Skip to main content
Have a personal or library account? Click to login
Influence of Copper Ions on the Plant Material Obtained from the Anther Culture of Carrot (Daucus carota L.) Cover

Influence of Copper Ions on the Plant Material Obtained from the Anther Culture of Carrot (Daucus carota L.)

Open Access
|Jan 2011

References

  1. Alaoui-Sossé B., Genet P., Vinit-Dunand F., Toussaint M.L., Epron D., Badot P.M. 2004. Effect of copper on growth in cucumber plants () and its relationships with carbohydrate accumulation and changes in ion contents. Plant Sci. 166: 1213-1218.
  2. Amarowicz R., Pegg R.B., Rahimi-Moghaddam P., Barl B., Weil J.A. 2004. Free-radical scavenging capacity and antioxidant activity of selected plant species from the Canadian prairies. Food Chem. 84: 551-562.
  3. Borowski K. 2003. Tips and techniques for milestone microwave lab station. An operations overview and practical guide. Edition 1.2i Milestone Inc.
  4. Chen E.L., Chen Y.A., Chen L.M., Liu Z.H. 2002. Effect of copper on peroxidase activity and lignin content in. Plant Physiol. Biochem. 40: 439-444.
  5. Cvikrová M., Malá J., Eder J., Hrubcová M., Vágner M. 1998. Abscisic acid, polyamines and phenolic acids in sessile oak somatic embryos in relation to their conversion potential. Plant Physiol. Biochem. 36: 247-255.
  6. Dahleen L. 1995. Improved plant regeneration from barley callus cultures by increased copper levels. Plant Cell Tiss. Org. Cult. 43: 267-269.
  7. Garcia A., Baquedano F.J., Navarro P., Castillo F.J. 1999. Oxidative stress induced by copper in sunflower plants. Free Rad. Res. 31: 45-50.
  8. Górecka K., Krzyżanowska D., Górecki R. 2005. The influence of several factors on the efficiency of androgenesis in carrot. J. Appl. Genet. 46: 265-269.
  9. Górecka K., Cvikrová M., Kowalska U., Eder J., Szafrańska K., Górecki R., Janas K.M. 2007. The impact of Cu treatment on phenolic and polyamine levels in plant material regenerated from embryos obtained in anther culture of carrot. Plant Physiol. Biochem. 45: 54-61.
  10. Heath R.L., Packer L. 1968. Photoperoxidation in isolated chloroplast. I. Kinetics and stechiometry of fatty acid peroxidation. Arch. Biochemistry & Biophysic 125: 189-198.
  11. Janas K.M., Amarowicz R., Zielińska-Tomaszewska J., Kosińska A., Posmyk M. 2009. Induction of phenolic compounds in two dark-grown lentil cultivars with different tolerance to copper ions. Acta Physiol. Plant. 31: 587-595.
  12. Ke W., Xiong Z., Xie M., Luo Q. 2007. Accumulation, subcellular location and ecophysiological responses to copper stress in twoL. populations. Plant Soil 292: 291-304.
  13. Konno H., Nakashima S., Katoh K. 2010. Metal-tolerant mossaccumulates copper in the cell wall pectin of the protonema. J. Plant Physiol. 167: 358-364.
  14. Kováčik J. Grúz J., Bačkor M., Tomko J., Strnad M., Repčák 2008. Phenolic compounds composition and physiological attributes ofgrown in copper excess. Env. Exp. Bot. 62: 145-152.
  15. Lee S.Y., Lee J.H., Kwon T.O. 2003. Selection of salt-tolerant doubled haploids in rice anther culture. Plant, Cell, Tissue and Organ Culture 74: 143-149.
  16. Lorenc-Kukuła K., Kosińska A., Szopa J., Amarowicz R. 2009. RP-HPLC-DAD finger print analysis of phenolic extracts from transgenic flax. Pol. J. Food Nutr. Sci. 59: 135-140.
  17. Lutts S., Kinet J.M., Bouharmont J. 1996. NaCl-induced senescence in leaves of rice (L.) cultivars differing in salinity resistance. Ann Bot. 78: 389-398.
  18. Maksymiec W., Krupa Z. 2006. The effects of short-term exposition to Cd, excess Cu ions and jasmonate on oxidative stress appearing in. Env. Exp. Bot. 57: 187-194.
  19. Niggeweg R., Michael A.J., Martin C. 2004. Engineering plants with increased levels of the antioxidant chlorogenic acid. Nat. Biotechnol. 22: 746-754.
  20. Ochatt S., Pech C., Grewal R., Conreux C., Lulsdorf M., Jacas L. 2009. Abiotic stress enhances androgenesis from isolated microspores of some legume species (). J. Plant Physiol. 166: 1314-1328.
  21. Sharma S.S., Dietz K.J. 2006. The significance of amino acids and amino acid-derived molecules in plant responses and adaptation to heavy metal stress. J Exp. Bot. 57: 711-726.
  22. Srivastava S., Mishra S., Tripathi R.D., Dwivedi S., Gupta D.K. 2006. Copper-induced oxidative stress and responses of antioxidants and phytochelatins in(L.f.) Royle. Aquatic Toxicol. 80: 405-415.
  23. Sroka Z., Cisowski W. 2003. Hydrogen peroxide scavenging, antioxidant and anti-radical activity of some phenolic acids. Food Chem. Toxicol. 41: 753-758.
  24. Wiśniewski L. Dickinson N.M. 2003. Toxicity of copper to(English Oak) seedlings from copper-reach soil. Env. Exp. Bot. 50: 99-107.
  25. Wojnarowicz G., Jacquard C., Devaux P., Sangwan R.S., Clément C. 2002. Influence of copper sulphate on anther culture in barley (L.). Plant Sci. 162: 843-7.
  26. Vaughan D., Ord B.G. 1991. Extraction of potential allelochemicals and their effect on root morphology and nutrient contents. In: Plant Root Growth. (Atkinson D. ed.). An Ecological Perspective, Blackwell Scientific Publications, Oxford: 399-421.
Language: English
Page range: 23 - 31
Published on: Jan 28, 2011
Published by: Sciendo
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2011 Katarzyna Szafrańska, Urszula Kowalska, Krystyna Górecka, Ryszard Amarowicz, Anna Urbalewicz, Ryszard Górecki, Krystyna Janas, published by Sciendo
This work is licensed under the Creative Commons License.