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Impacts of nursery cultural treatments on stress tolerance in 1 + 0 container white spruce (Picea glauca [Moench] Voss) seedlings for summer-planting

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Abstract

Impacts of nursery cultural treatments (T) on stress tolerance of greenhouse-grown 1 + 0 container white spruce (Picea glauca [Moench] Voss) seedlings (mean height 24 cm, root collar diameter 3.1 mm) for summer planting were studied. Seedlings were subjected to 12-h short-day treatments of 0 (T0), 3 (T3), 7 (T7), 10 (T10), or 15 (T15) days, followed by 0, 7, 17, 40, or 46 days of reduced N supply, respectively. Relevant physiological and morphological factors were examined concurrently. Foliar N concentrations exceeded optimal levels and differed little among treatments, suggesting a minor confounding role for N reduction. Both frost and drought tolerance increased incrementally from T0 through T15. Electrolyte leakage index decreased steadily from T0 (25% for roots, 17% for needles) to T15 (1% for roots, 2% for needles) after 2-h exposure of fine roots to  − 2°C and of needles to  − 8°C. Withholding soil watering for 19 days caused 80% mortality among seedlings in T0, 50% in T3, and  < 10% in T7–T15. The transpiration decline curve suggested that enhanced drought tolerance was largely attributable to quicker stomatal closure during water stress and lower cuticular transpiration rate. The treatments increased root growth capacity on a per-seedling, but not per-root-mass, basis. Needle primordia were developed in all T7-T15 seedlings but not in T0 and T3 treatments, suggesting that nurseries may need no more than 7 days of blackout application for conditioning spruce seedlings for summer planting. Shoot dry weight fraction increased gradually from T0 through T15 and was linearly correlated with needle specific weight and frost tolerance, and may thus be useful in monitoring progress of conditioning treatments.

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References

  • Association of Official Analytical Chemists. (1995) Proteins (crude) in animal feed—combustion method, pp. 18–19, Chapter 4, Volume 1. In: Association of Official Analytical Chemists (ed) Official methods of analysis, 16th edn. Association of Official Analytical Chemists, Arlington, VA

  • Bigras FJ, D’Aoust AL (1992) Hardening and dehardening of shoots and roots of containerized black spruce and white spruce seedlings under short and long days. Can J For Res 23:219–228

    Google Scholar 

  • Bigras FJ, Gonzales A, D’Aoust AL, Hébert C (1996) Frost hardiness, bud phenology and growth of containerized Picea mariana seedlings grown at three nitrogen levels and three temperature regimes. New For 12:243–259

    Google Scholar 

  • Blake J, Zaerr J, Hee S (1979) Controlled moisture stress to improve cold hardiness and morphology of Douglas-fir seedlings. For Sci 25:576–582

    Google Scholar 

  • Blake TJ, Sutton RF (1987) Variation in water relations of black spruce stock types planted in Ontario. Tree Physiol 3:331–344

    PubMed  Google Scholar 

  • Blum A (1988) Plant breeding for stress environments. CRC Press, Boca Raton, FL, p 212

    Google Scholar 

  • Calmé S, Margolis HA, Bigras FJ (1993) Influence of cultural practices on the relationship between frost tolerance and water content of containerized black spruce, white spruce, and jack pine seedlings. Can J For Res 23:503–511

    Google Scholar 

  • Christersson L (1972) The transpiration rate of unhardened, hardened, and dehardened seedlings of spruce and pine. Physiol Plant 26:258–263

    Google Scholar 

  • Colombo SJ (1990) Bud dormancy status, frost hardiness, shoot moisture content, and readiness of black spruce container seedlings for frozen storage. J Am Soc Hortic Sci 115:302–307

    Google Scholar 

  • Colombo SJ, Webb DP, Glerum C (1982) Cold hardiness and bud development under short days in black spruce and white spruce seedlings, pp 171–176. In: Scarratt JB, Glerum C, Plexman CA (eds) Proceedings of the Canadian containerized tree seedling symposium, 14–16 Sept. 1981, Toronto. Can. For. Serv. Great Lakes For. Centre. COJFRC Symp. Proc. O-P-10

  • Coursolle C, Bigras FJ, Margolis HA, Hébert C (1998) Growth and hardening of four provenances of containerized white spruce (Picea glauca [Moench] Voss) in response to the duration of 16 h long-night treatments. New For 16:155–166

    Google Scholar 

  • Grossnickle SC (2000) Ecophysiology of northern spruce species – the performance of planted seedlings. NRC Research Press, Ottawa, p 407

    Google Scholar 

  • Grossnickle SC, Major JE (1994) Interior spruce seedlings compared to emblings produced from somatic embryogenesis. II. Stock quality assessment prior to field planting. Can J For Res 24:1385–1396

    Article  Google Scholar 

  • Grossnickle SC, Arnott JT, Major JE, Tschaplinski TJ (1991) Influence of dormancy induction treatments on western hemlock seedlings: I. Seedling development and stock quality assessment. Can J For Res 21:164–174

    Google Scholar 

  • Hawkins CDB, Draper DA (1991) Effects of blackout on British Columbia spruce seedlots at Red Rock Research Station. FRDA Rep. 170., B.C. Ministry of Forests, Victoria, B.C., Canada, p 58

  • Hawkins CDB, Eastham AW, Story TL, Eng RYN, Draper DA (1996) The effect of nursery blackout application on Sitka spruce seedlings. Can J For Res 26:2201–2213

    Google Scholar 

  • Huang CL, Schulte EE (1985) Digestion of plant tissues for analysis by ICP emission spectroscopy. Commun Soil Sci Plant Anal 16:943–958

    Article  CAS  Google Scholar 

  • Johnson JD (1984) A rapid technique for estimating total surface area of pine needles. For Sci 30:913–921

    Google Scholar 

  • Juma N (2001) The pedosphere and its dynamics – a systems approach to soil science. Vol. I. Introduction to soil science and soil resources. Salman Productions, Edmonton, Alberta, p 339

    Google Scholar 

  • Khasa PD, Sigler L, Chakravarty P, Dancik BP, Erickson L, McCurdy D (2001) Effect of fertilization on growth and ectomycorrhizal development of container-grown and bare-root nursery conifer seedlings. New For 22:179–197

    Google Scholar 

  • Krasowski MJ, Letchford T, Eastham AM (1993) Growth of short-day treated spruce seedlings planted throughout British Columbia. FRDA Rep. 209, Forestry Canada and British Columbia Ministry of Forests, Victoria, BC, 39 p

  • Levitt J (1972) Responses of plants to environmental stresses. Academic Press, New York, p 324

    Google Scholar 

  • Macey DE, Arnott JT (1986) The effect of moderate moisture and nutrient stress on bud formation and growth of container-grown white spruce seedlings. Can J For Res 16:949–954

    Google Scholar 

  • Martin V, Pallardy SG, Bahari ZA (1987) Dehydration tolerance of leaf tissues of six woody angiosperms species. Physiol Plant 69:182–186

    Article  Google Scholar 

  • Mitchell WK, Dunsworth G, Simpson DG, Vyse A (1995) Planting and seeding. In: Lavender DP, Parish R, Johnson CM, Montgomery G, Vyse A, Willis RA, Winston D (eds) Regenerating British Columbia’s forests. UBC Press, Vancouver, BC, pp 235–253

    Google Scholar 

  • Nissila PC, Fuchigami LH (1978) The relationship between vegetative maturity and the first stage of cold acclimation. J. Am Soc Hortic Sci 103:710–711

    Google Scholar 

  • Odlum K, Scarratt J, Timmer V, Duckett S, Ross-Slomke P (2001) Container stock production. In: Wagner RG, Colombo SJ (eds) Regenerating the Canadian Forest – Principles and Practice for Ontario. Fitzhenry & Whiteside Ltd., Markham, ON, pp 281–306

    Google Scholar 

  • Paterson J, DeYoe D, Millson S, Galloway R (2001) Handling and planting of seedlings. In: Wagner RG, Colombo SJ (eds) Regenerating the Canadian Forest – principles and practice for Ontario. Fitzhenry & Whiteside Ltd., Markham, Ontario, pp 325–341

    Google Scholar 

  • Quisenberry JE, Roark B, McMichael BL (1982) Use of transpiration decline curves to identify drought-tolerant cotton germplasm. Crop Sci 22:918–922

    Article  Google Scholar 

  • Revel J, Lavender DP, Charleson L (1990) Summer planting of white spruce and lodgepole pine seedlings, pp 1–14. FRDA Report 145, Forestry Canada and British Columbia Ministry of Forests, Victoria, BC, Canada

  • Ryyppö A, Repo T, Vapaavuori E (1998) Development of freezing tolerance in roots and shoots of Scots pine seedlings at nonfreezing temperatures. Can J For Res 28:557–565

    Article  Google Scholar 

  • SAS Institute Inc. (1988) SAS/STAT user’s guide, Release 6.03 edition. SAS Institute Inc., Cary, NC

    Google Scholar 

  • Sutton RF (1988) Forestation: development of the physiological connection, pp 1–18. In: McClain KM, Willcocks AJ (eds) Aspects of planting: biology and practice. Ontario Ministry of Natural Resources, Thunder Bay, Ontario, Technical Workshop Report No. 1

  • Swan HSD (1970) Relationships between nutrient supply, growth and nutrient concentrations in the foliage of black spruce and jack pine. Pulp Paper Research Institute of Canada, Woodlands Paper 19:1–46

    Google Scholar 

  • Tan W (1992) Drought tolerance and growth in black spruce (Picea mariana). PhD thesis. University of Toronto, Toronto, p 165

  • Tan W, Blake TJ (1993) Drought tolerance, abscisic acid and electrolyte leakage in fast- and slow-growing black spruce (Picea mariana) progenies. Physiol Plant 89:817–823

    Article  CAS  Google Scholar 

  • Tan W, Blake TJ (1997) Gas exchange and water relations responses to drought of fast- and slow-growing black spruce families. Can J Bot 75:1700–1706

    Google Scholar 

  • Tan W, Blake TJ, Boyle TJB (1992) Drought tolerance in faster- and slower-growing black spruce (Picea mariana) progenies: I. Stomatal and gas exchange responses to osmotic stress. Physiol Plant 85:639–644

    Article  CAS  Google Scholar 

  • Tan W, Hogan GD (1995) Limitations to net photosynthesis as affected by nitrogen status in jack pine (Pinus banksiana Lamb.) seedlings. J Exp Bot 46:407–413

    CAS  Google Scholar 

  • Templeton CWG, Odlum KD, Colombo SJ (1993) How to identify bud initiation and count needle primordia in first-year spruce seedlings. For Chron 69:431–437

    Google Scholar 

  • Vanhinsberg NB, Colombo SJ (1990) Effect of temperature on needle anatomy and transpiration of Picea mariana after bud initiation. Can J For Res 20:598–601

    Article  Google Scholar 

  • Weimer RC (1993) Statistics. 2nd edn. Wm. C. Brown Publishers, Belmont, CA

    Google Scholar 

  • Williams CE, South DB, Glover GR (1988) Effects of bud status and seedling biomass on root growth potential of loblolly pine. Can J For Res 18:1635–1640

    Google Scholar 

  • Young E, Hanover JW (1978) Effects of temperature, nutrient, and moisture stresses on dormancy of blue spruce seedlings under continuous light. For Sci 24:458–467

    Google Scholar 

  • Zwolinski J, Peterson CM (1994) Use of stains improves determination of root growth potential in loblolly pine (Pinus taeda L.), p 46. In: Maki DS, McDonough TM, Noland TL (eds) Making the grade – an international symposium on planting stock performance and quality assessment. Sault Ste. Marie, ON, September 11–15, 1994

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Acknowledgements

The funding support for this study was provided by Manning Diversified Forest Products Research Trust Fund. The Pacific Regeneration Technology Beaverlodge Nursery and Grande Prairie Regional College provided in-kind support. The author thanks Rick Scott, Audrey Wells, Yueqing Lin, Steven Kiiskila and Fiona Sample for their technical assistance. Reviews and comments from Dr. Roy Sutton and two anonymous reviewers on earlier drafts are greatly appreciated.

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Correspondence to Weixing Tan.

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Tan, W. Impacts of nursery cultural treatments on stress tolerance in 1 + 0 container white spruce (Picea glauca [Moench] Voss) seedlings for summer-planting. New Forests 33, 93–107 (2007). https://doi.org/10.1007/s11056-006-9016-5

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