Mechanisms to cope with arsenic or cadmium excess in plants

Current Opinion in Plant Biology - Tập 12 Số 3 - Trang 364-372 - 2009
Nathalie Verbruggen1, Christian Hermans2, Henk Schat3
1Laboratoire de Physiologie et de Génétique Moléculaire des Plantes, Faculté des Sciences, Université Libre de Bruxelles, Campus Plaine, Brussels, Belgium.
2Laboratoire de Physiologie et de Génétique Moléculaire des Plantes, Faculté des Sciences, Université Libre de Bruxelles, Campus Plaine, CP242, Bd du Triomphe, B-1050 Brussels, Belgium
3Institute of Molecular and Cellular Biology, Faculty of Earth and Life Sciences, Vrije Universiteit, De Boelelaan 1085, 1081 HV Amsterdam, The Netherlands

Tóm tắt

Từ khóa


Tài liệu tham khảo

Morel, 2008, The co-evolution of phytoplankton and trace element cycles in the oceans, Geobiology, 6, 318, 10.1111/j.1472-4669.2008.00144.x

Kulp, 2008, Arsenic(III) fuels anoxygenic photosynthesis in hot spring biofilms from Mono Lake, California, Science, 321, 967, 10.1126/science.1160799

Hunter, 2008, A toxic brew we cannot live without, EMBO Rep, 9, 15, 10.1038/sj.embor.7401148

Roosens, 2003, Natural variation in cadmium tolerance and its relationship to metal hyperaccumulation for seven populations of Thlaspi caerulescens from western Europe, Plant Cell Environ, 26, 1657, 10.1046/j.1365-3040.2003.01084.x

Liu, 2008, Does cadmium play a physiological role in the hyperaccumulator Thlaspi caerulescens?, Chemosphere, 71, 1276, 10.1016/j.chemosphere.2007.11.063

Clemens, 2006, Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants, Biochimie, 88, 1707, 10.1016/j.biochi.2006.07.003

Nawrot, 2006, Environmental exposure to cadmium and risk of cancer: a prospective population-based study, Lancet Oncol, 7, 119, 10.1016/S1470-2045(06)70545-9

Zhao, 2009, Arsenic uptake and metabolism in plants, New Phytol, 181, 777, 10.1111/j.1469-8137.2008.02716.x

Verbruggen, 2009, Molecular mechanisms of metal hyperaccumulation in plants, New Phytol, 181, 759, 10.1111/j.1469-8137.2008.02748.x

Hanikenne, 2008, Evolution of metal hyperaccumulation required cis-regulatory changes and triplication of HMA4, Nature, 453, 391, 10.1038/nature06877

Meharg, 2002, Arsenic uptake and metabolism in arsenic resistant and nonresistant plant species, New Phytol, 154, 29, 10.1046/j.1469-8137.2002.00363.x

Bleeker, 2006, Enhanced arsenate reduction by a CDC25-like tyrosine phosphatase explains increased phytochelatin accumulation in arsenate-tolerant Holcus lanatus, Plant J, 45, 917, 10.1111/j.1365-313X.2005.02651.x

Bienert, 2008, A subgroup of plant aquaporins facilitate the bi-directional diffusion of As(OH)3 and Sb(OH)3 across membranes, BMC Biol, 6, 26, 10.1186/1741-7007-6-26

Isayenkov, 2008, The Arabidopsis thaliana aquaglyceroporin AtNIP7;1 is a pathway for arsenite uptake, FEBS Lett, 582, 1625, 10.1016/j.febslet.2008.04.022

Ma, 2008, Transporters of arsenite in rice and their role in arsenic accumulation in rice grain, Proc Natl Acad Sci U S A, 105, 9931, 10.1073/pnas.0802361105

Rogers, 2000, Altered selectivity in an Arabidopsis metal transporter, Proc Natl Acad Sci U S A, 97, 4956, 10.1073/pnas.210214197

Plaza, 2007, Expression and functional analysis of metal transporter genes in two contrasting ecotypes of the hyperaccumulator Thlaspi caerulescens, J Exp Bot, 58, 1717, 10.1093/jxb/erm025

Dhankher, 2006, Hyperaccumulation of arsenic in the shoots of Arabidopsis silenced for arsenate reductase (ACR2), Proc Natl Acad Sci U S A, 103, 5413, 10.1073/pnas.0509770102

Heyno, 2008, Origin of cadmium-induced reactive oxygen species production: mitochondrial electron transfer versus plasma membrane NADPH oxidase, New Phytol, 179, 687, 10.1111/j.1469-8137.2008.02512.x

DalCorso, 2008, How plants cope with cadmium: staking all on metabolism and gene expression, J Integr Plant Biol, 10, 1268, 10.1111/j.1744-7909.2008.00737.x

Collin, 2008, Vitamin E is essential for the tolerance of Arabidopsis thaliana to metal-induced oxidative stress, Plant Cell Environ, 31, 244, 10.1111/j.1365-3040.2007.01755.x

Schat, 1997, Heavy metal-induced accumulation of free proline in a metal-tolerant and a nontolerant ecotype of Silene vulgaris, Physiol Plant, 101, 477, 10.1111/j.1399-3054.1997.tb01026.x

Lin, 2008, Arsenate-induced toxicity: effects on antioxidative enzymes and DNA damage in Vicia faba, Environ Toxicol Chem, 27, 413, 10.1897/07-266R.1

Jin, 2003, Cadmium is a mutagen that acts by inhibiting mismatch repair, Nat Genet, 34, 326, 10.1038/ng1172

Blanvillain, 2008, OXIDATIVE STRESS 3 is a chromatin-associated factor involved in tolerance to heavy metals and oxidative stress, Plant J, 57, 654, 10.1111/j.1365-313X.2008.03717.x

Catarecha, 2007, A mutant of the Arabidopsis phosphate transporter PHT1;1 displays enhanced arsenic accumulation, Plant Cell, 19, 1123, 10.1105/tpc.106.041871

Weber, 2006, Comparative transcriptome analysis of toxic metal responses in Arabidopsis thaliana and the Cd(2+)-hypertolerant facultative metallophyte Arabidopsis halleri, Plant Cell Environ, 29, 950, 10.1111/j.1365-3040.2005.01479.x

Roth, 2006, Proteome changes in Arabidopsis thaliana roots upon exposure to Cd2+, J Exp Bot, 57, 4003, 10.1093/jxb/erl170

Jonak, 2004, Heavy metal stress. Activation of distinct mitogen-activated protein kinase pathways by copper and cadmium, Plant Physiol, 136, 3276, 10.1104/pp.104.045724

Jasinski, 2008, AtOSA1, a member of the Abc1-like family, as a new factor in cadmium and oxidative stress response, Plant Physiol, 147, 719, 10.1104/pp.107.110247

Norton, 2008, Rice–arsenate interactions in hydroponics: whole genome transcriptional analysis, J Exp Bot, 59, 2267, 10.1093/jxb/ern097

Craciun, 2006, Comparative cDNA–AFLP analysis of Cd-tolerant and -sensitive genotypes derived from crosses between the Cd hyperaccumulator Arabidopsis halleri and Arabidopsis lyrata ssp. petraea, J Exp Bot, 57, 2967, 10.1093/jxb/erl062

van de Mortel, 2008, Expression differences for genes involved in lignin, glutathione and sulphate metabolism in response to cadmium in Arabidopsis thaliana and the related Zn/Cd-hyperaccumulator Thlaspi caerulescens, Plant Cell Environ, 31, 301, 10.1111/j.1365-3040.2007.01764.x

Mendoza-Cozatl, 2005, Sulfur assimilation and glutathione metabolism under cadmium stress in yeast, protists and plants, FEMS Microbiol Rev, 29, 653, 10.1016/j.femsre.2004.09.004

Song, 2003, Engineering tolerance and accumulation of lead and cadmium in transgenic plants, Nat Biotechnol, 21, 914, 10.1038/nbt850

Kim, 2006, AtATM3 is involved in heavy metal resistance in Arabidopsis, Plant Physiol, 140, 922, 10.1104/pp.105.074146

Kim, 2007, The ABC transporter AtPDR8 is a cadmium extrusion pump conferring heavy metal resistance, Plant J, 50, 207, 10.1111/j.1365-313X.2007.03044.x

Vatamaniuk, 2000, Mechanism of heavy metal ion activation of phytochelatin (PC) synthase: blocked thiols are sufficient for PC synthase-catalyzed transpeptidation of glutathione and related thiol peptides, J Biol Chem, 275, 31451, 10.1074/jbc.M002997200

Cobbett, 2002, Phytochelatins and metallothioneins: roles in heavy metal detoxification and homeostasis, Annu Rev Plant Physiol Plant Mol Biol, 53, 159, 10.1146/annurev.arplant.53.100301.135154

Ernst, 2008, Interaction of heavy metals with the sulphur metabolism in angiosperms from an ecological point of view, Plant Cell Environ, 31, 123, 10.1111/j.1365-3040.2007.01746.x

Ha, 1999, Phytochelatin synthase genes from Arabidopsis and the yeast Schizosaccharomyces pombe, Plant Cell, 11, 1153, 10.1105/tpc.11.6.1153

Prévéral, 2009, A common highly-conserved cadmium detoxification mechanism from bacteria to humans. Heavy metal tolerance conferred by the ABC transporter SpHMT1 requires glutathione but not metal-chelating phytochelatins peptides, J Biol Chem, 284, 4936, 10.1074/jbc.M808130200

Sooksa-nguan, 2009, Drosophila ABC transporter, DmHMT-1, confers tolerance to cadmium. DmHMT-1 and its yeast homolog, SpHMT-1, are not essential for vacuolar phytochelatin sequestration, J Biol Chem, 284, 354, 10.1074/jbc.M806501200

Salt, 1995, MgATP-dependent transport of phytochelatins across the tonoplast of oat roots, Plant Physiol, 107, 1293, 10.1104/pp.107.4.1293

Li, 2005, Overexpression of phytochelatin synthase in Arabidopsis leads to enhanced arsenic tolerance and cadmium hypersensitivity, Plant Cell Physiol, 45, 1787, 10.1093/pcp/pch202

Pomponi, 2006, Overexpression of Arabidopsis phytochelatin synthase in tobacco plants enhances Cd2+ tolerance and accumulation but not translocation to the shoot, Planta, 223, 180, 10.1007/s00425-005-0073-3

Wojas, 2008, Overexpression of phytochelatin synthase in tobacco: distinctive effects of AtPCS1 and CePCS genes on plant response to cadmium, J Exp Bot, 59, 2205, 10.1093/jxb/ern092

Guo, 2008, Overexpressing GSH1 and AsPCS1 simultaneously increases the tolerance and accumulation of cadmium and arsenic in Arabidopsis thaliana, Chemosphere, 72, 1020, 10.1016/j.chemosphere.2008.04.018

Ellis, 2006, A novel arsenate reductase from the arsenic hyperaccumulating fern Pteris vittata, Plant Physiol, 141, 1544, 10.1104/pp.106.084079

Dhankher, 2002, Engineering tolerance and hyperaccumulation of arsenic in plants by combining arsenate reductase and gamma-glutamylcysteine synthetase expression, Nat Biotechnol, 20, 1140, 10.1038/nbt747

Gong, 2003, Long-distance root-to-shoot transport of phytochelatins and cadmium in Arabidopsis, Proc Natl Acad Sci U S A, 100, 10118, 10.1073/pnas.1734072100

Chen, 2006, An improved grafting technique for mature Arabidopsis plants demonstrates long-distance shoot-to-root transport of phytochelatins in Arabidopsis, Plant Physiol, 141, 108, 10.1104/pp.105.072637

Salt, 1995, Mechanisms of cadmium mobility and accumulation in Indian mustard, Plant Physiol, 109, 1427, 10.1104/pp.109.4.1427

Pickering, 2000, Reduction and coordination of arsenic in Indian mustard, Plant Physiol, 122, 1171, 10.1104/pp.122.4.1171

Huang, 2008, Difference of toxicity and accumulation of methylated and inorganic arsenic in arsenic-hyperaccumulating and -hypertolerant plants, Environ Sci Technol, 42, 5106, 10.1021/es703243h

Wong, 2008, HMA P-type ATPases are the major mechanism for root-to-shoot translocation in Arabidopsis thaliana, New Phytol, 181, 71, 10.1111/j.1469-8137.2008.02638.x

Ueno, 2008, Characterization of Cd translocation and identification of the Cd form in xylem sap of the Cd-hyperaccumulator Arabidopsis halleri, Plant Cell Physiol, 49, 540, 10.1093/pcp/pcn026

Su, 2008, Highly efficient xylem transport of arsenite in the arsenic hyperaccumulator Pteris vittata, New Phytol, 180, 434, 10.1111/j.1469-8137.2008.02584.x

Roosens, 2004, Evidence for copper homeostasis function of metallothionein (MT3) in the hyperaccumulator Thlaspi caerulescens, FEBS Lett, 577, 9, 10.1016/j.febslet.2004.08.084

Zhigang, 2006, Expression of BjMT2, a metallothionein 2 from Brassica juncea, increases copper and cadmium tolerance in Escherichia coli and Arabidopsis thaliana, but inhibits root elongation in Arabidopsis thaliana seedlings, J Exp Bot, 57, 3575, 10.1093/jxb/erl102

Guo, 2008, Examining the specific contributions of individual Arabidopsis metallothioneins to copper distribution and metal tolerance, Plant Physiol, 146, 1697, 10.1104/pp.108.115782

Korenkov, 2007, Enhancing tonoplast Cd/H antiporter activity increases Cd, Zn and Mn tolerance, and impacts root/shoot Cd partitioning in Nicotiana tabacum L, Planta, 226, 1379, 10.1007/s00425-007-0577-0

Berezin, 2008, Overexpression of AtMHX in tobacco causes increased sensitivity to Mg2+, Zn2+, and Cd2+ ions, induction of V-ATPase expression, and a reduction in plant size, Plant Cell Rep, 27, 939, 10.1007/s00299-007-0502-9

Morel, 2009, AtHMA3, a P1B-ATPase allowing Cd/Zn/Co/Pb vacuolar storage in Arabidopsis, Plant Physiol, 149, 894, 10.1104/pp.108.130294

Becher, 2004, Cross-species microarray transcript profiling reveals high constitutive expression of metal homeostasis genes in shoots of the zinc hyperaccumulator Arabidopsis halleri, Plant J, 37, 251, 10.1046/j.1365-313X.2003.01959.x

Thomine, 2003, AtNRAMP3, a multispecific vacuolar metal transporter involved in plant responses to iron deficiency, Plant J, 34, 685, 10.1046/j.1365-313X.2003.01760.x

Oomen, 2009, Functional characterization of NRAMP3 and NRAMP4 from the metal hyperaccumulator Thlaspi caerulescens, New Phytol, 181, 637, 10.1111/j.1469-8137.2008.02694.x

Xu, 2007, Rapid reduction of arsenate in the medium mediated by in plant roots, New Phytol, 176, 590, 10.1111/j.1469-8137.2007.02195.x

Hussain, 2004, P-type ATPase heavy metal transporters with roles in essential zinc homeostasis in Arabidopsis, Plant Cell, 16, 1327, 10.1105/tpc.020487

Verret, 2004, Overexpression of AtHMA4 enhances root-to-shoot translocation of zinc and cadmium and plant metal tolerance, FEBS Lett, 576, 306, 10.1016/j.febslet.2004.09.023

Mills, 2005, The plant P-1B-type ATPase AtHMA4 transports Zn and Cd and plays a role in detoxification of transition metals supplied at elevated levels, FEBS Lett, 579, 783, 10.1016/j.febslet.2004.12.040

Courbot, 2007, A major quantitative trait locus for cadmium tolerance in Arabidopsis halleri colocalizes with HMA4, a gene encoding a heavy metal ATPase1, Plant Physiol, 144, 1052, 10.1104/pp.106.095133

Willems, 2007, The genetic basis of zinc tolerance in the metallophyte Arabidopsis halleri ssp halleri (Brassicaceae): an analysis of quantitative trait loci, Genetics, 176, 659, 10.1534/genetics.106.064485