From Laboratory to Field. Using Information from Arabidopsis to Engineer Salt, Cold, and Drought Tolerance in Crops
Author:
Affiliation:
1. Mendel Biotechnology, Hayward, California 94545 (J.Z.Z., R.A.C.); and Institute of Integrative Genome Biology and Department of Botany and Plant Sciences, University of California, Riverside, California 92521 (J.-K.Z.)
Publisher
Oxford University Press (OUP)
Subject
Plant Science,Genetics,Physiology
Link
http://academic.oup.com/plphys/article-pdf/135/2/615/38703081/plphys_v135_2_615.pdf
Reference80 articles.
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2. Apse MP, Aharon GS, Snedden WA, Blumwald E (1999) Salt tolerance conferred by overexpression of a vacuolar Na+/H+ antiport in Arabidopsis. Science 285 : 1256–1258
3. Berthomieu P, Conejero G, Nublat A, Brackenbury WJ, Lambert C, Savio C, Uozumi N, Oiki S, Yamada K, Cellier F, et al (2003) Functional analysis of AtHKT1 in Arabidopsis shows that Na(+) recirculation by the phloem is crucial for salt tolerance. EMBO J 22 : 2004–2014
4. Boyce JM, Knight H, Deyholos M, Openshaw MR, Galbraith DW, Warren G, Knight MR (2003) The sfr6 mutant of Arabidopsis is defective in transcriptional activation via CBF/DREB1 and DREB2 and shows sensitivity to osmotic stress. Plant J 34 : 395–406
5. Chaiappetta L (2002) Ottenimento di piante transegniche di mais tolleranti al freddo. PhD thesis. University of Bologna, Bologna, Italy
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