Photosynthetica 2008, 46(4):537-546 | DOI: 10.1007/s11099-008-0091-z
Irreversible changes in barley leaf chlorophyll fluorescence detected by the fluorescence temperature curve in a linear heating/cooling regime
- 1 Laboratory of Biophysics, Faculty of Science, Palacký University, Olomouc, Czech Republic
The chlorophyll fluorescence (F) temperature curves in a linear time-temperature heating/cooling regime were used to study heat-induced irreversible F changes in primary green leaves of spring barley (Hordeum vulgare L. cv. Akcent). The leaf segments were heated in a stirred water bath at heating rates of 0.0083, 0.0166, 0.0333, and 0.0500 °C s-1 from room temperature up to maximal temperature T m and then linearly cooled to 35 °C at the same rate. The F intensity was measured by a pulse-modulated technique. The results support the existence of the two critical temperatures of irreversible F changes postulated earlier, at 45-48 and 53-55 °C. The critical temperatures are slightly dependent on the heating rate. Two types of parameters were used to characterize the irreversibility of the F changes: the coefficient of irreversibility μ defined as the ratio of F intensity at 35 °C at the starting/ending parts of the cycle and the slopes of tangents of linear parts of the F temperature curve. The dependence of μ on T m revealed a maximum, which moved from 54 to 61 °C with the increasing heating/cooling rate v from 0.0083 to 0.0500 °C s-1, showing two basic phases of the irreversible changes. The Arrhenius and Eyring approaches were applied to calculate the activation energies of the initial increase in μ. The values varied between 30 and 50 kJ mol-1 and decreased slightly with the increasing heating rate.
Additional key words: heat stress; Hordeum
Received: April 14, 2008; Accepted: August 9, 2008; Published: December 1, 2008 Show citation
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References
- Armond, P.A., Schreiber, U., Björkman, O.: Photosynthetic acclimation to temperature in the desert shrub, Larrea divaricata. II. Light-harvesting efficiency and electron transport.-Plant Physiol. 61: 411-415, 1978.
Go to original source... - Bartošková, H., Komenda, J., Nauš, J.: Functional changes of photosystem II in the moss Rhizomnium punctatum (Hedw.) induced by different rates of dark desiccation.-J. Plant Physiol. 154: 597-604, 1999.
Go to original source... - Bischof, J.C., He, X.: Thermal stability of proteins.-Ann. New York Acad. Sci. 1066: 12-33, 2005.
Go to original source... - Björkman, O., Demmig, B.: Photon yield of O2 evolution and chlorophyll fluorescence characteristic at 77 K among vascular plants of diverse origins.-Planta 170: 489-504, 1987.
Go to original source... - Briantais, J.-M., Dacosta, J., Goulas, Y., Ducruet, J.-M., Moya, I.: Heat stress induces in leaves an increase of the minimum level of chlorophyll fluorescence, F0: A time-resolved analysis.-Photosynth. Res. 48: 189-196, 1996.
Go to original source... - Čajánek, M., Štroch, M., Lachetová, I., Kalina, J., Špunda, V.: Characterization of the photosystem II inactivation of heat-stressed barley leaves as monitored by the various parameters of chlorophyll a fluorescence and delayed fluorescence.-J. Photochem. Photobiol. B 47: 39-45, 1998.
Go to original source... - Cao, J., Govindjee: Chlorophyll a fluorescence transient as an indicator of active and inactive Photosystem II in thylakoid membranes.-Biochim. biophys. Acta 1015: 180-188, 1990.
Go to original source... - Crafts-Brandner, S.J., Salvucci, E.M.: Sensitivity of photosynthesis in a C4 plant, maize, to heat stress.-Plant Physiol. 129: 1773-1780, 2002.
Go to original source... - Gilmore, A.M., Itoh, S.S., Govindjee: Global spectral-kinetic analysis of room temperature chlorophyll a fluorescence from light-harvesting antenna mutants of barley.-Phil. Trans. roy. Soc. London B 335: 1371-1384, 2000.
Go to original source... - Gilmore, A.M., Yamamoto, H.Y.: Linear models relating xanthophylls and lumen acidity to non-photochemical fluorescence quenching. Evidence that antheraxanthin explains zeaxanthin-independent quenching.-Photosynth. Res. 35: 67-78, 1993.
Go to original source... - Ginzburg, C., Salomon, R.: The effect of dormancy on the heat shock response in Gladiolus cormels.-Plant Physiol. 81: 259-267, 1986.
Go to original source... - Gounaris, K., Brain, A.P.R., Quinn, P.J., Williams, W.P.: Structural and functional changes associated with heat-induced phase-separations of non-bilayer lipids in chloroplast thylakoid membranes.-FEBS Lett. 153: 47-52, 1983.
Go to original source... - Härtel, H., Lokstein, H.: Relationship between quenching of maximum and dark-level chlorophyll fluorescence in vivo. Dependence on photosystem II antenna size.-Biochim. biophys. Acta 1228: 91-94, 1995.
Go to original source... - Havaux, M.: Characterization of thermal damage to the photosynthetic electron transport system in potato leaves.-Plant Sci. 94: 19-33, 1993a.
Go to original source... - Havaux, M.: Rapid photosynthetic adaptation to heat stress triggered in potato leaves by moderately elevated temperatures.-Plant Cell Environ. 16: 461-467, 1993b.
Go to original source... - Havaux, M., Ernez, M., Lannoye, R.: Correlation between heat tolerance and drought tolerance in cereals demonstrated by rapid chlorophyll fluorescence tests.-J. Plant Physiol. 133: 555-560, 1988.
Go to original source... - Havaux, M., Gruszecki, W.I.: Heat-induced and light-induced chlorophyll a fluorescence changes in potato leaves containing high or low levels of the carotenoid zeaxanthin: Indications of a regulatory effect of zeaxanthin on thylakoid membrane fluidity.-Photochem. Photobiol. 58: 607-614, 1993.
Go to original source... - Havaux, M., Tardy, F.: Thermostability and photostability of photosystem II in leaves of the chlorina-f2 barley mutant deficient in light-harvesting chlorophyll a/b protein complexes.-Plant Physiol. 113: 913-923, 1997.
Go to original source... - Howarth, C.J.: Molecular responses of plants to an increased incidence of heat shock.-Plant Cell Environ. 14: 831-841, 1991.
Go to original source... - Ilík, P., Kouřil, R., Kruk, J., Myśliwa-Kurdziel, B., Popelková, H., Strzałka, K., Nauš, J.: Origin of chlorophyll fluorescence in plants at 55-75 °C.-Photochem. Photobiol. 77: 68-76, 2003.
Go to original source... - Ilík, P., Nauš, J., Cikánek, D., Novotný, R.: Chlorophyll fluorescence changes at high temperatures induced by linear heating of greening barley leaves.-Photosynth. Res. 44: 271-275, 1995.
Go to original source... - Klinkovsky, T., Naus, J.: Sensitivity of the relative Fpl level of chlorophyll fluorescence induction in leaves to the heat stress.-Photosynth. Res. 39: 201-204, 1994.
Go to original source... - Kouřil, R., Lazár, D., Ilík, P., Skotnica, J., Krchňák, P., Nauš, J.: High-temperature induced chlorophyll fluorescence rise in plants at 40-50 °C: experimental and theoretical approach.-Photosynth. Res. 81: 49-66, 2004.
Go to original source... - Kurasová, I., Kalina, J., Štroch, M., Urban, O., Špunda, V.: Response of photosynthetic apparatus of spring barley (Hordeum vulgare L.) to combined effects of elevated CO2 concentration and different growth irradiance.-Photosynthetica 41: 209-219, 2003.
Go to original source... - Kuropatwa, R., Nauš, J., Mašláň, M., Dvořák, L.: Basic properties of the chlorophyll fluorescence temperature curve in barley leaves.-Photosynthetica 27: 129-138, 1992.
- Lavorel, J., Joliot, P.: A connected model of the photosynthetic unit.-Biophys. J. 12: 815-831, 1972.
Go to original source... - Lazár, D.: Chlorophyll a fluorescence induction.-Biochim. biophys. Acta 1412: 1-28, 1999.
Go to original source... - Lazár, D.: Chlorophyll a fluorescence rise induced by high light illumination of dark-adapted plant tissue studied by means of a model of photosystem II and considering photosystem II heterogeneity.-J. theor. Biol. 220: 469-503, 2003.
Go to original source... - Lazár, D., Ilík, P.: High-temperature induced chlorophyll fluorescence changes in barley leaves. Comparison of the critical temperatures determined from fluorescence induction and from fluorescence temperature curve.-Plant Sci. 124: 159-164, 1997.
Go to original source... - Lazár, D., Nauš, J., Matoušková, M., Flašarová, M.: Mathematical modelling of changes in chlorophyll fluorescence induction caused by herbicides.-Pestic. Biochem. Physiol. 57: 200-210, 1997.
Go to original source... - Melis, A., Ow, R.A.: Photoconversion kinetics of chloroplast photosystems I and II. Effect of Mg2+.-Biochim. biophys. Acta 682: 1-10, 1982.
Go to original source... - Nauš, J., Dvořák, L., Kuropatwa, R., Mašláň, M.: Transitions in thylakoid membranes of barley leaves studied by chlorophyll fluorescence temperature curve.-Photosynthetica 27: 563-570, 1992a.
- Nauš, J., Kuropatwa, R., Klinkovský, T., Ilík, P., Lattová, J., Pavlová, Z.: Heat injury of barley leaves detected by the chlorophyll fluorescence temperature curve.-Biochim. biophys. Acta 1101: 359-362, 1992b.
Go to original source... - Nauš, J., Šnáblová, M., Dvořák, L., Kupka, Z.: Temperature dependence of in vivo chlorophyll a fluorescence.-Acta Univ. palacki. olomouc. Fac. Rer. nat. Phys. 85: 47-63, 1986.
- Owens, T.G.: Processing of excitation energy by antennas pigments.-In: Baker, N.R. (ed.): Photosynthesis and the Environment. Pp. 1-23. Kluwer Acad. Publ., Dordrecht 1996.
Go to original source... - Pfündel, E.: Estimating the contribution of Photosystem I to total leaf chlorophyll fluorescence.-Photosynth. Res. 56: 185-195, 1998.
Go to original source... - Pospíšil, P., Nauš, J.: Theoretical simulation of temperature induced increase of quantum yield of minimum chlorophyll fluorescence ΦF(0).-J. theor. Biol. 193: 125-130, 1998.
Go to original source... - Ruban, A.V., Trach, V.V.: Heat-induced reversible changes in Photosystem 1 absorption cross-section of pea chloroplasts and sub-chloroplast preparations.-Photosynth. Res. 29: 157-169, 1991.
Go to original source... - Schreiber, U., Armond, P.A.: Heat-induced changes of chlorophyll fluorescence in isolated chloroplasts and related heat-damage at the pigment level.-Biochim. biophys. Acta 502: 138-151, 1978.
Go to original source... - Schreiber, U., Berry, J.A.: Heat-induced changes of chlorophyll fluorescence in intact leaves correlated with damage of the photosynthetic apparatus.-Planta 136: 233-238, 1977.
Go to original source... - Smilie, R.M.: Coloured components of chloroplast membranes as intrinsic membrane probes for monitoring the development of heat injury in intact tissues.-Aust. J. Plant Physiol. 6: 121-133, 1979.
Go to original source... - Smilie, R.M., Nott, R.: Heat injury in leaves of alpine, temperate and tropical plants.-Aust. J. Plant Physiol. 6: 135-141, 1979.
Go to original source... - Smith, K.A., Low, P.S.: Identification and partial characterization of the denaturation transition of the photosystem II reaction center of spinach chloroplast membranes.-Plant Physiol. 90: 575-581, 1989.
Go to original source... - Špunda, V., Čajánek, M., Kalina, J., Lachetová, I., Šprtová, M., Marek, M.V.: Mechanistic differences in utilization of absorbed excitation energy within photosynthetic apparatus of Norway spruce induced by the vertical distribution of photosynthetically active radiation through the tree crown.-Plant Sci. 133: 155-165, 1998.
Go to original source... - Stahl, U., Tusov, V.B., Paschenko, V.Z., Voigt, J.: Spectroscopic investigations of fluorescence behaviour, role and function of the long-wavelength pigments of Photosystem I.-Biochim. biophys. Acta 973: 198-204, 1989.
Go to original source... - Sundby, C., Andersson, B.: Temperature-induced reversible migration along the thylakoid membrane of photosystem II regulates its association with LHC-II.-FEBS Lett. 191: 24-28, 1985.
Go to original source... - Trissl, H.-W., Gao, Y., Wulf, K.: Theoretical fluorescence induction curves derived from coupled differential equations describing the primary photochemistry of photosystem II by an exciton-radical pair equilibrium.-Biophys. J. 64: 974-988, 1993.
Go to original source... - Yamane, Y., Kashino, Y., Koike, H., Satoh, K.: Increases in the fluorescence F0 level and reversible inhibition of Photosystem II reaction center by high-temperature treatments in higher plants.-Photosynth. Res. 52: 57-64, 1997.
Go to original source... - Yamane, Y., Kashino, Y., Koike, H., Satoh, K.: Effects of high temperatures on the photosynthetic systems in spinach: Oxygen-evolving activities, fluorescence characteristics and the denaturation process.-Photosynth. Res. 57: 51-59, 1998.
Go to original source... - Zadox, J.C., Chang, T.T., Konzak, C.F.: A decimal code for the growth stages of cereals.-Weed Res. 14: 415-421, 1974.
Go to original source...




