期刊文献+

植物对重金属的吸收和分布 被引量:123

The Mechanisms of Heavy Metal Uptake and Accumulation in Plants
在线阅读 下载PDF
导出
摘要 植物修复是利用植物来清除污染土壤中重金属的一项技术。该技术成功与否取决于植物从土壤中吸取金属以及向地上部运输金属的能力。植物对金属的吸收主要取决于自由态离子活度。许多螯合剂能诱导植物对重金属的吸收。金属离子在液泡中的区域化分布是植物耐重金属的主要原因。同时 ,细胞内的金属硫蛋白、植物螯合肽等蛋白质以及有机酸、氨基酸等在金属贮存和解毒方面也起重要作用。本文还论述了重金属在植物体内运输的生理及分子方面的研究进展。 Phytoremediation is a technology that involves the use of plants to remove heavy metals from contaminated soil. This approach is based on the ability of plants to absorb contaminants from the soil and translocate them to their shoots. Plant uptake of a metal depends primarily on the free metal ion activity. However, some synthetic chelates have been shown to induce the uptake of metals by plants. Vacuolar compartmentalization appears to be the source of tolerance of metal_accumulating plants. In cells, proteins such as metallothioneins and phytochelatins, organic acids and amino acids also play an important role in metal ion storage and detoxification. Physiological and molecular aspects of heavy metal transport in plants are also discussed in this paper.
出处 《植物学通报》 CSCD 北大核心 2003年第1期59-66,共8页 Chinese Bulletin of Botany
基金 江苏省自然科学基金资助 (BK2 0 0 1 0 64)
关键词 植物修复 重金属离子 吸收 分布 积累 运输能力 Heavy metals, Uptake, Accumulation, Phytoremediation
  • 相关文献

参考文献47

  • 1[4]Bell P F, Chaney R L, Angle J S, 1991. Free metal activity and total metal concentrations as indices of metal availability to barley (Hordeum vulgare cv `Klages'). Plant Soil, 130:51~62
  • 2[5]Bienfait H F, 1985. Regulated redox process at the plasmalemma of plant root cells and their function in iron uptake. J Bioenerg Biomembr, 17: 73~83
  • 3[6]Blaylock M J, Salt D E, Dushenkov S, Zakharova O, Gussman C, Kapulnik Y, Ensley B D, Raskin I, 1997. Enhanced accumulation of Pb in Indian Mustard by soil-applied chelating agents. Environ Sci Technol, 31:860~865
  • 4[7]Chaney R L, 1988. Metal speciation and interaction among elements affect trace element transfer in agricultural and environmental food-chains. In: Kramer J R, Allen H E eds. Metal speciation, theory, alalysis, and application. Chelsa, MI: Lewis Publishers, 219~260
  • 5[8]Cobbett C S, 2000. Phytochelatins and their roles in heavy metal detoxification. Plant Physiol, 123: 825~832
  • 6[9]Cohen C K, Fox T C, Garvin D F, Kochian L V, 1998. The role of iron deficiency stress responses in stimulating heavy-metal transport in plants. Plant Physiol, 116: 1063~1072
  • 7[10]De Knecht J A, Koevoets P L M, Verkleij J A C, Ernst W H O, 1992. Evidence against a role for phytochelatins in naturally selected increased cadmium tolerance in Silene vulgaris (Moench) Garcke. New Phytol, 122:681~688
  • 8[11]Eide D, Broderius M, Fett J, Guerinot M L, 1996. A novel iron-regulated metal transporter from plants identified by functional expression in yeast. Proc Natl Acad Sci USA, 93: 5624~5628
  • 9[12]Eng B H, Guerinot M L, Eide D, Saier M H Jr, 1998. Sequence analyses and phylogenetic characterization of the ZIP family of metal ion transport proteins. J Membr Biol, 166: 1~7
  • 10[13]Fox T C, Guerinot M L, 1998. Molecular biology of cation transport in plants. Annu Rew Plant Physiol Plant Mol Biol, 49: 669-696

同被引文献1635

引证文献123

二级引证文献1414

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