By Giuseppe Montanaro; Bartolomeo Dichio
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Additional resources for Advances in selected plant physiology aspects
3, 355-364. , Colivicchi, M. , Tipton, K. , & Della Corte, L. (2011). Highly reactive oxygen species: detection, formation, and possible functions. 12, 2067-2079. Freisinger, E. (2009). Metallothioneins in Plants. In A. Sigel, H. Sigel & R. K. O. ), Metallothioneins and Related Chelators (Vol. 5, pp. 107-153). Cambridge: The Royal Society of Chemistry. , & Manchanda, G. (2009). ROS generation in plants: Boon or bane? 1, 81 - 96. Gill, S. , & Tuteja, N. (2010). Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants.
Fig. 2. 1 µM of Cu (control) and excess copper (50 µM) for up to 11 days. Fig. 3. SDS-PAGE protein profile of Lupinus luteus leaves after 11 days at different concentrations of copper. Electrophoresis was performed in a 12 % polyacrylamide gel stained with Commassie blue. 28 Advances in Selected Plant Physiology Aspects 3. 1 Enzymatic mechanisms As was said before, enzymatic mechanisms and enzymes involved in specific metabolic pathways are one of the major antioxidative defence strategy of plant defence against excess ROS.
Cellular mechanisms for heavy metal detoxification and tolerance. 366, 1-11. Halliwell, B. (2006). Reactive species and antioxidants. Redox biology is a fundamental theme of aerobic life. 2, 312-322. Hassinen, V. , Tervahauta, A. , & Karenlampi, S. O. (2011). Plant metallothioneins - metal chelators with ROS scavenging activity? 2, 225-232. Haydon, M. , & Cobbett, C. S. (2007). Transporters of ligands for essential metal ions in plants. 3, 499-506. , & Hohtola, A. (2004). ) leaves. 5, 721-728. Kahkonen, M.