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Original Articles

The Inhibition Analysis of Two Heavy Metal ATPase Genes (NtHMA3a and NtHMA3b) in Nicotiana tabacum

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Pages 113-123 | Published online: 29 May 2015

REFERENCES

  • Becher, M., I. N. Talke, L. Krall, and U. Kramer. 2004. Cross-species microarray transcript profiling reveals high constitutive expression of metal homeostasis genes in shoots of the zinc hyperaccumulator Arabidopsis halleri. Plant J. 37:251–268.
  • Cachada, A., S.M. Rodrigues, C. Mieiro, E. Ferreira da Silva, E. Pereira, and A.C. Duarte. 2009. Controlling factors and environmental implications of mercury contamination in urban and agricultural soils under a long-term influence of a chlor-alkali plant in the North–West Portugal. Environ. Geol. 57:91–98.
  • Chen, L., L. Yang, and Q. Wang. 2009. In vivo phytochelatins and Hg-phytochelatin complexes in Hg-stressed Brassica chinensis L. Metallomics 1:101–106.
  • Cobbett, C. S. 2000. Phytochelatins and their roles in heavy metal detoxification. Plant Physiol. 123:825–832.
  • Cui, D.J., and Y.L. Zhang. 2004. Current situation of soil contamination by heavy metals and research advances on the remediation techniques. Chin. J. Soil Sci. 35:366–370.
  • DalCorso, G., S. Farinati, S. Maistri, and A Furini. 2008. How plants cope with cadmium: Staking all on metabolism and gene expression. J. Integr. Plant Biol. 50:1268–1280.
  • Feng, X., J. Sommar, O Lindqvist, and Y Hong. 2002. Occurrence, emissions and deposition of mercury during coal combustion in the province Guizhou, China. Water Air Soil Pollut. 139:311–324.
  • Gardea-Torresdey, J.L., MK Becker-Hapak, JM Hosea, and DW Darnall. 1990. Effect of chemical modification of algal carboxyl groups on metal ion binding. Environ. Sci. Technol. 24:1372–1378.
  • Gong, J.M., D.A. Lee, and JI Schroeder. 2003. Long-distance root-to-shoot transport to phytochelatins and cadmium in Arabidopsis. Proc. Natl. Acad. Sci. U. S. A. 100:10118–10123.
  • Gueldry, O., M. Lazard, F Delort, M Dauplais, I Grigoras, S Blanquet, and P Plateau. 2003. Ycf1p dependent Hg(II) detoxification in Saccharomyces cerevisiae. Eur. J. Biochem. 270:2486–2496.
  • Hassett, D.J., L.V. Heebink, and D.F. Pflughoeft-Hassett. 2009. Potential for mercury vapor release from coal combustion byproducts. Fuel Sci Technol. 85:613–620.
  • Iglesia-Turino, S., A. Febrero, O. Jauregui, C. Caldelas, J.L. Araus, and J. Bort. 2006. Detection and quantification of unbound phytochelatin 2 in plant extracts of Brassica napus grown with different levels of mercury. Plant Physiol. 142:742–749.
  • Karimi, M., A. Depicker, and P Hilson. 2007. Recombinational cloning with plant gateway vectors. Plant Physiol. 145:1144–1154.
  • Korenkov, V., K. Hirschi, J.D. Crutchfield, and GJ Wagner. 2007. Enhancing tonoplast Cd/H antiport activity increases Cd, Zn, and Mn tolerance, and impacts root/shoot Cd partitioning in Nicotiana tabacum L. Planta 226:1379–1387.
  • Korenkov, V., B. King, K. Hirschi, and G.J. Wagner. 2009. Root-selective expression of AtCAX4 and AtCAX2 results in reduced lamina cadmium in field-grown Nicotiana tabacum L. Plant Biotechnol. J. 7:219–226.
  • Lux, A., M. Martinka, M. Vaculik, and P.J. White. 2011. Root responses to cadmium in the rhizosphere: A review. J. Exp. Bot. 62:21–37.
  • Matsuyama, A., Y. Taniguchi, and Y. Yasuda. 2009. Relationships between leaching of methylmercury from the soil and the basic characteristics of alkali soil polluted by mercury in Guizhou China. Bull Environ Contam. Toxicol. 82:363–366.
  • Mendoza-Cozatl, D.G., TO Jobe, F Hauser, and JI Schroeder. 2011. Long-distance transport, vocuolar sequestration and transcriptional responses induced by cadmium and arsenic. Curr. Opin. Plant Biol. 14:554–562.
  • Miyadate, H., S. Adachi, A. Hiraizumi, K. Tezuka, N. Nakazawa, T. Kawamoto, K. Katou, I. Kodama, K. Sakurai, H. Takahashi, N. Satoh-Nagasawa, A Watanabe, T Fujimura, and H Akagi. 2011. OsHMA3, A p18-type of ATPase affects root-to-shoot cadmium translocation in rice by mediating efflux into vacuoles. New Phytol. 189:190–199.
  • Morel, M., J. Crouzet, A. Gravot, P. Auroy, N Leonhardt, A Vavasseur, and P Richaud. 2009. AtHMA3, a P1B-ATPase allowing Cd/Zn/Co/Pb vacuolar storage in Arabidopsis. Plant Physiol. 149:894–904.
  • Mukherjee, A.B., R. Zevenhoven, J Brodersen, L.D. Hylander, and P Bhattacharya. 2004. Mercury in waste in the European Union: Sources, disposal methods and risks. Resour. Conserv. Recycl. 42:155–182.
  • Nagata, T., C. Ishikawa, M Kiyono, and H Pan-Hou. 2006. Accumulation of mercury in transgenic tobacco expressing bacterial polyphosphate. Biol. Pharm. Bull. 29:2350–2353.
  • Nagata, T., A. Nakamura, T. Akizawa, and H. Pan-Hou. 2009. Genetic engineering of transgenic tobacco for enhanced uptake and bioaccumulation of mercury. Biol. Pharm. Bull. 32:1491–1495.
  • Ritter, J.A., and J.P. Bibler. 1992. Remove of mercury from wastewater: Large scale performance of an ion exchange process. Water Sci. Technol. 25:165–172.
  • Sambrook, J., E.F. Fritsch and T. Maniatis 1989. Molecular cloning: A laboratory manual. Cold Spring Harbor, NY: Taylor & Francis.
  • Shafiul, H., M. Zeyaullah, G. Nabi, P.S. Srivastava, and A. Ali. 2010. Transgenic tobacco plant expressing environmental E. coli merA gene for enhanced volatilization of ionic mercury. J. Microbiol. Biotechnol. 20:917–924.
  • Thakur, N., S.K. Upadhyay, P.C. Verma, K. Chandrashekar, and P.K. Singh. 2014. Enhanced whitefly resistance in transgenic tobacco plants expressing double stranded RNA of v-ATPase A gene. PLoS ONE 9:e87235.
  • Tommasini, R., E. Vogt, M. Fromenteau, S. Hortensteiner, P.. Matile, N. Amrhein, and E Martinoia. 1998. An ABC-transporter of Arabidopsis thaliana has both glutathione-conjugate and chlorophyll catabolite transport activity. Plant J. 13:773–780.
  • Ueno, D., M.J. Milner, N. Yamaji, K. Yokosho, E. Koyama, Z.M. Clemencia, M. Kaskie, S. Ebbs, L.V. Kochian, and J.F. Ma. 2011. Elevated expression of TcHMA3 plays a key role in the extreme Cd tolerance in a Cd-hyperaccumulating ecotype of Thlaspi caerulescens. Plant J. 66:852–862.
  • Ueno, D., N. Yamaji, I. Kono, C.F. Huang, T. Ando, M. Yano, and J.F. Ma. 2010. Gene limiting cadmium accumulation in rice. Proc. Natl. Acad. Sci. U. S. A. 107:16500–16505.
  • Verbruggen, N., C. Hermans, and H. Schat. 2009. Mechanisms to cope with arsenic or cadmium excess in plants. Curr. Opin. Plant Biol. 12:364–372.
  • Von Castein, H., Y. Li, KN Timmis, W.D. Deckwer, and I Wagner-Dobler. 2001. Long-term performance of bioreactors cleaning mercury-contaminated wastewater and their response to temperature and mercury stress and mechanical perturbation. Biotechnol. Bioeng. 74:212–219.
  • Von Castein, H., Y. Li, and I. Wagner-Dobler. 1999. Remove of mercury from chloralkali electrolysis wastewater by a mercury-resistant Pseudomonas putida strain. Appl. Environ. Microbiol. 65:5279–5284.
  • Wagner-Dobler, I., H. Von Castein, Y. Li, K.N. Timmis, and WD Deckwer. 2000. Remove of mercury from chemical wastewater by microorganisms in technical scale. Environ. Sci. Technol. 34:4628–4634.
  • Wang, J., X. Feng, C.W.N. Anderson, Y. Xing, and L. Shang. 2012. Remediation of mercury contaminated sites—A review. J. Hazard. Mater. 221–222:1–18.
  • Wu, G.H., and S.S. Cao. 2010. Mercury and cadmium contamination of irrigation water, sediment, soil and shallow groundwater in a waste water-irrigated field in Tianjin, China. Bull. Environ. Contam. Toxicol. 84:336–341.
  • Wu, Y., S Wang, D.G. Streets, J. Hao, M. Chan, and J. Jiang. 2006. Trends in anthropogenic mercury emissions in China from 1995 to 2003. Environ. Sci. Technol. 40:5312–5318.
  • Yang, L., C. Liu, X. Wang, L. Pei, Y. Zhang, H. Hou, J. Jiang, and C. Song. 2010. Soil contamination assessment of main cities in Henan Province and its protection measures. SNWT Water Sci. Technol. 8:94–97.

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