Subscribe to RSS
DOI: 10.1055/s-2001-15200
Seasonal Changes in the Photosynthetic Efficiency of Thuja occidentalis (L.) and Chamaecyparis lawsonia (A. Murray bis.)
Publication History
March 13, 2001
May 14, 2001
Publication Date:
31 December 2001 (online)

Abstract
Seasonal changes in the efficiency of charge separation in PSII were studied in Thuja occidentalis (L.) and Chamaecyparis lawsonia (A. Murray bis.). Maximum light-dependent charge separation decreased with decreasing temperatures in early winter in both species, but this was less drastic in Chamaecyparis than in Thuja. No positive relationship was seen between photoinhibition and irradiance. Rather, photoinhibition increased as photon flux densities decreased towards midwinter, and it decreased as photon flux densities increased towards spring. However, the decrease in maximum light-dependent charge separation was much stronger on the light-exposed upper surface of the twigs, where in Thuja visible browning occurred, than on the underside of the twigs. During spring, recovery of the photosynthetic efficiency and regreening were observed as both mean temperatures and irradiance increased. Transfer in midwinter of strongly photo-inhibited twigs of Thuja to temperatures close to 20 °C resulted in considerable recovery of PSII activity within several days when low light was also present. Recovery did not occur at temperatures close to freezing or at room temperature in darkness. An analysis of fluorescence quenching suggested photoprotective dissipation of excess radiation not only in the light harvesting antennae of PSII but also in the reaction centres. Reaction centre quenching appeared to be stronger in Thuja than in Chamaecyparis. PSI was fully active in twigs whether or not PSII was photoinhibited. The antioxidant ascorbate was almost fully reduced even in midwinter.
Abbreviations
FR: far red light
MT: multiple turnover flash
PAR: photosynthetically active radiation
PSII, PSI: photosystems II and I
ST: single turnover flash
Key words
Photoinhibition - Thuja occidentalis - Chamaecyparis lawsonia - photosynthesis - winter stress - low temperature stress
References
- 01 Adams, W. W. III, and Demmig-Adams, B.. (1994); Carotenoid composition and down regulation of PS II in three conifer species during the winter. Physiol. Plant. 92 451-458
- 02 Aro, E.-M.,, Hundal, T.,, Carlberg, I.,, and Andersson, B.. (1990); In vitro studies on light induced inhibition of photosystem II and D1-protein degradation at low temperatures. Biochim. Biophys. Acta. 1019 269-275
- 03 Asada, K.,, Heber, U.,, and Schreiber, U.. (1992); Pools size of electrons that can be donated to P700+, as determined in intact leaves: Donation to P700+ from stromal components via the intersystem chain. Plant Cell Physiol.. 337 927-932
- 04 Baroli, L., and Melis, A.. (1996); Photoinhibition and repair in Dunaliella salina acclimated to different growth irradiances. Planta. 198 640-646
- 05 Björkman, O., and Demmig, B.. (1987); Photon yield of O2 evolution and chlorophyll fluorescence characteristics at 77 K among vascular plants of diverse origins. Planta. 170 489-504
- 06 Bukhov, N., Heber, U.,, Wiese, C.,, and Shuvalov, V. A.. (2001); Energy dissipation in photosysnthesis: Does the quenching of chlorophyll fluorescence from antenna complexes of PS II or from the reaction center. Planta. 212 749-758
- 07 Cornic, G.,, Bukhov, N., Wiese, C.,, Bligny, R.,, and Heber, U.. (2000); Flexible coupling between light-dependent electron and vectorial proton transport in illuminated leaves of C3 plants. Role of PS I-dependent proton pumping. Planta. 210 468-477
- 08 Genty, B.,, Briantais, J.-M.,, and Baker, N. R.. (1989); The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence. Biochim. Biophys. Acta. 990 87-92
-
09 Gerard, J.. (1876)
The Herball. Der weiße Kontinent, London, cf: A Gurney. Jackson, B. D., ed. München Zürich; Diana Verlag - 10 Gilmore, A. M.,, Hazlett, T. L.,, and Govindjee . (1995); ) Xanthophyll cycle dependent quenching of PS II a fluorescence: formation of a quenching complex with a short fluorescence life time. Proc. Natl. Acad. Sci. USA. 92 2273-2277
- 11 Greer, D. H.,, Berry, J. A.,, and Björkman, O.. (1986); Photoinhibition of photosynthesis in intact bean leaves: role of light and temperature, and requirement for chloroplast-protein synthesis during recovery. Planta. 168 253-260
- 12 Hällgren, J. E.,, Lundmark, T.,, and Strand, M.. (1990); Photosynthesis of Scots pine in the field after night frosts during summer. Plant Physiol. Biochem.. 28 437-445
-
13 Hällgren, J. E.,, Strand, M.,, and Lundmark, T.. (1991)
Temperature stress. Physiology of trees. Raghavendra, A. S., ed. New York; John Wiley & Sons pp. 301-335 -
14 Havranek, W. H., and Tranquillini, W.. (1995)
Physiological processes during winter dormancy and their ecological significance. Ecophysiology of coniferous forests. Smith, W. K. and Hinckley, T. M., eds. London; Academic Press pp. 95-124 - 15 Heber, U.,, Neimanis, S.,, and Dietz, K. J.. (1988); Fractional control of photosynthesis by the QB protein, the cytochrome f/b6 complex and other components of the photosynthetic apparatus. Planta. 173 267-274
- 16 Hurry, V. M., and Huner, N. P. A.. (1992); Effect of cold hardening on sensitivity of winter and spring wheat leaves to short term photoinhibition and recovery of photosynthesis. Plant Physiol.. 100 1283-1290
- 17 Kettunen, R.,, Tyystjarvi, E.,, and Aro, E. M.. (1996); Degradation pattern of PS II reaction center protein D1 in intact leaves - the major photoinhibition - induced cleavage site in D1 polypeptide is located amino terminally of the DE loop. Plant Physiol.. 111 1183-1190
- 18 Klughammer, C., and Schreiber, U.. (1994); An improved method, using saturating light pulses, for the determination of PS I quantum yield via P700+-absorbance changes at 830 nm. Planta. 192 261-268
-
19 Krause, G. H.. (1994)
Photoinhibition induced by low temperatures. Photoinhibition of photosynthesis: from molecular mechanisms to the field. Baker, N. R. and Bowyer, J. R., eds. Oxford; BIOS Scientific pp. 331-348 - 20 Lee, D. T., and Schachter, B. J.. (1980); Two algorithms for constructing a Delaunay Triangulation. Int. Jour. of Comp. and Inf. Sci.. 9 (3) 219-242
- 21 Levitt, J.. (1980) Responses of plants to environmental stresses, 2nd ed., Vol. 1. Chilling, freezing and high temperature stresses. New York; Academic Press
- 22 Lundmark, T.,, Bergh, J.,, Strand, M.,, and Koppel, A.. (1998); Seasonal variation of maximum photochemical efficiency in boreal Norway spruce stands. Trees. 13 63-67
- 23 Manuel, N.,, Cornic, G.,, Aubert, S.,, Choler, P.,, Bligny, R.,, and Heber, U.. (1999); Protection against photoinhibition in the alpine plant Geum montanum. . Oecologia. 119 149-158
- 24 Miyake, C.,, Schreiber, U.,, and Asada, K.. (1995); Ferredoxin-dependent and antimycin a-sensitive reduction of cytochrome b-559 by far-red light in maize thylakoids; participation of a menadiol-reducible cytochrome b-559 in cyclic electron flow. Plant Cell Physiol.. 364 743-748
- 25 Öquist, G.. (1983); Effects of low temperature on photosynthesis. Plant Cell Environ.. 6 281-300
- 26 Öquist, G., and Ögren, E.. (1985); Effects of winter stress on photosynthetic electron transport and energy distribution between the two photosystems of pine as assayed by chlorophyll fluorescence kinetics. Photosynth. Res.. 7 19-30
-
27 Öquist, G.,, Greer, D. H., and Ögren, E.. (1987)
Light stress at low temperature. Topics in photosynthesis, Vol. 9. Barber, J., ed. Amsterdam; Elesevier pp. 67-87 - 28 Öquist, G., and Huner, N. P. A.. (1991); Effects of cold acclimation on the susceptibility of photosynthesis to photoinhibition in Scots pine and winter and spring cereals: a fluorescence analysis. Funct. Ecol.. 5 91-100
- 29 Öquist, G.,, Chow, W. S.,, and Anderson, J. M.. (1992); Photoinhibition of photosynthesis represents a mechanism for the long-term regulation of PS II. Planta. 186 450-460
- 30 Öquist, G.,, Hurry, V. M.,, and Huner, N. P. A.. (1993); The temperature dependence of the redox state of QA and susceptibility of photosynthesis to photoinhibition. Plant Physiol. Biochem.. 31 683-691
-
31 Osmond, C. B.,. (1994)
What is photoinhibition? Some insights from comparison of shade and sun plants. Photoinhibition of Photosynthesis - From molecular Mechanisms to the Field. Baker, N. R. and Bowyer, J. R., eds. Oxford; Bios. Scientific. Publ. pp. 1-24 - 32 Ottander, C., and Öquist, G.. (1991); Recovery of photosynthesis in winter stressed Scots pine. Plant Cell Environ.. 14 345-349
- 33 Ottander, C.,, Campbell, D.,, and Öquist, G.. (1995); Seasonal changes in PS II organisation and pigment composition in Pinus sylvestris. . Planta. 197 176-183
- 34 Pfündel, E.. (1998); Estimating the contribution of PS I to total leaf chlorophyll fluorescence. Photosynth. Res.. 56 185-195
- 35 Pisek, A., and Winkler, E.. (1958); Assimilationsvermögen und Respirationen der Fichte (Picea excelsia Link.) in verschiedenen Höhenlagen und der Zirbe (Pinus cembra L.) an der alpinen Waldgrenze. Planta. 51 518-543
-
36 Polle, A., and Rennenberg, H.. (1994)
Photooxidative stress in trees. Causes of photooxidative stress and amelioration of defense systems in plants. Foyer, C. H. and Mullineaux, P. M., eds. Boca Raton, Ann Arbor, London, Tokyo; CRC Press pp. 199-218 - 37 Powles, S. B.. (1984); Photoinhibition of photosynthesis induced by visible light. Annu. Rev. Plant Physiol. Plant Mol. Biol.. 35 15-44
- 38 Samuelsson, G.,, Lönneborg, A.,, Rosenquist, E.,, Gustafsson, P.,, and Öquist, G.. (1985); Photoinhibition and reactivation of photosynthesis in the cyanobacterium Anacystis nidulans. . Plant Physiol.. 79 922-995
- 39 Schatz, G. H.,, Brock, H.,, and Holzwarth, A. R.. (1988); Kinetic and energetic model for the primary processes in PS II. Biophys. J.. 54 397-405
- 40 Schnettger, B.,, Critchley, C.,, Santore, U. J.,, Graf, M.,, and Krause, G. H.. (1994); Relationship between photoinhibition of photosynthesis, D1 protein turnover and chloroplast structure: effects of protein synthesis inhibitors. Plant Cell Environ.. 17 55-64
- 41 Schöner, S., and Krause, G. H.. (1990); Protective systems against active oxygen species in spinach: response to cold acclimation in excess light. Planta. 180 383-389
- 42 Schreiber, U.,, Schliwa, U.,, and Bilger, W.. (1986); Continuous recording of photochemical and non-photochemical chlorophyll fluorescence quenching with a new type of modulation fluorometer. Photosynth. Res.. 10 51-62
- 43 Schreiber, U.,, Klughammer, C.,, and Neubauer, C.. (1988); Measuring P700 absorbance changes around 830 nm with a New Type of Pulse Modulation System. Z. Naturforsch.. 43 c 686-698
- 44 Somersalo, S., and Krause, G. H.. (1989); Photoinhibition at chilling temperature. Fluorescence characteristics of unhardened and cold acclimated spinach leaves. Planta. 177 409-416
- 45 Strand, M., and Lundmark, T.. (1987); Effects of low night temperature and light on chlorophyll fluorescence of field-grown seedlings of Scots pine (Pinus sylvestris L.). Tree Physiol.. 3 211-224
- 46 Strand, M.. (1995); Inhibition of photosynthesis in current-year needles of unfertilized and fertilized Norway spruce (Picea abies [L.] Karst.) during autumn and early winter. Trees. 9 332-340
- 47 Takahama, U., and Oniki, T.. (1992); Regulation of peroxidase-dependent oxidation of phenolics in the apoplast of spinach leaves by ascorbate. Plant Cell Physiol.. 334 379-387
- 48 Tyystjärvi, E.,, Ali-Yrkkö, K.,, Kettunen, R.,, and Aro, E.. (1992); Slow degradation of the D1 protein is related to susceptibility of low-light-grown pumpkin plants to photoinhibition. Plant Physiol.. 100 1310-1317
- 49 van Kooten, O., and Snel, F. H.. (1990); The use of chlorophyll fluorescence nomenclature in plant stress physiology. Photosynth. Res.. 25 147-150
- 50 Verhoeven, A. S.,, Adams, W. W. III,, and Demmig-Adams, B.. (1996); Close relationship between the state of the xanthophyll cycle pigments and PS II efficiency during recovery from winter stress. Physiol. Plant. 96 567-576
- 51 Vogg, G.,, Heim, R.,, Hansen, J.,, Schäfer, C.,, and Beck, E.. (1998); Frost hardening and photosynthetic performance of Scots pine (Pinus sylvestris L.) needles. I. Seasonal changes in the photosynthetic apparatus and its function. Planta. 204 193-200
- 52 Zelawsky, W., and Kucharska, J.. (1967); Winter depression of photosynthetic activity in seedlings of Scots pine (Pinus sylvestris L.). Photosynthetica. 1 207-213
C. Wiese
Julius-von-Sachs-Institut für Biowissenschaften
Lehrstuhl für Botanik I, Molekulare Pflanzenphysiologie und Biophysik
Universität Würzburg
97084 Würzburg
Germany
Email: wiese@botanik.uni-wuerzburg.de
Section Editor: M. Riederer