Effect of zinc-based fertilizers on the growth and development of Tomato plant (Solanum lycopersicum L.) and fruit storability

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Research Paper 01/07/2021
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Effect of zinc-based fertilizers on the growth and development of Tomato plant (Solanum lycopersicum L.) and fruit storability

Key words: Zinc, Solanum lycopersicum, Growth, Development, Ripening, Storability
Int. J. Agron. Agri. Res.19( 1), 9-17, July 2021.
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Abstract

Micronutrient deficiency is a common and widely spread problem that affects yield and quality of plant products. Zinc deficiency especially in fresh commodities enhances fruit deterioration during postharvest storage. This study was aimed at investigating effects of foliar applications of Zinc-based fertilizer on tomato (Solanum lycopersicum) growth and development, as well as fruit behaviour during storage. Four different concentrations of Zinc-based fertilizer were applied on tomato plants (0ml/l, 5ml/l, 10ml/l and 15ml/l). Zinc-based fertilizer applications started fourteen days after transplanting and continued weekly till harvest. A completely randomized block design with four treatments and six replications was used for the experiment. Parameters for plant growth and development, fruit quality and storability were determined. Results showed that Zinc-based fertilizer significantly influence most growth parameters at (p < 0.05). Zinc-based fertilizer has a significant effect on development parameters. There was no significant difference among treatments for fruit diameter (p < 0.05). Most storability parameters, except for PWL at 5th and 8th, Firmness and TSSC, showed a significant difference among treatments at (p < 0.05). The dose of 15ml/l was the most efficacious on many parameters evaluated.

VIEWS 41

Abd El-Baky MMH, Ahmed AA, El-Nemr MA, Zaki MF. 2010. Effect of Potassium Fertilizer and Foliar Zinc Application on Yield and Quality of Sweet Potato. Research Journal of Agriculture and Biological Sciences 6(4), 386-394.

Affognon H, Mutungi C, Sanginga P, Borgemeister C. 2015. Unpacking Postharvest Losses in Sub-Saharan Africa: A Meta-Analysis. World Development 66, 49-68.

Aghofack-Nguemezi J, Noumbo GT, Nkumbe CN. 2014. Influence of calcium and magnesium- based fertilizers on fungal diseases, plant growth parameters and fruit quality of three varieties of tomato (Solanum lycopersicum). Journal of Science and Technology 34(1), 9-20.

Ahmed AA, Abd El-Baky MMH, Zaki MF, Abd El-Aal Faten S. 2011. Effect of Foliar Application of Active Yeast Extract and Zinc on Growth, Yield and Quality of Potato Plant (Solanum tuberosum L.). Journal of Applied Sciences Research 7(12), 2479-2488.

Alloway BJ. 2008. Zinc in soils and crop nutrition. Paris, France: IFA; and Brussels, Belgium: IZA.

Alloway BJ. 2009. Soil factors associated with zinc deficiency in crops and humans. Environmental Geochemistry Health 31, 537-548.

Arah IK, Amaglo H, Kumah EK, Ofori H. 2015. Preharvest and Postharvest Factors Affecting the Quality and Shelf Life of Harvested Tomatoes: A Mini Review. International Journal of Agronomy http:// dx.doi.org/10.1155/2015/478041.

Bai Y, Lindhout P. 2007. Domestication and Breeding of Tomatoes: What have We Gained and What Can We Gain in the Future? Annals of Botany 100, 1085-1094.

Bhatt K, Maheshwari DK. 2020. Zinc solubilizing bacteria (Bacillus megaterium) with multifarious plant growth promoting activities alleviates growth in Capsicum annuum L. 3 Biotechnology 10(39), 1-10.

Cakmak I, Kalayci M, Ekiz H, Braun HJ, Kilinc Y, Yilmaz A. 1999. Zinc deficiency as a practical problem in plant and human nutrition in Turkey: A NATO-science for stability project. Field Crops Research 60, 175-188.

Cakmak I, McLaughlin MJ, White P. 2016. Zinc for better crop production and human health. Plant Soil 411, 1-4.

Cakmak I. 2000. Tansley Review No. 111 Possible roles of zinc in protecting plant cells from damage by reactive oxygen species. New Phytologist 146, 185-205.

Das S, Green A. 2013. Importance of zinc in crops and human health. Journal of SAT Agricultural Research 11, 1-7.

Diaz-Pérez JC. 2019. Transpiration. In Yahia EM, Carrillo-Lόpez A. (Ed.), Postharvest Physiology and Biochemistry of Fruits and Vegetables pp, 157-173.

Dimkpa CO, Bindraban PS. 2016. Fortification of micronutrients for efficient agronomic production: a review, Agronomy for Sustainable Development 36, 7-27.

Djabou ASM, Qin Y, Thadee B, Figueiredo PG, Feifei A, Carvalho LJCB, Omokolo DN, Li K, Niemenak N, Chen S. 2018. Effects of Calcium and Magnesium Fertilization on Antioxidant Activities during Cassava Postharvest Physiological Deterioration. Crop Science 57, 1358-1392.

Ejaz M, Waqas R, Ayyubcm, Butt M, Shuaib-ur-Rehman, Bashir F, Manan A. 2012. Efficacy Of Zinc With Nitrogen As Foliar Feeding On Growth, Yield And Quality Of Tomato Grown Under Poly Tunnel. Pakistan Journal of Agricultural Sciences 49(3), 331-333.

FAOSTAT. 2014. Global tomato production in 2012. Rome, FAO.

Gharezi M, Joshi N, Sadeghian E. 2012. Effect of Post-Harvest Treatment on Stored Cherry Tomatoes. Journal of Nutrition and Food Sciences 2(8), 1-10.

Grzebisz W, Wrońska M, Diatta JB, Szczepaniak W. 2008. Effect of zinc foliar application at an early stage of maize growth on patterns of nutrients and dry matter accumulation by the canopy. Part I: Zinc uptake patterns and its redistribution among maize organs. Journal Elementol. 13(1), 17-28.

Haile A. 2018. Shelf life and quality of tomato (Lycopersicon esculentum Mill.) fruits as affected by different Packaging Materials. African Journal of Food Science 12(2), 21-27.

Haleema B, Rab A, Hussain SA. 2018. Effect of Calcium, Boron and Zinc Foliar Application on Growth and Fruit Production of Tomato. Sarhad Journal of Agriculture 34(1), 19-30.

Hussain S, Maqsood MA, Rahmatullah M. 2010. Increasing grain zinc and yield of wheat for the developing world: A Review 22(5), 326-339.

Karnwal A. 2020. Pseudomonas spp., a zinc-solubilizing vermicompost bacteria with plant growth-promoting activity moderates zinc biofortification in tomato. International Journal of Vegetable Science.

Kasso M, Bekele A. 2016. A Post-harvest loss and quality deterioration of horticultural crops in Dire Dawa Region, Ethiopia. Journal of the Saudi Society of Agricultural Sciences.

Khoshgoftarmanesh AH, Schulin R, Chaney RL, Daneshbakhsh B, Afyuni M. 2010. Micronutrient-efficient genotype for crop yield and nutritional quality in sustainable agriculture. A review. Agronomy for Sustainable Development 30, 83-107.

Luo T, Niu J, Guo X, Wu H, Han D, Shuai L, Wu Z. 2018. Preharvest zinc sulfate spray improves the storability of longan (Dimocarpus longan Lour.) fruits by protecting the cell wall components and antioxidants of pericarp. Journal of Science, Food and Agriculture 99, 1098-1107.

Mehinagic E, Royer G, Bertrand D, Symoneaux R, Laurens F, Jourjon F. 2003. Relationship between sensory analysis, penetrometry and visible-NIR spectroscopy of apples belonging to different cultivars. Food Quality and Preference 3(14), 473-484.

Melkamu M, Seyoum T, Woldetsadik K. 2008. Effects of pre- and post-harvest treatments on changes in sugar content of tomato. African Journal of Biotechnology 7(8), 1139-1144.

Montalvo D, Degryse F, da Silva RC, Baird R, McLaughlin MJ. 2016. Agronomic Effectiveness of Zinc Sources as Micronutrient Fertilizer. Advances in Agronomy 139, 212-267.

Mousavi SR, Galavi M, Rezaei M. 2013. Zinc (Zn) Importance for Crop Production-A Review. International journal of Agronomy and Plant Production 4(1), 64-68.

Muschitz A, Riou C, Mollet JC, Gloaguen V, Faugeron C. 2015. Modifications of cell wall pectin in tomato cell suspension in response to cadmium and zinc. Acta physiol plant 37(245), 1-11.

Nagata M, Yamashita I. 1992. Simple Method for Simultaneous Determination of Chlorophyll and carotenoids in Tomato Fruits. Nippon Shokulin Kogyo Gakkaishi 39(10), 925-928.

Navarre JP, Navarre C. 1986. Manuel d’œnologie. Edition J. B. Baillière, Paris; French.

Nielsen FH. 2012. History of zinc in agriculture. Advances in Nutrition 3(6), 783-789.

Pandey N, Pathak GC, Sharma CP. 2006. Zinc is critically required for pollen function and fertilization in lentil. Journal of Trace Elements in Medicine and Biology 20, 89-96.

Sadeghzadeh B. 2013. A review of zinc nutrition and plant breeding. Journal of Soil Science and Plant Nutrition 13(4), 905-927.

Sams CE. 1999. Preharvest factors affecting postharvest texture. Postharvest Biology and Technology 15, 249-254.

Sharma PN, Chatterjee C, Agarwala SC, Sharma CP. 1990. Zinc deficiency and pollen fertility in maize (Zea mays). Plant Soil 124, 221-225.

Swamy BPM, Rhaman MA, Inabangan-Asilo MA, Amparado A, Manito C, Chadha-Mohanty P, Reinke R, Slamet-Loedin IH. 2016. Advances in breeding for high grain Zinc in Rice. Rice 9(49), 1-16.

Vallee BL, Falchuk KH. 1993. The biochemical basis of zinc physiology. Physiological Reviews  73(1), 79-118.

White PJ, Broadley MR. 2011. Physiological limits to zinc biofortification of edible crop. Plant Nutrition 2, 1-11.