Affiliation:
1. Plant Sciences Department, Crop Development Centre, University of Saskatchewan, Saskatoon, Saskatchewan, Canada, S7N 5A8 (L.V.G., N.T.N., M.L.G.); and United States Department of Agriculture, Agricultural Research Service, North Atlantic Area Appalachian Fruit Research Station, Kearneyville, West Virginia 25430 (M.W.)
Abstract
Abstract
Infrared video thermography was used to observe ice nucleation temperatures, patterns of ice formation, and freezing rates in nonacclimated and cold acclimated leaves of a spring (cv Quest) and a winter (cv Express) canola (Brassica napus). Distinctly different freezing patterns were observed, and the effect of water content, sugars, and soluble proteins on the freezing process was characterized. When freezing was initiated at a warm subzero temperature, ice growth rapidly spread throughout nonacclimated leaves. In contrast, acclimated leaves initiated freezing in a horseshoe pattern beginning at the uppermost edge followed by a slow progression of ice formation across the leaf. However, when acclimated leaves, either previously killed by a slow freeze (2°C h−1) or by direct submersion in liquid nitrogen, were refrozen their freezing pattern was similar to nonacclimated leaves. A novel technique was developed using filter paper strips to determine the effects of both sugars and proteins on the rate of freezing of cell extracts. Cell sap from nonacclimated leaves froze 3-fold faster than extracts from acclimated leaves. The rate of freezing in leaves was strongly dependent upon the osmotic potential of the leaves. Simple sugars had a much greater effect on freezing rate than proteins. Nonacclimated leaves containing high water content did not supercool as much as acclimated leaves. Additionally, wetted leaves did not supercool as much as nonwetted leaves. As expected, cell solutes depressed the nucleation temperature of leaves. The use of infrared thermography has revealed that the freezing process in plants is a complex process, reminding us that many aspects of freezing tolerance occur at a whole plant level involving aspects of plant structure and metabolites rather than just the expression of specific genes alone.
Publisher
Oxford University Press (OUP)
Subject
Plant Science,Genetics,Physiology
Reference38 articles.
1. Antikainen M, Griffith M (1997) Antifreeze protein accumulation in freezing-tolerant cereals. Physiol Plant 99
: 423–443
2. Ashworth EN (1992) Formation and spread of ice in plant tissues. Hortic Rev 13
: 215–255
3. Ashworth EN, Kieft TL (1995) Ice nucleation activity associated with plants and fungi. In RE Lee, GJ Warren, LV Gusta, eds, Biological Ice Nucleation and Its Applications. APS Press, St. Paul, pp 137–162
4. Ball MC, Wolfe J, Canny M, Hofmann M, Nicotra AB, Hughes D (2000) Space and time dependence of temperature and freezing in evergreen leaves. Funct Plant Biol 29
: 1259–1272
5. Carter J, Brennan R, Wisniewski M (2001) Patterns of ice formation and movement in blackcurrant. HortScience 36
: 1027–1032
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