Effects of aluminum and cadmium toxicity on growth and antioxidant enzyme activities of two barley genotypes with different Al resistance

被引:30
作者
Tianrong Guo
Guoping Zhang
Meixue Zhou
Feibo Wu
Jinxin Chen
机构
[1] Zhejiang University,Agronomy Department, Huajia Chi Campus
[2] University of Tasmanian,Tasmanian Institute of Agricultural Research
来源
Plant and Soil | 2004年 / 258卷
关键词
aluminum; anti-oxidative enzyme; barley (; L.); cadmium;
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中图分类号
学科分类号
摘要
A hydroponic experiment was carried out to study genotypic differences in effect of Al and Cd on growth and antioxidant enzyme activities by using 2 two-row winter barley genotypes (Hordeum vulgare L.) with different Al resistance, the relatively resistant Gebeina and the sensitive Shang 70–119. The seedling growth, presented as shoot height, root length and dry weight of root and shoot, and tillers per plant were inhibited by all stress treatments, including low pH, 100 μM Al (pH 4.0) and 1.0 μM Cd+100 μM Al (pH 4.0), while 1.0 μM Cd showed a slight stimulation of growth. The inhibition was more severe in 1.0 μM Cd +100 μM Al (pH 4.0) than in 100 μM Al (pH 4.0), indicating that the effect of Cd and Al is synergistic. Al-sensitive genotype Shang 70–119 was more inhibited than Al-resistant genotype Gebeina. Proline concentration in leaves was significantly increased when plants were exposed to all stress treatments, being more pronounced in Shang 70–119 than in Gebeina. A highly significant increase in malonaldehyde (MDA) concentration, and a stimulation of superoxide dismutase (SOD) and peroxidase (POD) activities were recorded in the plants subjected to low pH, 100 μM Al (pH 4.0) and 1.0 μM Cd +100 μM Al(pH 4.0) treatments, and the extent of the increase varied greatly depending on concentration and time of exposure. Shang 70–119 had a higher MDA concentration, and less increase in SOD activity when first exposed than Gebeina had.
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页码:241 / 248
页数:7
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  • [1] Alia K. V.(1995)Effect of zinc on free radical and proline in Phytochemistry 39 45-47
  • [2] Prasad S. K.(1994) and Plant Physiol. 144 747-753
  • [3] Pardha S. P.(2003)Aluminum resistance in Phytochemistry 62 181-189
  • [4] Basu U(1992) associated with enhanced exudation of malate Annu. Rev. Plant Physiol. Plant Mol. Biol. 43 83-116
  • [5] Godbold D(1991)Aluminum-induced oxidative stress in maize Physiol. Plant. 83 463-468
  • [6] Tayor G. J.(1997)Superoxide dismutase and stress tolerence Plant Sci. 127 139-147
  • [7] Boscolo P. R. S.(1995)Effect of aluminum on lipid peroxidation, Superoxide dismutase, catalase and peroxidase activities in rot tips of soybean ( Plant Physiol. 107 315-321
  • [8] Menossi M(1993)) Plant Physiol. 103 695-702
  • [9] Jorgea R. A.(2002)Cadmium and zinc induction of lipid peroxidation and effects on antioxidant enzyme activities in bean ( Environ. Exp. Bot. 47 39-50
  • [10] Bowler C(1994) L.) Physiol. Plant 92 696-717