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Plant Physiology 59:591-593 (1977)
© 1977 American Society of Plant Biologists

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Articles

Regulation of Senescence in Carnation (Dianthus caryophyllus) by Ethylene

Mode of Action 1

Shimon Mayak2, Yoash Vaadia3 and David R. Dilley

a Department of Horticulture, Michigan State University, East Lansing, Michigan 48824

Carnation (Dianthus caryophyllus) flowers were exposed to 2 µl/l ethylene and examined at intervals to determine the time course of wilting, decrease in water uptake, and increase in ionic leakage in response to ethylene. A rapid decrease in water uptake was observed about 4 hours after initiating treatment with ethylene. This was followed by wilting (in-rolling of petals) about 2 hours later. Carbon dioxide inhibited the decline in water uptake and wilting and this is typical of most ethylene-induced responses. Ethylene did not affect closure of stomates. Ethylene enhanced ionic leakage, as measured by efflux of 36Cl from the vacuole. This was judged to coincide with the decrease in water uptake. Gassing flowers with propylene initiated autocatalytic ethylene production within 2.4 hours. Since the increase in ethylene production by carnations preceded the increase in ionic leakage and the decline in water uptake by several hours, it is apparent that the change in ionic leakage does not lead to the initial increase in ethylene production as reported (Hanson and Kende 1975 Plant Physiol 55:663-669) in morning glory but may explain the autocatalytic phase of ethylene production.


2 Present address: Faculty of Agriculture, The Hebrew University, Rehovot, Israel.

3 Present address: Ministry of Agriculture, The Volcani Center, Bet Dagan, Israel.

1 Michigan Agricultural Experiment Station Journal Article No. 7658. Supported in part by the Gillette Company.




This article has been cited by other articles:


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H. Chang, M. L. Jones, G. M. Banowetz, and D. G. Clark
Overproduction of Cytokinins in Petunia Flowers Transformed with PSAG12-IPT Delays Corolla Senescence and Decreases Sensitivity to Ethylene
Plant Physiology, August 1, 2003; 132(4): 2174 - 2183.
[Abstract] [Full Text] [PDF]


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M. Kamaluddin and J. J. Zwiazek
Ethylene Enhances Water Transport in Hypoxic Aspen
Plant Physiology, March 1, 2002; 128(3): 962 - 969.
[Abstract] [Full Text] [PDF]




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Copyright © 1977 by the American Society of Plant Biologists