern of radial oxygen loss (ROL), iron (Fe) plaque formation and As accumulation in rice were investigated using three rice genotypes, planted under greenhouse conditions. Arsenic was applied to soil at 50 and 100 mg/kg, with untreated soil used as a control having an average As concentration of 8.5 mg/kg. It was demonstrated that the ratio of ROL in root tips to that at the root base slightly decreased with increasing As concentration, suggesting that the spatial ROL patterns in these groups may be shifted from the “tight” barrier towards the “partial” barrier form. Furthermore, increasing As concentration led to a increase in Fe plaque formation on root surfaces. In addition, root As concentrations of genotypes in 50 and 100 mg/kg As treatments were significantly higher than that of control treatment (P〈0.05). Grain As concentration of genotype Nanyangzhan (with lower ROL) was significantly higher (P〈0.05) than that of genotype CNT87059-3 with higher ROL.
出处 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2017年第2期413-419,共7页 中国有色金属学报(英文版)
基金 Projects(41201493,31300815)supported by the National Natural Science Foundation of China
关键词 铁膜 水稻 渗氧径向分布 arsenic iron plaque rice spatial pattern of ROL
  • 相关文献

参考文献6

二级参考文献127

  • 1周鑫斌,施卫明,杨林章.富硒与非富硒水稻品种对硒的吸收分配的差异及机理[J].土壤,2007,39(5):731-736. 被引量:76
  • 2孙健,铁柏清,周浩,钱湛,毛晓茜,青山勋,罗荣.不同改良剂对铅锌尾矿污染土壤中灯心草生长及重金属积累特性的影响[J].农业环境科学学报,2006,25(3):637-643. 被引量:46
  • 3ZHANG Lian-He,SHI Wei-Ming,WANG Xiao-Chang.Difference in Selenium Accumulation in Shoots of Two Rice Cultivars[J].Pedosphere,2006,16(5):646-653. 被引量:21
  • 4Abedin, M. J., Cresser, M. S., Meharg, A. A., Feldmann, J., Cotter-Howells, J., 2002. Arsenic accumulation and metabolism in rice (Oryza sativa L.). Environ. Sci. Technol. 36(5), 962-968.
  • 5Allen, S. E., 1989. Chemical Analysis of Ecological Materials (2nd ed.). Black- well Science, Oxford.
  • 6Blute, N. K., Brabander, D. J., Hemond, H. F., Sutton, S. R., Newville, M. G., Rivers, M. L., 2004. Arsenic sequestration by ferric iron plaque on cattail roots. Environ. Sci. Technol. 38, 6047~077.
  • 7Caetano, M., Vale, C., 2002. Retention of arsenic and phosphorus in iron-rich concretions of Tagus salt marshes. Mad. Chem. 79(3-4), 261-271.
  • 8Chen, C. C., Dixon, J. B., Turner, E T., 1980. Iron coatings on rice roots: morphology and models of development. Soil Sci. Soc. Amer. J. 44(5), 1113-1119.
  • 9Colmer, T. D., 2003a. Aerenchyma and an inducible barrier to radial oxygen loss facilitate root aeration in upland, paddy and deep-water rice (Oryza sativa L.). Ann. Bot. 91(2), 301-309.
  • 10Colmer, T. D., 2003b. Long-distance transport of gases in plants: a perspective on internal aeration and radial oxygen loss from roots. Plant Cell Environ. 26(1), 17-36.

共引文献61

同被引文献5

引证文献1

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部