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Glucose alleviates cadmium toxicity by increasing cadmium fi xation in root cell wall and sequestration into vacuole in Arabidopsis 被引量:3

Glucose alleviates cadmium toxicity by increasing cadmium fi xation in root cell wall and sequestration into vacuole in Arabidopsis
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摘要 Glucose (Glu) is involved in not only plant physiological and developmental events but also plant responses to abiotic stresses. Here, we found that the exogenous Glu improved root and shoot growth, reduced shoot cadmium (Cd) concentration, and rescued Cd-induced chlorosis in Arabidopsis thaliana (Columbia ecotype, Col-0) under Cd stressed conditions. Glucose increased Cd retained in the roots, thus reducing its translocation from root to shoot significantly. The most Cd retained in the roots was found in the hemicellulose 1. Glucose combined with Cd (Glu t Cd) treatment did not affect the content of pectin and its binding capacity of Cd while it increased the content of hemicelluloses 1 and the amount of Cd retained in it significantly. Furthermore, Leadmium Green staining indicated that more Cd was compartmented into vacuoles in Glu t Cd treatment compared with Cd treatment alone, which was in accordance with the significant upregulation of the expression of tonoplast-localized metal transporter genes, suggesting that com-partmentation of Cd into vacuoles also contributes to the Glu-alleviated Cd toxicity. Taken together, we demonstrated that Glu-alleviated Cd toxicity is mediated through increas-ing Cd fixation in the root cell wall and sequestration into the vacuoles. Glucose (Glu) is involved in not only plant physiological and developmental events but also plant responses to abiotic stresses. Here, we found that the exogenous Glu improved root and shoot growth, reduced shoot cadmium (Cd) concentration, and rescued Cd-induced chlorosis in Arabidopsis thaliana (Columbia ecotype, Col-0) under Cd stressed conditions. Glucose increased Cd retained in the roots, thus reducing its translocation from root to shoot significantly. The most Cd retained in the roots was found in the hemicellulose 1. Glucose combined with Cd (Glu t Cd) treatment did not affect the content of pectin and its binding capacity of Cd while it increased the content of hemicelluloses 1 and the amount of Cd retained in it significantly. Furthermore, Leadmium Green staining indicated that more Cd was compartmented into vacuoles in Glu t Cd treatment compared with Cd treatment alone, which was in accordance with the significant upregulation of the expression of tonoplast-localized metal transporter genes, suggesting that com-partmentation of Cd into vacuoles also contributes to the Glu-alleviated Cd toxicity. Taken together, we demonstrated that Glu-alleviated Cd toxicity is mediated through increas-ing Cd fixation in the root cell wall and sequestration into the vacuoles.
出处 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2015年第10期830-837,共8页 植物学报(英文版)
基金 supported by Changjiang Innovation Research Team (IRT1185) Fundamental Research Funds for the Central Universities
关键词 ARABIDOPSIS cadmium tolerance GLUCOSE plant cell wall plant vacuole Arabidopsis cadmium tolerance glucose plant cell wall plant vacuole
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  • 1Alcantara E, Romera F J, Cannete M, De La Guardia MD (1994). Effects of heavy metals on both induction and function of root Fe(Ⅲ) reductase in Fe-deficient cucumber (Cucumis sativus L.) plants. J. Exp. Bot. 45, 1893-1898.
  • 2Alkorta I, Hernandez-Allica J, Becerril JM, Amezaga I, Albizu I, Garbisu C (2004). Recent findings on the phytoremediation of soils contaminated with environmentally toxic heavy metals and metalloids such as zinc, cadmium, lead, and arsenic. Rev. Environ. Sci Biotechnol. 3, 71-90.
  • 3Astolfi S, Zuchi S, Passera C (2004). Role of sulphur availability on cadmium-induced changes of nitrogen and sulphur metabolism in maize (Zea mays L.) leaves. J. Plant Physiol. 161,795-802.
  • 4Baker AJM, Brooks RR (1989). Terrestrial higher plants which hyperaccumulate metallic elements: a review of their distribution, ecology and phytochemistry. Biorecovery 1, 81-126.
  • 5Balestrasse KB, Benavides MP, Gallego SM, Tomaro ML (2003). Effect of cadmium stress on nitrogen metabolism in nodules and roots of soybean plants. Funct. Plant Biol. 30, 57-64.
  • 6Balsberg Pahlsson AM (1989). Toxicity of heavy metals (Zn, Cu, Cd, Pb) to vascular plants. Water Air Soil Poll. 47, 287-319.
  • 7Becher M, Talke IN, Krall L, Kramer U (2004) Crossspecies microarray transcript profiling reveals high constitutive expression of metal homeostasis genes in shoots of the zinc hyperaccumulator Arabidopsis halleri. Plant J. 37, 251-268.
  • 8Benavides MP, Gallego SM, Tomaro ML (2005). Cadmium toxicity in plants. Braz. J. Plant Physiol. 17, 21-34.
  • 9Bennett LE, Burkhead JL, Hale KL, Terry N, Pilon M, Pilon-Smits EHA (2003). Analysis of transgenic Indian mustard plants for phytoremediation of metal-contaminated mine tailings. J. Environ. Qual. 32, 432-440.
  • 10Bernard C, Roosans N, Czernic P, Lebrun M, Verbruggen N (2004). A novel CPx-ATPase from the cadmium hyperaccumulator Thlaspi caerulescens, FEBS Lett. 569. 140-148.

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