Morphological and Physiological Development of Organic Greenhouse Grown Ginger (<i>Zingiber officinalis</i>, Rosc) in a Temperate Climate as Influenced by Container and Transplant Origin — Oak Academic Publishing
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Morphological and Physiological Development of Organic Greenhouse Grown Ginger (<i>Zingiber officinalis</i>, Rosc) in a Temperate Climate as Influenced by Container and Transplant Origin
Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
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Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
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Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
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Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
1 Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
2 Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
3 Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
4 Department of Agriculture, Food and Resource Sciences, University of Maryland Eastern Shore, Princess Anne, MD, USA
Ginger ( Zingiber officinale Rosc) is a spice produced from underground rhizomes. This makes it necessary to consider the size of its growing area. There is limited information on the phenological development of the plant in containerized greenhouse conditions in temperate regions where natural daylength decreases as the growing season advances. This study determined the effects of container and rhizome sources on ginger shoot growth, chlorophyll concentration, leaf chlorophyll index, transpiration rate, and rhizome yield. Ginger, from non-tissue culture (O1) and tissue culture (O2) origins, were transplanted in a greenhouse in June 2019, 2020 and 2021, and monitored in five container types of different sizes. These were (C1) plastic Supertub (113.2 L), (C2) large Sterilite box (55.3 L), (C3) small Sterilite box (36.7 L), (C4) Husky heavy duty contractor plastic clean up bags (26.3 L) and (C5) Root Trapper Grounder Squat bag (27.9 L). The results did not show consistent trends for the effects of the respective size and origin combinations on most of the morphological characteristics, and all the physiological characteristics evaluated. Increasing container size increased the shoot biomass in all studies and increased fresh rhizome yield in two of three studies in the greenhouse. The effect of transplant origin was inconclusive, with a tissue culture advantage one year and no effect the other year. During the first 5 months after transplanting, the morphological development of tillers and height increased. Leaf chlorophyll index, chlorophyll concentration and stomatal conductance varied across sampling months, and within container and rhizome origin at individual sampling dates. The development of the plants in a greenhouse with decreasing natural day length posed a challenge as some plants senesced within 5 months after transplanting. Further opportunities to arrest senescence and extend growth should be introduced as another approach to extend growth and increase rhizome yield.
Ravindran, P.N., Nirmal Babu, K. and Shiva, K.N. (2005) Botany and Crop Improvement of Ginger. In: Ravindran, P.N. and Nirmal Babu, K., Eds., Ginger: The Genus Zingiber, Medicinal and Aromatic Plants—Industrial Profiles, CRC Press, Boca Raton, 15-85.
Srinivasan, K. (2017) Ginger Rhizomes (Zingiber officinale): A Spice with Multiple Health Beneficial Potentials. PharmaNutrition, 5, 18-28. https://doi.org/10.1016/j.phanu.2017.01.001
Zhang, M., Xiao, B., Wang, H., et al. (2016) Edible Ginger-Derived Nano-Lipids Loaded with Doxorubicin as a Novel Drug-Delivery Approach for Colon Cancer Therapy. Molecular Therapy, 24, 1783-1796. https://doi.org/10.1038/mt.2016.159
Garay Company (2022) Ginger: Top 5 Import Markets. https://www.garaycompany.com/insights/ginger-top5-import-markets
Hepperly, P., Zee, F., Kai, R., Arakawa, C., Meisner, M., Kratky, B., et al. (2004) Producing Bacterial Wilt-Free Ginger in Greenhouse Culture. Soil and Crop Management, Cooperative Extension Service, College of Tropical Agriculture and Human Resources, University of Hawaii at Manoa, Honolulu, 6 p.
Kratky, B. and Bernabe, C.I. (2009) Outdoor Growing of Clean Edible Ginger Seed by a Pot-in-Pot-in-Pot Sub-Irrigation Method. Proceedings of the 35th National Agricultural Plastics Congress, State College Pennsylvania, 13-16 July 2009, 1-5.
Mahr, S. (2018) Ginger, Zingiber officinale. https://hort.extension.wisc.edu/articles/ginger-zingiber-officinale/
Kandiannan, K., Sivaraman, K., Thankamani, C.K. and Peter, K.V. (1996) Agronomy of Ginger (Zingiber officinale Rosc.). Journal of Spices and Aromatic Crops, 5, 1-27.
Freyre, R., Flores, S., Gómez, C. and Fisher, P.R. (2019) Evaluation of Edible Ginger as a Greenhouse Crop. Acta Horticulturae, 1251, 119-124. https://doi.org/10.17660/ActaHortic.2019.1251.16
Marsh, L., Hashem, F. and Smith, B. (2021) Organic Ginger (Zingiber officinale Rosc.) Development in a Short Temperate Growing Season: Effect of Seedling Transplant Type and Mycorrhiza Application. American Journal of Plant Sciences, 12, 315-328. https://doi.org/10.4236/ajps.2021.123020
Min, B.R., Marsh, L.E., Brathwaite, K. and Daramola, A.O. (2017) Effects of Tissue Culture and Mycorrhiza Applications in Organic Farming on Concentrations of Phytochemicals and Antioxidant Capacities in Ginger (Zingiber officinale Roscoe) Rhizomes and Leaves. Journal of Food Science, 82, 873-881. https://doi.org/10.1111/1750-3841.13661
Smith, M.K. and Hamill, S.D. (1996) Field Evaluation of Micropropagated and Conventionally Propagated Ginger in Subtropical Queensland. Australian Journal of Experimental Agriculture, 36, 347-354. https://doi.org/10.1071/EA9960347
Jo, M.H., Ham, I.K., Lee, M.A., Park, S.K. and Kwon, K.H. (2007) Efficient Production of Rhizome Induced by Tissue Culture in Ginger (Zingiber officinale Roscoe). Acta Horticulture, 764, 271-274. https://doi.org/10.17660/ActaHortic.2007.764.36
Lincy A.K., Remashree A.B. and Sasikumar, B. (2004) Direct Multiple Shoot Induction from Aerial Stems of Ginger (Zingiber officinale Rose.). Journal of Applied Horticulture, 6, 99-101. https://doi.org/10.37855/jah.2004.v06i02.21
Flores, S., Freyre, R. and Fisher, P.R. (2018) How to Grow Superfoods in Containers Ginger and Turmeric. Greenhouse Grower, 40-44.
Poorter, H., Bühler, J., van Dusschoten, D., Climent, J. and Postma, J.A. (2012) Pot size Matters: A Meta-Analysis of the Effects of Rooting Volume on Plant Growth. Functional Plant Biology, 39, 839-850. https://doi.org/10.1071/FP12049
Nwachukwu, E.C. (2017) Study of Some Physiological and Yield Traits of Two Ginger (Zingiber officinale Rosc.) Cultivars. Global Journal of Agricultural Sciences, 16, 73-76. https://doi.org/10.4314/gjass.v16i1.10
Ai, X.Z., Song, J.F. and Xu, X. (2005) Ginger Production in Southeast Asia. In: Ravindran, P.N. and Nirmal Babu, K., Eds., Ginger: The Genus Zingiber, Medicinal and Aromatic Plants—Industrial Profiles, CRC Press, Boca Raton, 241-278.
Cheng, S.P., Jia, K.H., Liu, H., Zhang, R.G., Li, Z.C., Zhou, S.S., et al. (2021) Haplotype-Resolved Genome Assembly and Allele-Specific Gene Expression in Cultivated Ginger. Horticulture Research, 8, 188. https://doi.org/10.1038/s41438-021-00599-8
USDA Agricultural Marketing Service (2016) Organic Production & Handling Standards. https://www.ams.usda.gov/publications/content/organic-production-handling-standards
Adaniya, S., Shoda, M. and Fujieda, K. (1989) Effects of Day Length on Flowering and Rhizome Swelling in Ginger (Zingiber officinale Roscoe). Journal of the Japanese Society for Horticultural Science, 58, 649-656.
Pandey, Y.R., Sagwansupyakorn, C., Sahavacharin, O. and Thaveechai, N. (1996) Influence of Photoperiods on Dormancy and Rhizome Formation of Ginger (Zingiber officinale Roscoe). Agriculture and Natural Resources, 30, 386-391.
USDA Plant Hardiness Zone Map (2012). https://planthardiness.ars.usda.gov/
Retana-Cordero, M., Fisher, P.R. and Gómez, C. (2021) Modeling the Effect of Temperature on Ginger and Turmeric Rhizome Sprouting. Agronomy, 11, Article No. 1931. https://doi.org/10.3390/agronomy11101931
Loh, F.C.W., Grabosky, J.C. and Bassuk, N.L. (2002) Using the SPAD 502 Meter to Assess Chlorophyll and Nitrogen Content of Benjamin Fig and Cottonwood Leaves. HortTechnology, 12, 682-686. https://doi.org/10.21273/HORTTECH.12.4.682
Evans, J.R. (1983) Nitrogen and Photosynthesis in the Flag Leaf of Wheat (Triticum aestivum L.). Plant Physiology, 72, 297-302. https://doi.org/10.1104/pp.72.2.297
Seemann, J.R., Sharkey, T.D., Wang, J. and Osmond, C.B. (1987) Environmental Effects on Photosynthesis, Nitrogen-Use Efficiency, and Metabolite Pools in Leaves of Sun and Shade Plants. Plant Physiology, 84, 796-802. https://doi.org/10.1104/pp.84.3.796
Li, H., Huang, M., Tan, D., Liao, Q., Zou, Y. and Jiang, Y. (2018) Effects of Soil Moisture Content on the Growth and Physiological Status of Ginger (Zingiber officinale Roscoe). Acta Physiologiae Plantarum, 40, Article No. 125. https://doi.org/10.1007/s11738-018-2698-4
Li, H., Wang, Y., Xiao, J. and Xu, K. (2015) Reduced Photosynthetic Dark Reaction Triggered by ABA Application Increases Intercellular CO2 Concentration, Generates H2O2 and Promotes Closure of Stomata in Ginger Leaves. Environmental and Experimental Botany, 113, 11-17. https://doi.org/10.1016/j.envexpbot.2015.01.002
Flores, S., Retana-Cordero, M., Fisher, P.R., Freyre, R. and Gómez, C. (2021) Effect of Photoperiod, Propagative Material, and Production Period on Greenhouse-Grown Ginger and Turmeric Plants. HortScience, 56, 1476-1485. https://doi.org/10.21273/HORTSCI16025-21