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International Journal of Academic Research in Economics and Management Sciences

Open Access Journal

ISSN: 2226-3624

Effect of Elevated Co2 and Shading on Growth, Physiological Changes, Yield and Quality of Cherry Tomato (Solanum Lycopersicum Var. Cerasiforme) in Tropical Climate

N E Hairin, S S Zaharah, A S Mat Su

http://dx.doi.org/10.6007/IJAREMS/v10-i4/11958

Open access

Cherry tomato (Solanum lycopersicum var. cerasiforme) from family Solanaceae is an important source for vitamins and other minerals. The demand for tomatoes therefore increases due to the changes in the lifestyle of the food intake among ordinary people who are aware of their nutritional intake. Climate change is nevertheless the greatest treat that can reduced the tomato production. Cultivating indoor using greenhouse is one of the solutions to mitigate this problem. The biggest constraint in tropical climate for greenhouse cultivation, however, is solar radiation and temperature. This study was therefore intended to evaluate the growth, physiology, yield and quality of tomato under two systems of greenhouse; Smart Greenhouse (SGS) versus Conventional Greenhouse (CGS) system. Cherry tomato was grown in two greenhouses at three different shading levels of (0, 50 and 70 percent). SGS received around 800 ppm of CO2 while CGS has been designated as control. The experiments with six replications were carried out in nested design. All the data were compared and subjected to Analysis of Variance (ANOVA). As a results, growth, physiology, and tomato yield were reduced due to high temperature inside SGS under elevated CO2. Additionally, high temperature (32-35oC) inhibited the assimilation of photosynthetic carbon. Thus, fruit setting was delayed thereby reducing yield production. Upon enrichment, vapor pressure deficit (VPD) decreased under elevated CO2 and lycopene under shaded area showed 52% and 25% respectively higher compared to CGS. Overall, elevated CO2 in tropical climate inside greenhouse influences temperature increase that have reduced growth performance, physiology, yield and quality of cherry tomato.

Argade, M. B., Kadam, J. H., Garande, V. K., Patgaonkar, D. R., Patil, V. S., & Sonawane, P. N. (2018). Effect of different shading intensities on growth and yield of cherry tomato. Journal of Applied and Natural Science, 10(1), 352–357.
https://doi.org/10.31018/jans.v10i1.1629
Baldwin, E. A., Scott, J. W., Shewmaker, C. K., & Schuch, W. (2000). Flavor trivia and tomato aroma: Biochemistry and possible mechanisms for control of important aroma components. HortScience, 35(6), 1013–1022. https://doi.org/10.21273/hortsci.35.6.1013
Jones, B. J. (2007). Tomato plant culture: In the field, greenhouse, and home garden, second edition. In Tomato Plant Culture: In the Field, Greenhouse, and Home Garden, Second Edition (2nd ed.). CRC Press. https://doi.org/10.1201/9781420007398
Carillo, P., Kyriacou, M. C., El-Nakhel, C., Pannico, A., dell’Aversana, E., D’Amelia, L., Colla, G., Caruso, G., De Pascale, S., & Rouphael, Y. (2019). Sensory and functional quality characterization of protected designation of origin ‘Piennolo del Vesuvio’ cherry tomato landraces from Campania-Italy. Food Chemistry, 292, 166–175.
https://doi.org/10.1016/j.foodchem.2019.04.056
Causse, M., Buret, M., Robini, K., & Verschave, P. (2003). Inheritance of Nutritional and Sensory Quality Traits in Fresh Market Tomato and Relation to Consumer Preferences. Journal of Food Science, 68(7), 2342–2350. https://doi.org/10.1111/j.1365-2621.2003.tb05770.x
Drake, B. G., Gonzàlez-Meler, M. A., & Long, S. P. (1997). MORE EFFICIENT PLANTS: A Consequence of Rising Atmospheric CO2? Annual Review of Plant Physiology and Plant Molecular Biology, 48(1), 609–639. https://doi.org/10.1146/annurev.arplant.48.1.609
Gama, D. R. da S., Mesquita, A. C., Yuri, J. E., Ferreira, K. M., & Souza, V. (2017). Different Shading Environments Impact Growth And Yield of Three Mini-Tomato Cultivars. Revista Caatinga, 30(2), 324–334. https://doi.org/10.1590/1983-21252017v30n207rc
Ili?, Z. S., Milenkovi?, L., Stanojevi?, L., Cvetkovi?, D., & Fallik, E. (2012). Effects of the modification of light intensity by color shade nets on yield and quality of tomato fruits. Scientia Horticulturae, 139, 90–95. https://doi.org/10.1016/j.scienta.2012.03.009
Jiao, X. C., Song, X. M., Zhang, D. L., Du, Q. J., & Li, J. M. (2019). Coordination between vapor pressure deficit and CO2 on the regulation of photosynthesis and productivity in greenhouse tomato production. Scientific Reports, 9(1), 1–10.
https://doi.org/10.1038/s41598-019-45232-w
Jin, C., Du, S., Wang, Y., Condon, J., Lin, X., & Zhang, Y. (2009). Carbon dioxide enrichment by composting in greenhouses and its effect on vegetable production. Journal of Plant Nutrition and Soil Science, 172(3), 418–424. https://doi.org/10.1002/jpln.200700220
Kang, Y., Khan, S., & Ma, X. (2009). Climate change impacts on crop yield, crop water productivity and food security - A review. Progress in Natural Science, 19(12), 1665–1674. https://doi.org/10.1016/j.pnsc.2009.08.001
Karim, M. F., Hao, P., Nordin, N. H. B., Qiu, C., Zeeshan, M., Khan, A. A., & Shamsi, I. H. (2020). Effects of CO2 enrichment by fermentation of CRAM on growth, yield and physiological traits of cherry tomato. Saudi Journal of Biological Sciences, 27(4), 1041–1048. https://doi.org/10.1016/j.sjbs.2020.02.020
Kirschbaum, M. U. F. (2011). Does enhanced photosynthesis enhance growth? Lessons learned from CO2 enrichment studies. Plant Physiology, 155(1), 117–124.
https://doi.org/10.1104/pp.110.166819
Kittasa, C., Rigakis, N., Katsoulas, N., & Bartzanas, T. (2009). Influence of shading screens on microclimate, growth and productivity of tomato. Acta Horticulturae, 807, 97–102. https://doi.org/10.17660/actahortic.2009.807.10
Krumbein, A., Schwarz, D., & Kläring, H.-P. (2006). Effects of environmental factors on carotenoid content in tomato (Lycopersicon esculentum (L.) Mill.) grown in a greenhouse . Journal of Applied Botany and Food Quality, 80(2), 160–164.
https://www.researchgate.net/publication/278829077_Effects_of_environmental_factors_on_carotenoid_content_in_tomato_Lycopersicon_esculentum_L_Mill_grown_in_a_greenhouse
Li, Y., Zhang, Y., Zhang, X., Korpelainen, H., Berninger, F., & Li, C. (2013). Effects of elevated CO 2 and temperature on photosynthesis and leaf traits of an understory dwarf bamboo in subalpine forest zone, China. Physiologia Plantarum, 148(2), 261–272. https://doi.org/10.1111/j.1399-3054.2012.01705.x
Lokesha, A. N., Shivashankara, K. S., Laxman, R. H., Geetha, G. A., & Shankar, A. G. (2019). Effect of High Temperature on Fruit Quality Parameters of Contrasting Tomato Genotypes. International Journal of Current Microbiology and Applied Sciences, 8(03), 1019–1029. https://doi.org/10.20546/ijcmas.2019.803.124
Mamatha, H., Srinivasa Rao, N. K., Laxman, R. H., Shivashankara, K. S., Bhatt, R. M., & Pavithra, K. C. (2014). Impact of elevated CO2 on growth, physiology, yield, and quality of tomato (Lycopersicon esculentum Mill) cv. Arka Ashish. Photosynthetica, 52(4), 519–528. https://doi.org/10.1007/s11099-014-0059-0
Ordóñez-Santos, L. E., Vázquez-Odériz, M. L., & Romero-Rodríguez, M. A. (2011). Micronutrient contents in organic and conventional tomatoes (Solanum lycopersicum L.). International Journal of Food Science & Technology, 46(8), 1561–1568. https://doi.org/10.1111/j.1365-2621.2011.02648.x
Reddy, A. R., Rasineni, G., & Raghavendra, A. S. (2010). The impact of global elevated CO 2 concentration on photosynthesis and plant productivity. Current Science, 99(1), 46–57. https://www.researchgate.net/publication/267553517_The_impact_of_global_elevated_CO_2_concentration_on_photosynthesis_and_plant_productivity
Shivashankara, K. S., Pavithra, K. C., Laxman, R. H., Sadashiva, A. T., & Christopher, M. G. (2014). Genotypic variability in tomato for total carotenoids and lycopene content during summer and response to post harvest temperature. Journal of Horticultural Sciences, 9(1), 98–102. https://jhs.iihr.res.in/index.php/jhs/article/view/233
Thompson, M., Gamage, D., Hirotsu, N., Martin, A., & Seneweera, S. (2017). Effects of elevated carbon dioxide on photosynthesis and carbon partitioning: A Perspective on root sugar sensing and hormonal crosstalk. Frontiers in Physiology, 8(AUG).
https://doi.org/10.3389/fphys.2017.00578
Ziska, L. H., Ghannoum, O., Baker, J. T., Conroy, J., Bunce, J. A., Kobayashi, K., & Okada, M. (2001). A global perspective of ground level, ‘ambient’ carbon dioxide for assessing the response of plants to atmospheric CO 2. Global Change Biology, 7(7), 789–796. https://doi.org/10.1111/j.1365-2486.2001.00436.x

In-Text Citation: (Hairin et al., 2021)
To Cite this Article: Hairin, N. E., Zaharah, S. S., & Mat Su, A. S. (2021). Effect of Elevated Co2 and Shading on Growth, Physiological Changes, Yield and Quality of Cherry Tomato (Solanum Lycopersicum Var. Cerasiforme) in Tropical Climate. International Journal of Academic Research in Economics and Management and Sciences, 10(4), 40–51.
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