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Genotypic Difference in Plant Growth and Mineral Composition in Barley Under Aluminum Stress 被引量:3

Genotypic Difference in Plant Growth and Mineral Composition in Barley Under Aluminum Stress
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摘要 Four barley genotypes (Tiantaiyangdamai, Xiyin2, Mimaill4 and Tai94-Ce6) were exposed to 0, 50, 100, and 150μM of Al-containing solution with pH 4.5, to determine the differences in growth inhibition , Al concentration and accumulation and mineral composition among genotypes. The results showed that Mimaill4 and Tai94-Ce6 had significantly higher Al concentration and accumulation than Tiantaiyangdami and Xiyin2, especially in roots, and the growth traits including root and shoot dry weights, shoot height, root length and tillers per plant were more inhibited in the former two genotypes. Al treatments caused a significant reduction of N, P, K, Ca, Mg and Mn content in both roots and shoots, of Cu in shoots; and a significant increase in Fe and Zn content in both roots and shoots, of Cu in roots. The changed rates of mineral content caused by Al treatments, in terms of the content in 150μM Al divided by the content in the control, differed significantly among four genotypes. Two Al-sensitive genotypes, Mimaill4 and Tai94-Ce6 had much greater changes in mineral content than other two Al-tolerant genotypes Tiantaiyangdamai and Xiyin2 when subjected to Al stress in comparison with the control. It is indicated that the Al-tolerant genotype is characterized by less uptake and accumulation of Al in roots and smaller disorders in mineral metabolism and ion homeostasis. Four barley genotypes (Tiantaiyangdamai, Xiyin2, Mimaill4 and Tai94-Ce6) were exposed to 0, 50, 100, and 150μM of Al-containing solution with pH 4.5, to determine the differences in growth inhibition , Al concentration and accumulation and mineral composition among genotypes. The results showed that Mimaill4 and Tai94-Ce6 had significantly higher Al concentration and accumulation than Tiantaiyangdami and Xiyin2, especially in roots, and the growth traits including root and shoot dry weights, shoot height, root length and tillers per plant were more inhibited in the former two genotypes. Al treatments caused a significant reduction of N, P, K, Ca, Mg and Mn content in both roots and shoots, of Cu in shoots; and a significant increase in Fe and Zn content in both roots and shoots, of Cu in roots. The changed rates of mineral content caused by Al treatments, in terms of the content in 150μM Al divided by the content in the control, differed significantly among four genotypes. Two Al-sensitive genotypes, Mimaill4 and Tai94-Ce6 had much greater changes in mineral content than other two Al-tolerant genotypes Tiantaiyangdamai and Xiyin2 when subjected to Al stress in comparison with the control. It is indicated that the Al-tolerant genotype is characterized by less uptake and accumulation of Al in roots and smaller disorders in mineral metabolism and ion homeostasis.
出处 《Agricultural Sciences in China》 CAS CSCD 2003年第5期494-501,共8页 中国农业科学(英文版)
关键词 Aluminum toxicity Barley (Hordeum vulgare L. ) GENOTYPE GROWTH Mineral nutrient Aluminum toxicity, Barley (Hordeum vulgare L. ) , Genotype, Growth, Mineral nutrient
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参考文献23

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二级参考文献38

  • 1雷宏军,朱端卫,刘鑫,周文兵,洪丽芳.酸性土壤在改良条件下磷的吸附解吸特性[J].土壤学报,2004,41(4):636-640. 被引量:34
  • 2储祥云,马国瑞,石伟勇,陈根成,沈士床.金衢盆地的土壤铝状况及其对棉花生长的影响[J].浙江农业大学学报,1994,20(5):530-534. 被引量:2
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  • 5Brockwell J, Pilka A, Holliday R A. Soil pH is a major determinant of the numbers of naturally occurring Rhizobium meliloti in non-cultivated soils in central New South Wales[J]. Australian J. of Exp. Agrit., 1991, 31: 211-220.
  • 6Brokwell J, Gault R R, Zofin M, Roberts M J. Effects of environmental variables on the competition between inoculum strains and naturalized populations of Rhizobium trifolii for nodulation of Trifolium subterranean L. and on rhizobia persistence in the soil[J]. Australian J. Agric. Res., 1982, 33: 803-815.
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  • 8Tan K H, Binger A. Effect of humic acid on aluminum toxicity in corn plants[J]. Soil Science, 1986, 14: 20-25.
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  • 10Foy C D, Murray J J. Developing aluminum tolerant strains of tall fescue for acid soils[J]. J. Plant Nutrition, 1998, 21 : 1301-1325.

共引文献14

同被引文献37

  • 1雷宏军,朱端卫,刘鑫,周文兵,洪丽芳.酸性土壤在改良条件下磷的吸附解吸特性[J].土壤学报,2004,41(4):636-640. 被引量:34
  • 2储祥云,马国瑞,石伟勇,陈根成,沈士床.金衢盆地的土壤铝状况及其对棉花生长的影响[J].浙江农业大学学报,1994,20(5):530-534. 被引量:2
  • 3Kapland D I, Esters G O. Organic matter relationship to soil nutrient status and aluminum toxicity in alfalfa[J]. Agron J., 1985, 77:735-738.
  • 4Munns D N. Soil acidity and growth of a legume. 11. Reactions of aluminum and phosphate in solution and effects of aluminum, phosphate, calcium and pH on Medicago sativa L. and Trifolium subterraneum L. in solution culture [ J ]. Australian J. of Agric. Res.,1965, 16 : 743 -755.
  • 5Brockwell J, Pilka A, Holliday R A. Soil pH is a major determinant of the numbers of naturally occurring Rhizobium meliloti in non-cultivated soils in central New South Wales[J]. Australian J. of Exp. Agrit., 1991, 31: 211-220.
  • 6Brokwell J, Gault R R, Zofin M, Roberts M J. Effects of environmental variables on the competition between inoculum strains and naturalized populations of Rhizobium trifolii for nodulation of Trifolium subterranean L. and on rhizobia persistence in the soil[J]. Australian J. Agric. Res., 1982, 33: 803-815.
  • 7Hebb D M, Richardson A E, Reid R, Brockwell J. PCR as an ecological tool to determine the establishment and persistence of rhizobium strains introduced into the field as a seed inoculant [ J ]. Australian J. Agric. Res., 1998,49:923-934.
  • 8Tan K H, Binger A. Effect of humic acid on aluminum toxicity in corn plants[J]. Soil Science, 1986, 14: 20-25.
  • 9Foy C D. Plant adaptation to acid, aluminum toxic soils[J].Common Soil Sci. Plant Anal., 1988, 19: 959-987.
  • 10Foy C D, Murray J J. Developing aluminum tolerant strains of tall fescue for acid soils[J]. J. Plant Nutrition, 1998, 21 : 1301-1325.

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