Period and phase control by temperature in the circadian rhythm of carbon dioxide fixation in illuminated leaves of Bryophyllum fedtschenkoi
- 1 April 1989
- journal article
- research article
- Published by Springer Nature in Planta
- Vol. 177 (4) , 456-469
- https://doi.org/10.1007/bf00392613
Abstract
The rhythm of CO2 assimilation exhibited by leaves of Bryophyllum fedtschenkoi maintained in light and normal air occurs only at constant ambient temperatures between 10°C and 30°C. Over this range the period increases linearly with increasing temperature from the extremely low value of 15.7 h to 23.3 h, but shows a considerable degree of temperature compensation. Outside the range 10°C–30°C the rhythm is inhibited but re-starts on changing the temperature to 15°C. Prolonged exposure of leaves to high (40°C) and low (2°C) temperature inhibits the rhythm by driving the basic oscillator to fixed phase points in the cycle which differ by 180°, and which have been characterised in terms of the malate status of the leaf cells. At both temperatures loss of the circadian rhythm of CO2 assimilation is due to the inhibition of phosphoenolpyruvate carboxylase (PEPCase) activity, but the inhibition is apparently achieved in different ways at 40°C and 2°C. High temperature appears to inhibit directly PEPCase activity, but not the activity of the enzymes responsible for the breakdown of malate, with the result that the leaf acquires a low malate status. In contrast, low temperature does not directly inhibit PEPCase activity, but does inhibit enzymes responsible for malate breakdown, so that the malate level in the leaf increases to a high value and PEPCase is eventually allosterically inhibited. The different malate status of leaves held at these two temperatures accounts for the phases of the rhythms being reversed on returning the leaves to 15°C. After exposure to high temperature, CO2 fixation by PEPCase activity can begin immediately, whereas after exposure to low temperature, the large amount of malate accumulated in the leaves has to be decarboxylated before CO2 fixation can begin.Keywords
This publication has 29 references indexed in Scilit:
- Diurnal changes in the properties of phosphoenolpyruvate carboxylase in Bryophyllum leaves: a possible co valent modificationFEBS Letters, 1984
- Kinetic changes with temperature of phosphoenolpyruvate carboxylase from a CAM plantPlant, Cell & Environment, 1984
- An Endogenous Circadian Rhythm in the Rate of Carbon Dioxide Output ofBryophyllumJournal of Experimental Botany, 1973
- Temperature Features of Enzymes Affecting Crassulacean acid MetabolismPlant Physiology, 1967
- An endogenous rhythm in the rate of carbon dioxide output of Bryophyllum - III. The effects of temperature changes on the phase and period of the rhythmProceedings of the Royal Society of London. B. Biological Sciences, 1962
- An Endogenous Rhythm in the Rate of CO2Output ofBryophyllumJournal of Experimental Botany, 1960
- Über den Einfluss der Temperatur auf die endogene Tagesrhythmik und die Blühinduktion bei der KurztagpflanzeKalanchoë BlossfeldianaPlanta, 1960
- The Effect of Light upon Plant RhythmsCold Spring Harbor Symposia on Quantitative Biology, 1960
- An Endogenous Rhythm in the Rate of Carbon Dioxide Output of BryophyllumJournal of Experimental Botany, 1959
- THE RÔLE OF ORGANIC ACIDS IN PLANT METABOLISMNew Phytologist, 1933