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Voľba lesného reprodukčného materiálu v podmienkach klimatickej zmeny / Choice of forest reproductive material under conditions of climate change Cover

Voľba lesného reprodukčného materiálu v podmienkach klimatickej zmeny / Choice of forest reproductive material under conditions of climate change

Open Access
|Aug 2015

References

  1. Ahuja, I., de Vos, R. C. H., Bones, A. M., Hall, R. D., 2010: Plant molecular stress responses face climate change. Trends in Plant Science, 15:664-674.
  2. 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.
  3. Aitken, S. N., Adams, W. T., 1996: Genetics of fall and winter cold hardiness of coastal Douglas-fir in Oregon. Canadian Journal of Forest Research, 26:1828-1837.
  4. Anekonda, T. S., Adams, W. T., Aitken, S. N., Neale, D. B., Jermstad, K. D., Wheeler, N. C., 2000: Genetics of cold hardiness in a cloned full-sib family of coastal Douglas-fir. Canadian Journal of Forest Research, 30:837-840.
  5. Barber, K., Zolitschka, B., Tarasov, P., Lotter, A. F., 2004: Atlantic to Urals - the Holocene climatic record of mid-latitude Europe. In: Battarbee R. W., Gasse, F., Stickley, C. E. (eds.): Past Climate Variability through Europe and Africa. Dordrecht, Kluwer Academic Publishers, p. 417-442.
  6. Bennie, J., Kubin, E., Wiltshire, A., Huntley, B., Baxter, R., 2010: Predicting spatial and temporal patterns of bud-burst and spring frost risk in north-west Europe: the implications of local adaptation to climate. Global Change Biology, 16: 1503-1514.
  7. Bower, A. D., Aitken, S. N., 2006: Geographic and seasonal variation in cold hardiness of whitebark pine. Canadian Journal of Forest Research, 36:1842-1850.
  8. Cannell, M. G. R., Sheppard, L. J., Smith, R. I., Murray, M. B., 1985: Autumn frost damage on young Picea sitchensis. 2. Shoot frost hardening and the probability of frost damage in Scotland. Forestry, 58:145-166.
  9. Cannell, M. G. R., Tabbush, P. M., Deans, J. D., Hollingsworth, M.K., Sheppard, L.J., Philipson, J. J., Murray, M. B., 1990: Sitka spruce and Douglas-fir seedlings in the nursery and in cold storage - root growth potential, carbohydrate content, dormancy, frost hardiness and mitotic index. Forestry, 63:9-27.
  10. Dæhlen, A. G., Johnsen, Ø., Kohmann, K., 1995: Høstfrostherdighet hos unge granplanter fra norske provenienser og frøplantasjer. Rapport frå Skogforsk 1/95, 24 p.
  11. de la Mata, R., Zas, R., 2010: Transferring Atlantic maritime pine improved material to a region with marked Mediterranean influence in inland NW Spain: a likelihood-based approach on spatially adjusted field data. European Journal of Forest Research, 129:645-658.
  12. Geburek, T., Robitschek, K., Milasowszky, N., 2008: A tree of many faces: Why are there different crown types in Norway spruce (Picea abies [L.] Karst.)? Flora, 203:126-133.
  13. Gömöry, D., Foffová, E., Longauer, R., Krajmerová, D., 2015: Memory effects associated with the early-growth environment in Norway spruce and European larch. European Journal of Forest Research, 134:89-97.
  14. Gömöry, D., Paule, L., 2011: Trade-off between height growth and spring flushing in common beech (Fagus sylvatica L.). Annals of Forest Science, 68:975-984.
  15. Granhus, A., Floistad, I. S., Sogaard, G., 2009: Bud burst timing in Picea abies seedlings as affected by temperature during dormancy induction and mild spells during chilling. Tree Physiology, 29:497-503.
  16. Hänninen, H., Tanino, K., 2011: Tree seasonality in a warming climate. Trends in Plant Science, 16:412-416.
  17. Heide, O. M., 1993: Daylength and thermal time responses of budburst during dormancy in some northern deciduous trees. Physiologia Plantarum, 88:531-540.
  18. Hesmer, H., 1955: Die Späteiche in Westfalen und im Rheinland. Forstarchiv, 26:197-203.
  19. Holliday, J. A., Ralph, S. G., White, R., Bohlmann, J., Aitken, S. N., 2008: Global monitoring of autumn gene expression within and among phenotypically divergent populations of Sitka spruce (Picea sitchensis). New Phytologist, 178:103-122.
  20. Isik, F., Keskin, S., McKeand, S. E., 2000: Provenance variation and provenance-site interaction in Pinus brutia Ten.: Consequences of defining breeding zones. Silvae Genetica, 49:213-223.
  21. Johnsen, Ø., Daehlen, O. G., Østreng, G., Skrøppa, T., 2005: Daylength and temperature during seed production interactively affect adaptive performance of Picea abies progenies. New Phytologist, 168:589-596.
  22. Jonard, M., Legout, A., Nicolas, M., Dambrine, E., Nys, C., Ulrich, E. et al., 2012: Deterioration of Norway spruce vitality despite a sharp decline in acid deposition: a long-term integrated perspective Global Change Biology, 18:711-725.
  23. Joosen, R. V. L., Lammers, M., Balk, P. A., Bronnum, P., Konings, M. C. J. M., Perks, M. et al., 2006: Correlating gene expression to physiological parameters and environmental conditions during cold acclimation of Pinus sylvestris, identification of molecular markers using cDNA microarrays. Tree Physiology, 26:1297-1313.
  24. 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.
  25. König, A., 2005: Provenance research: evaluation the spatial pattern of genetic variation. In: Geburek, T., Turok, J. (eds.): Conservation and Management of Forest Genetic Resources in Europe. Arbora Publishers, Zvolen and IPGRI, Rome, p. 275-334.
  26. Kozlowski, T. T., Pallardy, S. G., 2002: Acclimation and adaptive responses of woody plants to environmental stresses. Botanical Review, 68:270-334.
  27. Kullman, L., 1996: Recent cooling and recession of Norway spruce (Picea abies [L.] Karst) in the forest-alpine tundra ecotone of the Swedish Scandes. Journal of Biogeography, 23:843-854.
  28. Kvaalen, H., Johnsen, Ø., 2008: Timing of bud set in Picea abies is regulated by a memory of temperature during zygotic and somatic embryogenesis. New Phytologist, 177:49-59.
  29. Larsen, J. B., 1981: Geographic variation in winter drought resistance of Douglas-fir (Pseudotsuga menziesii Mirb. Franco). Silvae Genetica, 30:109-114.
  30. Ledig, F. T., Kitzmiller, J. H., 1992: Genetic strategies for reforestation in the face of global climate change. Forest Ecology and Management, 50:153-169.
  31. Leinonen, I., Repo, T., Hänninen, H., 1997: Changing environmental effects on frost hardiness of Scots pine during dehardening. Annals of Botany, 79:133-138.
  32. Leinonen, I., Hänninen, H., 2002: Adaptation of the timing of bud burst of Norway spruce to temperate and boreal climates. Silva Fennica, 36:695-701.
  33. Mátyás, C., 1994: Modeling climate change effects with provenance test data. Tree Physiology, 14:797-804.
  34. Mátyás, C., Yeatman, C. W., 1992: Effect of geographical transfer on growth and survival of jack pine (Pinus banksiana Lamb) populations. Silvae Genetica, 41:370-376.
  35. McKenney, D. W., Pedlar, J., O’Neill, G. A., 2009: Climate change and forest seed zones: past trends, future prospects and challenges to ponder. The Forestry Chronicle, 85:258-265.
  36. Millar, C. I., Stephenson, N. L., Stephens, S. T., 2007: Climate change and forests of the future: managing in the face of uncertainty. Ecological Applications, 17:2145-2151.
  37. Morin, X., Lechowicz, M. J., Augspurger, C., O’Keefe, J., Viner, D., Chuine, I., 2009: Leaf phenology in 22 North American tree species during the 21st century. Global Change Biology, 15:961-975.
  38. Newton, R. J., Funkhouser, E. A., Fong, F., Tauer, C. G., 1991: Molecular and physiological genetics of drought tolerance in forest species. Forest Ecology and Management, 43:225-250.
  39. O’Neill, G. A., Ukrainetz, N. K., Carlson, M., Cartwright, C., Jaquish, B., King, J. et al., A., 2008: Assisted migration to address climate change in British Columbia: recommendations for interim seed transfer standards. Technical Report 048. Victoria, B.C. Ministry of Forest and Range, Research Branch, 38 p.
  40. O’Neill, G. A., Aitken, S. N., Adams, W. T., 2000: Genetic selection for cold hardiness in coastal Douglas fir seedlings and saplings. Canadian Journal of Forest Research, 30:1799-1807.
  41. Pérez-Ramos, I. M., Ourcival, J. M., Limousin, J. M., Rambal, S., 2010: Mast seeding under increasing drought: results from a long-term data set and from a rainfall exclusion experiment. Ecology, 91:3057-3068.
  42. 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.
  43. Rehfeldt, G. E., Ying, C. C., Spittlehouse, D. L., Hamilton, D. A., 1999: Genetic responses to climate in Pinus concorta: niche breadth, climate change, and reforestation. Ecological Monographs, 69:375-407.
  44. Rehfeldt, G., Wykoff, W. R., Ying C. C., 2001: Physiological plasticity, evolution, and impacts of a changing climate on Pinus contorta. Climatic Change, 50:355-376.
  45. Repo, T., Makela, A., Hänninen, H., 1990: Modelling frost resistance of trees. Silva Carelia, 15:61-74.
  46. Robson, T. M., Alía, R., Božič, G., Clark, J., Forstreuter, M., Gömöry, D. et al., 2011: The timing of leaf flush in European beech (Fagus sylvatica L.) saplings. Monografiás INIA, Seria Forestal, p. 61-81.
  47. Rweyongeza, D. M., Yeh, F. C., Dhir, N. K., 2010: Genetic parameters for bud flushing and growth characteristics of white spruce seedlings. Silvae Genetica, 59:151-158.
  48. Savolainen, O., Pyhajärvi, T., Knurr, T., 2007: Gene flow and local adaptation in trees. Annual Review of Ecology, Evolution and Systematics, 38:595-619.
  49. Saxe, H., Cannell, M. G. R., Johnsen, B., Ryan, M. G., Vourlitis, G., 2001: Tree and forest functioning in response to global warming. New Phytologist, 149:369-399.
  50. Schwarz, W., 1968: Der Einfluss der Temperatur und Tageslänge auf die Frosthärte der Zirbe. In: Poster, H. (ed.): Klimaresistenz, Photosynthese und Stoffproduktion. Berlin, Deutsche Akademie für Landwirtschaft, p. 55-63.
  51. Silva, D. E., Mazzella, P. R., Legay, M., Corcket, E., Dupouey, J. L., 2012: Does natural regeneration determine the limit of European beech distribution under climatic stress? Forest Ecology and Management, 266:263-272.
  52. Skrøppa, T., 1994: Growth rhythm and hardiness of Picea abies progenies of high-altitude parents from seed produced at low elevations. Silvae Genetica, 43:95-100.
  53. Skrøppa, T., Tollefsrud, M. M., Sperisen, C., Johnsen, Ø., 2009: Rapid change in adaptive performance from one generation to the next in Picea abies - Central European trees in a Nordic environment. Tree Genetics and Genomes, 6:93-99.
  54. St. Clair, J. B., Howe, G. T., 2007: Genetic maladaptation of coastal Douglas-fir seedlings to future climates. Global Change Biology, 13:1441-1454.
  55. Tulstrup, N. P., 1959: International trade in forest tree seed. Unasylva, 13:196-201.
  56. Ukrainetz, N. K, O’Neill, G. A., Jaquish, B., 2011: Comparison of fixed and focal point seed transfer systems for reforestation and assisted migration: a case study for interior spruce in British Columbia. Canadian Journal of Forest Research, 41: 1452-1464.
  57. von Wuehlisch, G., Krusche, D., Muhs, H.-J., 1995: Variation in temperature sum requirement for flushing of beech provenances. Silvae Genetica, 44:343-346.
  58. Weiser, C. J., 1970: Cold resistance and injury in woody plants. Science, 169:1269-1278.
  59. Wright, J. W., 1976: Introduction to Forest Genetics. New York, Academic Press, 463 p.
DOI: https://doi.org/10.1515/forj-2015-0021 | Journal eISSN: 2454-0358 | Journal ISSN: 2454-034X
Language: English
Page range: 124 - 130
Published on: Aug 13, 2015
Published by: National Forest Centre and Czech University of Life Sciences in Prague, Faculty of Forestry and Wood Sciences
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2015 Dušan Gömöry, Roman Longauer, Diana Krajmerová, 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-NonCommercial-NoDerivatives 3.0 License.