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Metabolic acclimation to ice encasement in winter wheat

Published online by Cambridge University Press:  05 December 2011

C. J. Andrews
Affiliation:
Plant Research Centre, Agriculture Canada, Ottawa, Ontario, K1A OCS, Canada
H. J. Hope
Affiliation:
Plant Research Centre, Agriculture Canada, Ottawa, Ontario, K1A OCS, Canada
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Abstract

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Type
Short Communications
Copyright
Copyright © Royal Society of Edinburgh 1994

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References

Andrews, C. J. 1993. Metabolic acclimation in winter cereals by interacting low temperature stresses. In Jackson, M. & Black, C. R. (Eds). Interacting stresses on plants in a changing climate. NATO ASI Series Vol I 16, pp. 395406. Heidelberg: Springer Verlag.CrossRefGoogle Scholar
Andrews, C. J. & Pomeroy, M. K. 1981. The effect of flooding pretreatment on cold hardiness and survival of winter cereals in ice encasement. Canadian Journal of Plant Science 61, 507–13.CrossRefGoogle Scholar
Andrews, C. J. & Pomeroy, M. K. 1989. Metabolic acclimation to hypoxia in winter cereals: low temperature flooding increases adenylates and survival in ice encasement. Plant Physiology 91, 1063–8.CrossRefGoogle ScholarPubMed
Christie, P. J., Hahn, M. & Walbot, V. 1991. Low temperature accumulation of alcohol dehydrogenase-1 mRNA and protein activity in maize and rice seedlings. Plant Physiology 95, 699706.CrossRefGoogle ScholarPubMed
Gutmann, I. & Wahlefeld, A. W. 1974. L-(+)-Lactate determination with lactate dehydrogenase and NAD In Bergmeyer, H. V. (Ed.) Methods of enzymatic analysis, Vol. 3, pp. 1464–8. New York: Academic Press.Google Scholar
Hoffman, N. E. & Hanson, A. D. 1986. Purification and properties of hypoxically induced lactate dehydrogenase from barley roots. Plant Physiology 82, 664–70.CrossRefGoogle ScholarPubMed
Jarillo, J. A., Leyva, A., Salinas, J. & Martinez-Zapater, J. M. 1993. Low temperature induces the accumulation of alcohol dehydrogenase mRNA in Arabidopsis thaliana, a chilling tolerant plant. Plant Physiology 101, 833–7.CrossRefGoogle ScholarPubMed
Mujer, C. V., Rumpho, M. E., Lin, J. J. & Kennedy, R. A. 1993. Constitutive and inducible aerobic and anaerobic stress proteins in the Echinochloa complex and rice. Plant Physiology 101, 217–26.CrossRefGoogle ScholarPubMed
Rioval, J. & Hanson, A. D. 1993. Evidence for a large and sustained glycolytic flux to lactate in anoxic roots of some members of the halophytic genus Limonium. Plant Physiology 101, 553–60.CrossRefGoogle Scholar
Xia, J. M. & Saglio, P. H. 1992. Lactic acid efflux as a mechanism of hypoxic acclimation of maize root tips to anoxia. Plant Physiology 100, 40–6.CrossRefGoogle ScholarPubMed