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Population Differentiation and Climatic Adaptation for Growth Potential of White Spruce (Picea glauca) in Alberta, Canada Cover

Population Differentiation and Climatic Adaptation for Growth Potential of White Spruce (Picea glauca) in Alberta, Canada

Open Access
|Oct 2017

References

  1. AARD (Alberta Agriculture and Rural Development) (2005): Agricultural land resource atlas of Alberta - frost-free period of Alberta 1971-2000. Available at: http://www1.agric.gov.ab.ca/$department/deptdocs.nsf/all/agdex10304.
  2. ALBERTA ENVIRONMENT (2005): Alberta Climate Model (ACM) to provide climate estimates (1961-1990) for any location in Alberta from its geographic coordinates. Publ. No. T/749. Alberta Environment, Edmonton.
  3. ANDALO, C., J. BEAULIEU, J., and J. BOUSQUER (2005): The impact of climate change on growth of local white spruce populations in Quebec, Canada. For. Ecol. Manage. 205: 169-182.
  4. CANNELL, M. G. R. (1974): Production of branches and foliage by young trees in Pinus contorta and Picea sitchensis: provenance differences in their simulation. J. Appl. Ecol. 11: 1091-1115.10.2307/2401768
  5. CARTER, T. R., M. HULME and M. LAL (1999): Guidelines on the use of scenario data for climate impact and adaptation assessment. Task Group on Scenarios for Climate Impact Assessment of the Intergovernmental Panel on Climate Change. Available at: http://ipcc.ddc.cru.uea.ac.uk.
  6. DOAK, C. C. (1935): Evolution of folia types, dwarf shoots and cone scales of Pinus. Illinois Biol. Monogr. 13: 1-163.
  7. EARTHINFO INC. (1994): Database guide. Earthinfo Inc. Boulder, CO (on CD ROM). ENVIRONMENT CANADA (1993): Canadian climate normals 1961-1990. Prairie Provinces. Available at: http://climate.weatheroffice.ec.gc.ca/climate_normals/index_e.html.
  8. FUTUYMA, D. J. (1979): Evolutionary biology. Sinauer Associates Inc. Sunderland, ma.
  9. GIERTYCH, M. (1979): Summary of the results of Scots pine (Pinus sylvestris L.) height growth in iufro provenance experiments. Silvae Genet. 28: 136-152.
  10. KRAMER, P. J. and T. T. KOZLOWSKI (1979): Physiology of woody plants. Academic Press Inc. San Diego.
  11. KRUTZSCH, P. (1992): Iufro’s role in coniferous tree improvement: Norway spruce (Picea abies (L.) Karst). Silvae Genet. 41: 143-150.
  12. LANGLET, O. (1971): Two hundred years genecology. Taxon 20: 653-722.10.2307/1218596
  13. LANGLET, O. (1959): A cline or not a cline - a question of Scots pine. Silvae Genet. 8: 13-22.
  14. LANNER, R. M. (1976): Patterns of shoot development in Pinus and their relationship to growth potential, pp. 223-243. In: Tree Physiology and Yield Improvement, edited by M. G. R. CANNEL and F. T. LAST, Academic Press, London/UK.
  15. LAROI, G. H. and J. R. DUGLE (1968): A systematic and genecological study of Picea glauca and P. engelmannii, using paper chromatograms of needle extracts. Can. J. Bot. 46: 649-687.10.1139/b68-093
  16. LARSON, P. R. (1962): The indirect effect of photoperiod on tracheid diameter in Pinus resinosa. Am. J. Bot. 49: 132-137.10.1002/j.1537-2197.1962.tb14918.x
  17. LINHART, Y. B. and M. GRANT (1996): Evolutionary significance of local differentiation in plants. Ann. Rev. Ecol. Syst. 27: 237-277.10.1146/annurev.ecolsys.27.1.237
  18. LOEHLE, C. (1998): Height growth rate tradeoffs determine northern and southern range limits for trees. J. Biogeogr. 4: 735-742.10.1046/j.1365-2699.1998.2540735.x
  19. MATYAS, CS. and C. W. YEATMAN (1992): Effect of geographic transfer on growth and survival of jack pine (Pinus banksiana Lamb.) populations. Silvae Genet. 41: 370-376.
  20. MELLEROWICZ, E. J., W. K. COLEMAN., R. T. RIDING and C. H. A. LITTLE (1992): Periodicity of cambial activity in Abies balsamea. I. Effects of temperature and photoperiod on cambia dormancy and frost hardiness. Physiol. Plant. 85: 515-525.
  21. MORGENSTERN, E. K. (1996): Geographic variation in forest trees: Genetic basis and application of knowledge in silviculture. UBC Press, Vancouver.
  22. NAMKOONG, G. (1969): Nonoptimality of local races. In Proceedings of the Tenth Southern Conference on Forest Tree Improvement, Texas A&M University, College Station, Texas. pp 149-153.
  23. RAJORA, O. P. and B. P. DANCIK (2000): Population genetic variation, structure, and evolution in Engelmann spruce, white spruce and their natural hybrid complex in Alberta. Can. J. Bot. 78: 768-780.10.1139/cjb-78-6-768
  24. REHFELDT, G. E. (1978): Genetic differentiation in Douglas- fir populations from the northern Rocky Mountains. Ecology 59: 1264-1270.10.2307/1938240
  25. REHFELDT, G. E., C. C. YING, D. L. SPITTLEHOUSE and D. A. HAMILTON (1999): Genetic response to climate in Pinus contorta: Niche breadth, climate change and reforestation. Ecolog. Monogr. 69: 375-407.10.1890/0012-9615(1999)069[0375:GRTCIP]2.0.CO;2
  26. REHFELDT, G. E., N. M. TCHEBAKOVA, Y. I. PARFENOVA, W. R. WYKOFF, N. A. KUZMINA and L. I. MILYUTIN (2002): Interspecific responses to climate change in Pinus sylvestris. Global change Biol. 8: 912-929.10.1046/j.1365-2486.2002.00516.x
  27. REHFELDT, G. E., W. R. WYKOFF and C. C. YING (2001): Physiologic plasticity, evolution, and impacts of a changing climate on Pinus contorta. Climatic Change 50: 355-376.10.1023/A:1010614216256
  28. ROBERDS, J. H., J. O. HYUN and G. NAMKOONG (1990): Height response functions for white ash provenances grown at different latitudes. Silvae Genet. 39: 121-129.
  29. RWEYONGEZA, D. M., R-C. YANG, N. K. DHIR, L. K. BARNHARDT and C. HANSEN (2007): Genetic variation and climatic impacts on survival and growth of white spruce in Alberta, Canada. Silvae Genet. 56: 117-127.10.1515/sg-2007-0018
  30. SAS INSTITUTE (2004): SAS System for Windows. Version 9.2. Carry, NC.
  31. SCHMIDTLING R. C. (1994): Use of provenance tests to predict response to climatic change: loblolly pine and Norway spruce. Tree Physiology 14: 805-817.10.1093/treephys/14.7-8-9.80514967650
  32. STEPHENSON, N. A. (1990): Climatic control of vegetation distribution: The role of water balance. Am. Nat. 135: 649-670.
  33. TAIZ, L. and E. ZEIGER (2006): Plant Physiology. 4th Ed. Sinauer Associates Inc. Sunderland, MA.
  34. THOMSON, A. M. and W. H. PARKER (2008): Boreal forest provenance tests used to predict optimal growth and response to climate change. 1. Jack pine. Can. J. For. Res. 38: 157-170.
  35. THOMSON, A. M., C. L. RIDDELL and W. H. PARKER (2009): Boreal forest provenance tests used to predict optimal growth and response to climate change: 2. Black spruce. Can. J. For. Res. 39: 143-153.
  36. THORNTHWITE, C.W. (1948): An approach toward a rational classification of climate. Geogr. Rev. 38: 55-94.
  37. U.S. DEPARTMENT OF COMMERCE (1994): U.S. divisional and station climatic data and normals. National Climatic Data Center, National Oceanic and Atmospheric Administration. Ashille, NC. Vol. 1 (on CD ROM).
  38. VAARTAJA, O. (1954): Photoperiodic ecotypes of trees. Can. J. Bot. 32: 392-399.10.1139/b54-036
  39. VAARTAJA, O. (1959): Evidence of photoperiodic ecotypes in forest trees. Ecolog. Monogr. 29: 92-111.10.2307/1942199
  40. WANG, T., A. HAMANN, A. YANCHUK, G. A. O’NEIL and S. N. AITKEN (2006): Use of response functions in selecting lodgepole pine populations for future climates. Global Change Biol. 12: 2404-2416.10.1111/j.1365-2486.2006.01271.x
  41. WAREING, P. F. and D. L. ROBERTS (1956): Photoperiodic control of cambial activity in Robinia pseudacacia L. New Phytol. 55: 356-367.10.1111/j.1469-8137.1956.tb05295.x
  42. WU, H. X. and C. C. YING (2004): Geographic pattern of local optimality in natural populations of lodgepole pine. For. Ecol. Manage. 194: 177-198.
DOI: https://doi.org/10.1515/sg-2010-0019 | Journal eISSN: 2509-8934 | Journal ISSN: 0037-5349
Language: English
Page range: 158 - 169
Submitted on: Mar 9, 2010
Published on: Oct 20, 2017
Published by: Johann Heinrich von Thünen Institute
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2017 Deogratias M. Rweyongeza, L. K. Barnhardt, N. K. Dhir, C. Hansen, published by Johann Heinrich von Thünen Institute
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.