286
Views
41
CrossRef citations to date
0
Altmetric
Articles

Subcellular distribution, chemical forms and thiol synthesis involved in cadmium tolerance and detoxification in Siegesbeckia orientalis L.

, , , , , , , & show all

References

  • Aibibu N, Liu Y, Zeng G, Wang X, Chen B, Song H, Xu L. 2010. Cadmium accumulation in Vetiveria zizanioides and its effects on growth, physiological and biochemical parameters. Bioresour Technol. 101:6297–6303.
  • Ali H, Khan E, Sajad MA. 2013. Phytoremediation of heavy metals—concepts and applications. Chemosphere. 91:869–881.
  • Bell J, Tanhuanpää P, Kalendar R, Schulman AH, Kiviharju E. 2007. A major gene for grain cadmium accumulation in oat (Avena sativa L.). Genome. 50:588–594.
  • Clemens S. 2006. Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants. Biochimie. 88:1707–1719.
  • Del Longo OT, González CA, Pastori GM, Trippi VS. 1993. Antioxidant defences under hyperoxygenic and hyperosmotic conditions in leaves of two lines of maize with differential sensitivity to drought. Plant Cell Physiol. 34:1023–1028.
  • Deng X, Xia Y, Hu W, Zhang H, Shen Z. 2010. Cadmium-induced oxidative damage and protective effects of N-acetyl-l-cysteine against cadmium toxicity in Solanum nigrum L. J Hazard Mater. 180:722–729.
  • Ebbs S, Lau I, Ahner B, Kochian L. 2002. Phytochelatin synthesis is not responsible for Cd tolerance in the Zn/Cd hyperaccumulator Thlaspi caerulescens (J. & C. Presl). Planta. 214:635–640.
  • Fu X, Dou C, Chen Y, Chen X, Shi J, Yu M, Xu J. 2011. Subcellular distribution and chemical forms of cadmium in Phytolacca americana L. J Hazard Mater. 186:103–107.
  • Gallego SM, Pena LB, Barcia RA, Azpilicueta CE, Iannone MF, Rosales EP, Zawoznik MS, Groppa MD, Benavides MP. 2012. Unravelling cadmium toxicity and tolerance in plants: Insight into regulatory mechanisms. Environ Exp Bot. 83:33–46.
  • Gao L, Peng K, Xia Y, Wang G, Niu L, Lian C, Shen Z. 2013. Cadmium and manganese accumulation in Phytolacca americana L. and the roles of non-protein thiols and organic acids. Int J Phytoremed. 15:307–319.
  • Hall J. 2002. Cellular mechanisms for heavy metal detoxification and tolerance. J Exp Bot. 53:1–11.
  • Hao X, Li T, Yu H, Zhang X, Zheng Z, Chen G, Zhang S, Zhao L, Pu Y. 2015. Cd accumulation and subcellular distribution in two ecotypes of Kyllinga brevifolia Rottb as affected by Cd treatments. Environ Sci Pollut Res. 22:7461–7469.
  • He S, Wu Q, He Z. 2014. Synergetic effects of DA-6/GA 3 with EDTA on plant growth, extraction and detoxification of Cd by Lolium perenne. Chemosphere. 117:132–138.
  • Hissin PJ, Hilf R. 1976. A fluorometric method for determination of oxidized and reduced glutathione in tissues. Anal Biochem. 74:214–226.
  • Lai HY. 2015. Subcellular distribution and chemical forms of cadmium in Impatiens walleriana in relation to its phytoextraction potential. Chemosphere. 138:370–376.
  • Li CC, Dang F, Cang L, Zhou CF, Zhou DM. 2014. Integration of metal chemical forms and subcellular partitioning to understand metal toxicity in two lettuce (Lactuca sativa L.) cultivars. Plant Soil. 384:201–212.
  • Liu Y, Wang X, Zeng G, Qu D, Gu J, Zhou M, Chai L. 2007. Cadmium-induced oxidative stress and response of the ascorbate-glutathione cycle in Bechmeria nivea (L.) Gaud. Chemosphere. 69:99–107.
  • Lu H, Li Z, Wu J, Shen Y, Li Y, Zou B, Tang Y, Zhuang P. 2017. Influences of calcium silicate on chemical forms and subcellular distribution of cadmium in Amaranthus hypochondriacus L. Scient Rep. 7:40583.
  • Lu R K. 2000. Soil and Agro-chemical Analysis Methods. Agricultural Science and Technology Press: Beijing, China.
  • Memon AR, Jusovic M, Niehaus K. 2009. Implications of metal accumulation mechanisms to phytoremediation. Environ Sci Pollut Res. 16:162–175.
  • Mendoza-Cózatl DG, Jobe TO, Hauser F, Schroeder JI. 2011. Long-distance transport, vacuolar sequestration, tolerance, and transcriptional responses induced by cadmium and arsenic. Curr Opin Plant Biol. 14:554–562.
  • Mendoza‐Cózatl DG, Springer F, Torpey JW, Komives EA, Kehr J, Schroeder JI. 2008. Identification of high levels of phytochelatins, glutathione and cadmium in the phloem sap of Brassica napus. A role for thiol‐peptides in the long‐distance transport of cadmium and the effect of cadmium on iron translocation. Plant J. 54:249–259.
  • Nazar R, Iqbal N, Masood A, Khan MIR, Syeed S, Khan NA. 2012. Cadmium toxicity in plants and role of mineral nutrients in its alleviation. Am J Plant Sci. 3:1476–1489.
  • Ni TH, Wei YZ. 2003. Subcellular distribution of cadmium in mining ecotype Sedum alfredii. Acta Bot Sin. 45:925–928.
  • Nishizono H, Kubota K, Suzuki S, Ishii F. 1989. Accumulation of heavy metals in cell walls of Polygonum cuspidatum roots from metalliferous habitats. Plant Cell Physiol. 30:595–598.
  • Nouairi I, Ammar WB, Youssef NB, Miled DDB, Ghorbal MH, Zarrouk M. 2009. Antioxidant defense system in leaves of Indian mustard (Brassica juncea) and rape (Brassica napus) under cadmium stress. Acta Physiol Plantarum. 31:237–247.
  • Pal R, Rai JP. 2010. Phytochelatins: peptides involved in heavy metal detoxification. Appl Biochem Biotech. 160:945–963.
  • Qiu Q, Wang Y, Yang Z, Yuan J. 2011. Effects of phosphorus supplied in soil on subcellular distribution and chemical forms of cadmium in two Chinese flowering cabbage (Brassica parachinensis L.) cultivars differing in cadmium accumulation. Food Chem Toxicol. 49:2260–2267.
  • Rea PA. 2012. Phytochelatin synthase: of a protease a peptide polymerase made. Physiol Plantarum. 145:154–164.
  • Salt DE, Smith R, Raskin I. 1998. Phytoremediation. Ann Rev Plant Biol. 49:643–668.
  • Song WY, Mendoza‐Cózatl DG, Lee Y, Schroeder JI, AHN SN, LEE HS, Wicker T, Martinoia E. 2014. Phytochelatin–metal (loid) transport into vacuoles shows different substrate preferences in barley and Arabidopsis. Plant, Cell Environ 37:1192–1201.
  • Su Y, Liu J, Lu Z, Wang X, Zhang Z, Shi G. 2014. Effects of iron deficiency on subcellular distribution and chemical forms of cadmium in peanut roots in relation to its translocation. Environ Exp Bot. 97:40–48.
  • Sun Q, Ye ZH, Wang XR, Wong MH. 2007. Cadmium hyperaccumulation leads to an increase of glutathione rather than phytochelatins in the cadmium hyperaccumulator Sedum alfredii. J Plant Physiol. 164:1489–1498.
  • Sun Y, Zhou Q, Diao C. 2008. Effects of cadmium and arsenic on growth and metal accumulation of Cd-hyperaccumulator Solanum nigrum L. Bioresour Technol. 99:1103–1110.
  • Tang YT, Qiu RL, Zeng XW, Ying RR, Yu FM, Zhou XY. 2009. Lead, zinc, cadmium hyperaccumulation and growth stimulation in Arabis paniculata Franch. Environ Exp Bot. 66:126–134.
  • Tong YP, Kneer R, Zhu YG. 2004. Vacuolar compartmentalization: a second-generation approach to engineering plants for phytoremediation. Trends Plant Sci. 9:7–9
  • Verbruggen N, Hermans C, Schat H. 2009. Mechanisms to cope with arsenic or cadmium excess in plants. Curr Opin Plant Biol. 12:364–72.
  • Wang X, Liu Y, Zeng G, Chai L, Song X, Min Z, Xiao X. 2008. Subcellular distribution and chemical forms of cadmium in Bechmeria nivea (L.) Gaud. Environ Exp Bot. 62:389–395.
  • Wei S, Zhou Q, Xin W, Zhang K, Guo G, Lena Qiying MA. 2005. A newly-discovered Cd-hyperaccumulator Solanum nigrum L. Chinese Sci Bull. 50:33–38.
  • Wei S, Zeng X, Wang S, Zhu J, Ji D, Li Y, Jiao H. 2014. Hyperaccumulative property of Solanum nigrum L. to Cd explored from cell membrane permeability, subcellular distribution, and chemical form. J Soils Sediments. 14:558–566.
  • Weigel HJ, Jäger HJ. 1980. Subcellular distribution and chemical form of cadmium in bean plants. Plant Physiol. 65:480–482.
  • Weng B, Xie X, Weiss DJ, Liu J, Lu H, Yan C. 2012. Kandelia obovata (S., L.) Yong tolerance mechanisms to cadmium: subcellular distribution, chemical forms and thiol pools. Mar Pollut Bull. 64:2453–2460.
  • Wu FB, Dong J, Qian QQ, Zhang GP. 2005. Subcellular distribution and chemical form of Cd and Cd–Zn interaction in different barley genotypes. Chemosphere. 60:1437–1446.
  • Xu P, Wang Z. 2013. Physiological mechanism of hypertolerance of cadmium in Kentucky bluegrass and tall fescue: Chemical forms and tissue distribution. Environ Exp Bot. 96:35–42.
  • Yu FM, Tang YT, Zhou XY, Hu PJ, Zeng XW, Zhao X, Qiu RL. 2007. Subcellular distribution and chemical forms of Cd in Arabis paniculata Franch. Acta Scient Natural Univ Sunyat. 46:88–92 ( in Chinese).
  • Zeng X, Ma LQ, Qiu R, Tang Y. 2009. Responses of non-protein thiols to Cd exposure in Cd hyperaccumulator Arabis paniculata Franch. Environ Exp Botany. 66:242–248.
  • Zhang S, Chen M, Li T, Xu X, Deng L. 2010. A newly found cadmium accumulator-Malva sinensis Cavan. J Hazard Mater. 173:705–709.
  • Zhang S, Lin H, Deng L, Gong G, Jia Y, Xu X, Li T, Li Y, Chen H. 2013. Cadmium tolerance and accumulation characteristics of Siegesbeckia orientalis L. Ecol Eng. 51:133–139.
  • Zhao L, Li T, Yu H, Chen G, Zhang X, Zheng Z, Li J. 2015a. Changes in chemical forms, subcellular distribution, and thiol compounds involved in Pb accumulation and detoxification in Athyrium wardii (Hook.). Environ Sci Pollut Res. 22:12676–12688.
  • Zhao Y, Wu J, Shang D, Ning J, Zhai Y, Sheng X, Ding H. 2015b. Subcellular distribution and chemical forms of cadmium in the edible seaweed, Porphyra yezoensis. Food Chem. 168:48–54.
  • Zhu YL, Pilon-Smits EA, Tarun AS, Weber SU, Jouanin L, Terry N. 1999. Cadmium tolerance and accumulation in Indian mustard is enhanced by overexpressing γ-glutamylcysteine synthetase. Plant Physiol. 121:1169–1177.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.