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Growth, Dry Matter Partitioning and Photosynthesis in North American Ginseng Seedlings

  • Proctor, John T.A. (Department of Plant Agriculture, University of Guelph) ;
  • Palmer, John W. (Nelson Research Centre, Plant and Food Research Ltd.) ;
  • Follett, John M. (Ruakura Research Centre, AgResearch Ltd.)
  • Received : 2010.03.11
  • Accepted : 2010.05.26
  • Published : 2010.09.30

Abstract

North American ginseng seedlings (Panax quinquefolius L.) were grown in pots in heated greenhouses, in a cool greenhouse, or in the field, in 11 experiments at various times over 16 years. Crop establishment, dry matter partitioning, photosynthesis, radiation use efficiency and carbon budget were measured and/or calculated in some years. Once the seedling canopy, of about $20\;cm^2$ per seedling, and a leaf area index of 0.37, was established, about 40 days after germination, full canopy display lasted about 87 days. Only 16.6% of the incoming solar radiation was intercepted by the crop, the remainder falling on the mulched soil surface. Total and root dry matter accumulations in the cool greenhouse and in the field were about double that in the heated greenhouses. Partitioning of dry matter to roots (economic yield or harvest index) in the cool greenhouse and in the field was 73% whereas it was 62.5% in the heated greenhouses. The relationship between root dry matter and radiation interception during the full canopy period was linear with growth efficiencies of $2.92\;mg\;MJ^{-1}$ at 4.8% of incoming radiation and $0.30\;mg\;MJ^{-1}$ at 68% of incoming radiation. A photosynthetic rate of $0.39\;g\;m^{-2}\;h^{-1}$ was attained at light saturation of about $150\;{\mu}mol\;m^{-2}\;s^{-1}$ (7.5% of full sunlight); dark respiration was $0.03\;g\;m^{-2}\;h^{-1}$, about 8.5% of maximum assimilation rate. Estimates of dry matter accumulation by growth analysis and by $CO_2$ uptake were similar, 6.21 vs. 7.62 mg $CO_2$, despite several assumptions in $CO_2$ uptake calculations.

Keywords

References

  1. Rao MR, Palada MC, Becker BN. Medicinal and aromatic plants in agroforestry systems. Agroforestry Systems 2004;61:107-122. https://doi.org/10.1023/B:AGFO.0000028993.83007.4b
  2. Wen J. Species diversity, nomenclature, phylogeny, biogeography, and classification of the ginseng genus (Panax L., Araliaceae). In: Punja ZK, ed. Proceedings of the International Ginseng Workshop: utilization of biotechnological, genetic and cultural approaches for North American and Asian ginseng improvement. Burnaby: Simon Fraser University Press, 2001. p.67-88.
  3. Proctor JTA, Bailey WG. Ginseng: industry, botany, and culture. Hortic Rev 1987;9:188-236.
  4. Proctor JTA, Dorais M, Bleiholder H, Willis A, Hack H, Meier V. Phenological growth stages of North American ginseng (Panax quinquefolius). Ann Appl Biol 2003;143:311-317. https://doi.org/10.1111/j.1744-7348.2003.tb00299.x
  5. Fournier AR, Gosselin A, Proctor JTA, Gauthier L, Khanizadeh S, Dorais M. Relationship between understory light and growth of forest-grown American ginseng (Panax quinquefolius L.). J Am Soc Hortic Sci 2004;129:425-432.
  6. Proctor JTA. Source-sink relations in North American ginseng seedlings as influenced by leaflet removal. J GinFig seng Res 2008;32:337-340.
  7. Persons WS, Davis JM. Growing & marketing ginseng, goldenseal & other woodland medicinals. Fairview, NC: Bright Mountain Books, 2005.
  8. Lee JC, Cheon SK, Kim YT, Jo JS. Studies on the effect of shading materials on the temperature, light intensity, photosynthesis and the root growth of Korean ginseng (Panax ginseng C. A. Meyer). J Korean Soc Crop Sci 1980;25:91-98.
  9. Bailey WG, Stathers RJ. Growth of one and two year old American ginseng in an arid environment of British Columbia, Canada. Korean J Ginseng Sci 1991;15:36-40.
  10. Proctor JTA, Percival DC, Louttit D. Inflorescence removal affects root yield of American ginseng. HortScience 1999;34:82-84.
  11. Fiebig AE, Proctor JTA, Murr DP, Reeleder RD. Flower abscission and induction in North American ginseng with ethephon. HortScience 2005;40:138-141.
  12. British Columbia Ministry of Agriculture, Fisheries and Food. Ginseng production guide for commercial growers. Victoria, CA: The Ministry of Agriculture, Fisheries and Food, 1998.
  13. Stathers RJ, Bailey WG. Energy receipt and partitioning in a ginseng shade canopy and mulch environment. Agric For Meteorol 1986;37:1-14. https://doi.org/10.1016/0168-1923(86)90024-9
  14. Proctor JTA, Louttit D, Jiao J. Seasonal growth and root respiration of North American ginseng. J Ginseng Res 1998;22:161-167.
  15. Monteith JL, Moss CJ. Climate and the efficiency of crop production in Britain. Philos Trans R Soc Lond B 1977;281:277-294. https://doi.org/10.1098/rstb.1977.0140
  16. Sinclair TR, Muchow RC. Radiation use efficiency. Adv Agron 1999;65:215-265. https://doi.org/10.1016/S0065-2113(08)60914-1
  17. Gallagher JN, Biscoe PV. Radiation absorption, growth and yield of cereals. J Agric Sci 1978;91:47-60. https://doi.org/10.1017/S0021859600056616
  18. Proctor JTA, Louttit D, Follett JM. Controlled-temperature aboveground stratification of North American ginseng seed. Horttechnology 2001;11:100-103.
  19. Ontario Ministry of Agriculture and Food. Production recommendations for ginseng. Tronto: The Ministry of Agriculture and Food, 2005.
  20. Proctor JTA. Ginseng: old crop, new directions. In: Janick J, ed. Progress in new crops. Alexandria: ASHS Press, 1996. p. 565-577.
  21. Gin H, Bailey WG, Wong ST. Characteristics of third year American ginseng root yields from Lytton, British Columbia, Canada. Korean J Ginseng Sci 1989;13:147-152.
  22. Lee JC, Proctor JTA, Tsujita MJ. Air and root-zone temperature effects on the growth and yield of American ginseng. J Hortic Sci Biotechnol 1986;61:129-134.
  23. Ravi V, Indira P. Crop physiology of sweet potato. In: Janick J, ed. Horticultural reviews, Vol. 23. New York: Wiley, 1999. p. 277-338.
  24. Boehm CL, Harrison HC, Jung G, Nienhuis J. Organisation of American and Asian germplasm using randomly amplified polymorphic DNA (RAPD) markers. J Am Soc Hortic Sci 1999;124:252-256.
  25. Ayaz S, McKenzie BA, McNeil DL, Hill DG. Light interception and utilization of four grain legumes sown at different plant populations and depths. J Agric Sci 2004;142:297-308. https://doi.org/10.1017/S0021859604004241
  26. Werker AR, Jaggard KW. Dependence of sugar beet yield on light interception and evapotran-spiration. Agric For Meteorol 1998;89:229-240. https://doi.org/10.1016/S0168-1923(97)00081-6
  27. Bohning RH, Burnside CA. The effect of light intensity on rate of apparent photosynthesis in leaves of sun and shade plants. Am J Bot 1956;43:557-561. https://doi.org/10.2307/2438868
  28. Amthor JS. Respiration and crop productivity. New York: Springer-Verlag, 1989.
  29. Sestak Z, Catsky J, Jarvis PG. Plant photosynthetic production:manual of methods. The Hague: Junk, 1971.

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