Have a personal or library account? Click to login
Soil drought stress and high-temperature effects on photosystem II in different juvenile spruce provenances Cover

Soil drought stress and high-temperature effects on photosystem II in different juvenile spruce provenances

Open Access
|Jun 2024

References

  1. Aitken, S. N., Yeaman, S., Holliday, J. A., Wang, T., Curtis-McLane, S., 2008: Adaptation, migration or extirpation: climate change outcomes for tree populations. Evolutionary Applications, 1:95–111.
  2. Allen, C. D., Macalady, A. K., Chenchouni, H., Bachelet, D., McDowell, N., Vennetier, M. et al., 2010: A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests. Forest Ecology and Management, 259:660–684.
  3. Baker, N. R., 2008: Chlorophyll Fluorescence: A Probe of Photosynthesis In Vivo. Annual Review of Plant Biology, 59:89–113.
  4. Berry J., Björkman, O., 1980: Photosynthetic response and adaptation to temperature in higher plants. Annual Review of Plant Physiology, 31:491–543.
  5. Bigras, F. J., 2000: Selection of white spruce families in the context of climate change: heat tolerance. Tree Physiology, 20:1227–1234.
  6. Brestic, M., Zivcak, M., 2013: PSII Fluorescence Techniques for Measurement of Drought and High Temperature Stress Signal in Crop Plants: Protocols and Applications. In: Rout, G. R., Das Bandhu, A. (eds.): Molecular Stress Physiology of Plants, Springer India, New Delhi, p. 87–131.
  7. Bussotti, F., Pollastrini, M., Holland, V., Brüggemann, W., 2015: Functional traits and adaptive capacity of European forests to climate change. Environmental and Experimental Botany, 111:91–113.
  8. Bussotti, F., Gerosa, G., Digrado, A., Pollastrini, M., 2020: Selection of chlorophyll fluorescence parameters as indicators of photosynthetic efficiency in large scale plant ecological studies. Ecological Indicators, 108:105686.
  9. Cook, B. I., Mankin, J. S, Williams, A. P, Marvel, K. D., Smerdon, J. E., Liu, H., 2021: Uncertainties, limits, and benefits of climate change mitigation for soil moisture drought in Southwestern North America. Earth’s Future: 9:e2021EF002014.
  10. Critchley, C., 1998: Photoinhibition. In: Raghavendra, A. S. (ed.): Photosynthesis: A Comprehensive Treatise. Cambridge University Press, Cambridge, p. 264–272.
  11. Demmig-Adams, B., Adams III, W. W., 1996: Xanthophyll cycle and light stress in nature: uniform response to excess direct sunlight among higher plant species. Planta, 198:460–470.
  12. Eriksson, M., Neuvonen, S. Roininen, H., 2007: Retention of wind-felled trees and the risk of consequential tree mortality by the European spruce bark beetle Ips typographus in Finland. Scandinavian Journal of Forest Research, 22:516–523.
  13. Fick, S. E., Hijmans, R. J., 2017: WorldClim 2: new 1–km spatial resolution climate surfaces for global land areas. International Journal of Climatology, 37:4302–4315.
  14. Führer, E., Horváth, L., Jagodics, A., Machon, A., Szabados, I., 2011: Application of a new aridity index in Hungarian forestry practice. Időjárás, 115:205–116.
  15. Goltsev, V., Zaharieva, I., Chernev, P., Kouzmanova, M., Kalaji, H. M., Yordanov, I. et al., 2012: Drought-induced modifications of photosynthetic electron transport in intact leaves: Analysis and use of neural networks as a tool for a rapid non-invasive estimation. Biochimica et Biophysica Acta, 1817:1490–1498.
  16. Gömöry, D., Longauer, R., Hlásny, T., Pacalaj, M., Strmeň, S., Krajmerová, D., 2012: Adaptation to common optimum in different populations of Norway spruce (Picea abies Karst.). European Journal of Forest Research, 131:401–411.
  17. Gömöry, D., Longauer, R., Krajmerová, D., 2015. Choice of forest reproductive material under conditions of climate change. Lesnícky časopis – Forestry Journal, 61:124–130.
  18. Henry, C., John, G. P., Pan, R., Bartlett, M. K., Fletcher, L. R., Scoffoni, C. et al., 2019: A stomatal safety-efficiency trade-off constrains responses to leaf dehydration. Nature Communications, 10:3398.
  19. Hentschel, R., Rosner, S., Kayler, Z. E., Andreassen, K., Børja, I., Solberg, S. et al., 2014: Norway spruce physiological and anatomical predisposition to die-back. Forest Ecology and Management, 322:27–36.
  20. Hlásny, T., Turčáni, M., 2013: Persisting bark beetle outbreak indicates the unsustainability of secondary Norway spruce forests: case study from Central Europe. Annals of Forest Science, 70:481–491.
  21. Húdoková, H., Petrík, P., Petek-Petrik, A., Konôpková, A., Leštianska, A., Střelcová, K. et al., 2022: Heat-stress response of photosystem II in five ecologically important tree species of European temperate forests. Biologia, 77:3.
  22. Jamnická, G., Fleischer, P., Jr., Konôpková, A., Pšidová, E., Kučerová, J., Kurjak, D. et al., 2019: Norway Spruce (Picea abies L.) Provenances Use Different Physiological Strategies to Cope with Water Deficit. Forests, 10:651.
  23. Kalaji, H. M., Goltsev, V., Bosa, K., Allakhverdiev, S. I., Strasser, R. J., Govindjee, 2012: Experimental in vivo measurements of light emission in plants: A perspective dedicated to David Walker. Photosynthesis Research, 114:69–96.
  24. Kalaji, H. M., Jajoo, A., Oukarroum, A., Brestic, M., Zivcak, M., Samborska, I. A. et al., 2016: Chlorophyll a fluorescence as a tool to monitor physiological status of plants under abiotic stress conditions. Acta Physiologicae Plantarum, 38:102.
  25. Kalaji, H. M., Schansker, G., Brestic, M., Bussotti, F., Calatayud, A., Ferroni, L. et al., 2017: Frequently asked questions about chlorophyll fluorescence, the sequel. Photosynthetic Research, 132:13–66.
  26. Kapeller, S., Lexer, M. J., Geburek, T., Hiebl, J., Schueler, S., 2012: Intraspecific variation in climate response of Norway spruce in the eastern Alpine range: Selecting appropriate provenances for future climate. Forest Ecology and Management, 271:46–57.
  27. Konôpková, A., Húdoková, H., Ježík, M., Kurjak, D., Jamnická, G., Ditmarová, Ľ. et al., 2020: Special issue in honour of Prof. Reto J. Strasser – Origin rather than mild drought stress influenced chlorophyll a fluorescence in contrasting silver fir (Abies alba Mill.) provenances. Photosynthetica, 58:549–559.
  28. Kunert, N., 2020: Preliminary indications for diverging heat and drought sensitivities in Norway spruce and Scots pine in Central Europe. iForest, 13:8991.
  29. Kunert, N., Hajek, P., Hietz, P., Morris, H., Rosner, S., Tholen, D., 2022: Summer temperatures reach the thermal tolerance threshold of photosynthetic decline in temperate conifers. Plant Biology, 24:1254–1261.
  30. Lambers, H., Oliveira, R. S., 2019: Life cycles: environmental influences and adaptations, In: Plant Physiological Ecology. Cham, Springer, p. 451–486.
  31. Lindner, M., Fitzgerald, J. B., Zimmermann, N. E., Reyer, C., Delzon, S., van Der Maaten, E., 2014: Climate change and European forests: what do we know, what are the uncertainties, and what are the implications for forest management? Journal of Environmental Management, 146: 69–83.
  32. Lu, C., Zhang, J., 1999: Effects of water stress on photosystem II photochemistry and its thermostability in wheat plants. Journal of Experimental Botany, 50:1199–1206.
  33. Maier, C. R., Chen, Z. H., Cazzonelli, C. I., Tissue, D. T., Ghannoum, O., 2022: Precise Phenotyping for Improved Crop Quality and Management in Protected Cropping: A Review. Crops, 2:336–350.
  34. Marešová, J., Húdoková, H., Sarvašová, L., Fleischer, P., Ditmarová, Ľ., Blaženec, M. et al., 2022: Dynamics of internal isoprenoid metabolites in young Picea abies (Norway spruce) shoots during drought stress conditions in springtime. Phytochemistry, 203:113414.
  35. Mathur, S., Agrawal, D., Jajoo, A., 2014: Photosynthesis: Response to high-temperature stress. Journal of Photochemistry and Photobiology B: Biology, 137:116–126.
  36. Münchinger, I. K., Hajek, P., Akdogan, B., Caicoya, A. T., Kunert, N., 2023: Leaf thermal tolerance and sensitivity of temperate tree species are correlated with leaf physiological and functional drought resistance traits. Journal of Forest Research, 34:63–76.
  37. Noor, H., Sun, M., Algwaiz, H. I. M., Sher, A., Fiaz, S., Attia, K. A. et al., 2022: Chlorophyll fluorescence and grain filling characteristic of wheat (Triticum aestivum L.) in response to nitrogen application level. Molecular Biology Reports, 49:7157–7172.
  38. Petrik, P., Petek-Petrik, A., Konôpková, A., Fleischer, P., Stojnic, S., Zavadilova, I. et al., 2023: Seasonality of PSII thermostability and water use efficiency of in situ mountainous Norway spruce (Picea abies). Journal of Forestry Research, 34:197–208.
  39. Petrík, P., Petek, A., Konôpková, A., Bosela, M., Fleischer, P., Frýdl, J., 2020: Stomatal and Leaf Morphology Response of European Beech (Fagus sylvatica L.) Provenances Transferred to Contrasting Climatic Conditions. Forests, 11:1359.
  40. Pšidová, E., Živčák, M., Stojnić, S., Orlović, S., Gömöry, D., Kučerová, J. et al., 2018: Altitude of origin influences the responses of PSII photochemistry to heat waves in European beech (Fagus sylvatica L.). Environmental and Experimental Botany, 152:97–106.
  41. Rehfeldt, G. E., Tchebakova, N. M., Parfenova, Y. I., Wykoff, W. R., Kuzmina, N. A., Milyutin L. I., 2002: Intraspecific responses to climate in Pinus sylvestris. Global Change Biology, 8:912–929.
  42. Robson, T. M., Garzón, M. B., Alia Miranda, R., Barba Egido, D., Bogdan, S., Borovics, A. et al., 2018: Phenotypic trait variation measured on European genetic trials of Fagus sylvatica L. Scientific Data, 5:180149.
  43. Salvucci, M. E., Crafts-Brandner, S. J., 2004: Inhibition of photosynthesis by heat stress: the activation state of Rubisco as a limiting factor in photosynthesis. Physiologia Plantarum, 120:179–186.
  44. Schiop, S. T., Al Hassan, M., Sestras, A. F., Boscaiu, M., Sestras, R. E., Vicente, O., 2017: Biochemical responses to drought, at the seedling stage, of several Romanian Carpathian populations of Norway spruce (Picea abies [L.] Karst). Trees, 31:1479–1490.
  45. Strasser, R. J., Tsimilli-Michael, M., Srivastava, A., 2004: Analysis of the chlorophyll a fluorescence transient. – In: Papageorgiou, G. C., Govindjee (ed.): Chlorophyll a Fluorescence: A Signature of Photosynthesis. Advances in Photosynthesis and Respiration. Dordrecht, Springer, p. 321–362.
  46. Suresh, K., 2020: Abiotic Stresses and Their Effects on Plant Growth, Yield and Nutritional Quality of Agricultural Produce. International Journal of the Science of Food and Agriculture, 4: 367–378.
  47. van Heerden, P. D. R., Swanepoel, J. W., Krüger, G. H. J., 2007: Modulation of photosynthesis by drought in two desert scrub species exhibiting C3-mode CO2 assimilation. Environmental and Experimental Botany, 61:124–136.
  48. Vastag, E., Orlović, S., Konôpková, A., Kurjak, D., Cocozza, C., Pšidová, E. et al., 2020: Magnolia grandiflora L. shows better responses to drought than Magnolia × soulangeana in urban environment. iForest, 13:75–583.
  49. Végh, B., Marček, T., Karsai, I., Janda, T., Darkó, É., 2018: Heat acclimation of photosynthesis in wheat genotypes of different origin. South African Journal of Botany, 117:184–192.
  50. Wang, G. P., Hui, Z., Li, F., Zhao, M. R., Zhang, J., Wang, W., 2010: Improvement of heat and drought photosynthetic tolerance in wheat by overaccumulation of glycinebetaine. Plant Biotechnology Reports, 4:213–222.
  51. Wang, X., Ingvarsson, P. K., 2023. Quantifying adaptive evolution and the effects of natural selection across the Norway spruce genome. Molecular Ecology, 32:5288–5304.
  52. Zavadilová, I., Szatniewska, J., Petrík, P., Mauer, O., Pokorný, R., Stojanović, M., 2023: Sap flow and growth response of Norway spruce under long-term partial rainfall exclusion at low altitude. Frontiers in Plant Science, 14:1089706.
  53. Zhang, H. B., Xu, D. Q., 2003: Role of light-harvesting complex 2 dissociation in protecting the photosystem 2 reaction centres against photodamage in soybean leaves and thylakoids. Photosynthetica, 41:383–391.
  54. Zhang, X., Chen, L., Wang, J., Wang, M., Yang, S., Zhao, Ch., 2018: Photosynthetic acclimation to long-term high temperature and soil drought stress in two spruce species (Picea crassifolia and P. wilsonii) used for afforestation. Journal of Forestry Research, 29:363–372.
  55. Zivcak, M., Brestic, M., Balatova, Z., Drevenakova, P., Olsovska, K., Kalaji, H. M. et al., 2013: Photosynthetic electron transport and specific photoprotective responses in wheat leaves under drought stress. Photosynthesis Research, 117:529–546.
  56. Zurek, G., Rybka, K., Pogrzeba, M., Krzyzak, J., Prokopiuk, K., 2014: Chlorophyll a fluorescence in evaluation of the effect of heavy metal soil contamination on perennial grasses. PLoS One, 9:e91475.
  57. Zivcak, M., Olsovska, K., Brestic, M., 2017: Photo-synthetic responses under harmful and changing environment: Practical aspects in crop research. In: Hou, H., Najafpour, M., Moore, G., Allakhverdiev, S. (eds.): Photosynthesis: Structures, Mechanisms, and Applications. Cham, Springer, p. 203–248.
DOI: https://doi.org/10.2478/forj-2024-0003 | Journal eISSN: 2454-0358 | Journal ISSN: 2454-034X
Language: English
Page range: 95 - 106
Published on: Jun 20, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Gabriela Jamnická, Hana Húdoková, Peter Fleischer, Marek Ježík, published by National Forest Centre and Czech University of Life Sciences in Prague, Faculty of Forestry and Wood Sciences
This work is licensed under the Creative Commons Attribution 4.0 License.