Author:
Thangavel P.,Long Stephanie,Minocha Rakesh
Publisher
Springer Science and Business Media LLC
Reference64 articles.
1. Baker AJM, Ewart K, Hendry GAF, Thorpe PC, Walker PL (1990) The evolutionary basis of cadmium tolerance in higher plants. Paper presented at the 4th International Conference on Environmental Contamination, Barcelona, Spain, pp 23–29
2. Bauer GA, Bazzaz FA, Minocha R, Long S, Magill A, Aber J, Berntson GM (2004) Effects of chronic N additions on tissue chemistry, photosynthetic capacity, and carbon sequestration potential of a red pine (Pinus resinosa Ait.) stand in the NE United States. For Ecol Manage 196:173–186
3. Bittsanszky A, Komives T, Gullner G, Gyulai G, Kiss J, Heszky L, Radimszky L, Rennenberg H (2005) Ability of transgenic poplars with elevated glutathione content to tolerate zinc(2+) stress. Environ Int 31:251–254
4. Chaffei C, Pageau K, Suzuki A, Gouia H, Ghorbel MH, Masclaux-Daubresse C (2004) Cadmium toxicity induced changes in nitrogen management in Lycopersicon esculentum leading to a metabolic safeguard through an amino acid storage strategy. Plant Cell Physiol 45:1681–1693
5. Chaney RL, Ryan JA, Li YM, Welch RM, Reeves PG, Brown SL, Green CE (1995) Phytoavailability and bioavailability in risk assessment for Cd in agricultural environments. In: Proceeding of OECD cadmium workshop, stockholm, Sweden, pp 1–28
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