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Research Articles

Vol. 11 No. 3 (2024)

Effect of additional potassium and nickel on Hoagland solution combined with environmental condition for high antioxidants tomato production

DOI
https://doi.org/10.14719/pst.3129
Submitted
25 November 2023
Published
14-07-2024 — Updated on 16-07-2024
Versions

Abstract

Plant nutrient management and environmental conditions significantly affect plant growth, development and antioxidant contents. This research aims to identify the most effective plant nutrient management and environmental conditions for enhancing high-antioxidant tomato production. The Sweet Girl and Ranger tomato cultivars were evaluated for yield, fruit quality and antioxidant contents under 2 conditions: E1 (temperature ranging from 29 to 38 °C and relative humidity between 71–73 %) and E2 (temperature ranging from 32 to 36 °C and relative humidity between 75–80 %). These conditions were subjected to 6 different nutrient formulas, including Hoagland solution as control (H), H with 400 ppm potassium (H+K400), H with 300 ppm potassium (H+K300), H with 20 ppm nickel (H+Ni20), H with 10 ppm nickel (H+Ni10), H with 300 ppm potassium and 10 ppm nickel (H+K300+Ni10). The nutrient formulas did not yield significantly different results in terms of per-plant yields for the 2 cultivars. However, the H+K400 treatment showed notably higher lycopene contents, with increases of 1.2-fold for Ranger and 1.24-fold for Sweet Girl cultivars. Additionally, this treatment led to significant enhancements in total soluble solids (TSS) and ?-carotene content in the Sweet Girl cultivar, by 1.09-fold and 1.10-fold compared to the control respectively. Environment E2 provided more favorable conditions for achieving increased antioxidant tomato production, including improvements in fruit color index (red/yellow) by 1.11 to 1.18-fold, fruit firmness by 1.13 to 1.14-fold, TSS by 1.10 to 1.24-fold, lycopene by 1.98 to 2.45-fold and ?-carotene by 3.29 to 5.68-fold. Therefore, the H+K400 nutrient treatment and/or the E2 greenhouse conditions are recommended for producing high-antioxidant tomatoes, which have significant potential for fresh consumption or as materials for the nutraceutical or food industry.

References

  1. Straits Research. Tomato Market Size, Share & Trends Analysis Report By Product (Sauces, Paste, Canned Tomatoes, Ketchup, Juice, Others) and By Region (North America, Europe, APAC, Middle East and Africa, LATAM) Forecasts, 2023-2031. 2024; Available from: https://straitsresearch.com/report/tomato-market#:~:text=The%20Total%20Addressable%20Market%20(TAM,USD%20181.74%20Billion%20in%202022
  2. FAOSTAT. Crops and livestock products. 2024; Available from: https://www.fao.org/faostat/en/#data/QCL
  3. Ali MY, Sina AA, Khandker SS, Neesa L, Tanvir EM, Kabir A et al. Nutritional composition and bioactive compounds in tomatoes and their impact on human health and disease: A review. Foods. 2020;10:p.45. https://doi.org/10.3390/foods10010045
  4. Khan UM, Sevindik M, Zarrabi A, Nami M, Ozdemir B, Kaplan DN et al. Lycopene: Food sources, biological activities and human health benefits. Oxid Med Cell Longev. 2021;2021:2713511. https://doi.org/10.1155/2021/2713511
  5. Xu HL, Iraqi D, Gosselin A. Effect of ambient humidity on physiological activities and fruit yield and quality of greenhouse tomato. Acta Hortic. 2007;761:85-92. https://doi.org/10.17660/ActaHortic.2007.761.9
  6. Taber H, Perkins-Veazie P, Li S, White W, Rodermel S, Xu Y. Enhancement of tomato fruit lycopene by potassium is cultivar dependent. HortScience. 2008;43:159-65. https://doi.org/10.21273/HORTSCI.43.1.159
  7. Mitra G. Essential plant nutrients and recent concepts about their uptake. In: Naeem M, Ansari AA, Gill SS, editors. Essential plant nutrients: uptake, use efficiency and management. Cham: Springer International Publishing. 2017;p.3-36. https://doi.org/10.1007/978-3-319-58841-4_1
  8. Aina OE, Amoo SO, Mugivhisa LL, Olowoyo JO. Effect of organic and inorganic sources of nutrients on the bioactive compounds and antioxidant activity of tomato. Appl Ecol Environ Res. 2019;17:3681-94. https://doi.org/10.1080/01904167.2020.1862191
  9. Stávková J, Maroušek J. Novel sorbent shows promising financial results on P recovery from sludge water. Chemosphere. 2021;276:130097. https://doi.org/10.1016/j.chemosphere.2021.130097
  10. Rebouças TN, Porto JS, Jesus JS, Moraes MO. Effects of different nitrogen sources and levels on tomato fruit quality. Acta Hortic. 2015;1106:79-84. https://doi.org/10.17660/ActaHortic.2015.1106.13
  11. Hasanuzzaman M, Bhuyan MB, Nahar K, Hossain MS, Mahmud JA, Hossen MS et al. Potassium: A vital regulator of plant responses and tolerance to abiotic stresses. Agron. 2018;8:31. https://doi.org/10.3390/agronomy8030031
  12. Verma S, Sharma A, Kumar R, Kaur C, Arora A, Shah R, Nain L. Improvement of antioxidant and defense properties of Tomato (var. Pusa Rohini) by application of bioaugmented compost. Saudi J Biol Sci. 2015;22:256-64. https://doi.org/10.1016/j.sjbs.2014.11.003
  13. Fallah M, Delshad M, Sheikhi H. The effects of cluster pruning and the K: N ratio on greenhouse tomato yield and quality. Hortic Environ Biotechnol. 2021;62:691-700. https://doi.org/10.1007/s13580-021-00358-7
  14. Rehman F, Khan F, Irfan M, Dar M, Naushin F. Impact of nickel on the growth of Lycopersicon esculentum var. Navodaya. Int J Environ Sci. 2016;7:100-06.
  15. Kamboj N, Malik R, Dhanker P, Kumar A. Importance of nickel in crops. J Pharmacogn Phytochem. 2018;7:3470-75.
  16. Kumar P, Rouphael Y, Cardarelli M, Colla G. Effect of nickel and grafting combination on yield, fruit quality, antioxidative enzyme activities, lipid peroxidation and mineral composition of tomato. J Plant Nutr Soil Sci. 2015;178:848-60. https://doi.org/10.1002/jpln.201400651
  17. Palacios G, Gomez I, Carbonell-Barrachina A, Pedreño JN, Mataix J. Effect of nickel concentration on tomato plant nutrition and dry matter yield. J Plant Nutr. 1998;21:2179-91. https://doi.org/10.1080/01904169809365553
  18. Rajan K, Haris AA, Prasad LK. Efficacy of conventional, solid soluble and liquid fertilizers applied through drip-fertigation on tomato. Indian J Hortic. 2014;71:217-21.
  19. Gonroudobou GB, Nabeshima T, Nishizawa T, Watanabe M. Boron deficiency enhances microcracking in tomato fruit during summer. Chiang Mai J Sci. 2022;49:1040-49. https://doi.org/10.12982/CMJS.2022.072
  20. Shivashankara KS, Pavithra KC, Laxman RH, Sadashiva AT, Roy TK, Geetha GA. Changes in fruit quality and carotenoid profile in tomato (Solanum lycopersicon L.) genotypes under elevated temperature. J Hortic Sci. 2015;10:38-43. https://doi.org/10.24154/jhs.v10i1.151
  21. Abdelmageed AH, Gruda N, Geyer B. Effect of high temperature and heat shock on tomato (Lycopersicon esculentum Mill.) genotypes under controlled conditions. Conference on International Agricultural Research for Development. Göttingen, Germany. 2003 Oct 08-10; 34:1064-76. Available from: https://www.tropentag.de/2003/abstracts/full/50.pdf
  22. Ili? ZS, Milenkovi? L, Stanojevi? L, Cvetkovi? D, Fallik E. Effects of the modification of light intensity by color shade nets on yield and quality of tomato fruits. Sci Hortic. 2012;139:90-95. https://doi.org/10.1016/j.scienta.2012.03.009
  23. Leyva R, Constán-Aguilar C, Blasco B, Sánchez-Rodríguez E, Romero L, Soriano T, Ruíz JM. Effects of climatic control on tomato yield and nutritional quality in Mediterranean greenhouse. J Sci Food Agric. 2014;94:63-70. https://doi.org/10.1002/jsfa.6191
  24. Hoagland DR, Arnon DI. The water-culture method for growing plants without soil. Circ - Calif Agric Exp Stn. 1950;347:1-32. https://doi.org/10.1007/s12298-021-01032-z
  25. Ulrichs C, Fischer G, Büttner C, Mewis I. Comparison of lycopene, ?-carotene and phenolic contents of tomato using conventional and ecological horticultural practices and arbuscular mycorrhizal fungi (AMF). Agron Colomb. 2008;26:40-46.
  26. Sadler G, Davis J, Dezman D. Rapid extraction of lycopene and ?-carotene from reconstituted tomato paste and pink grapefruit homogenates. J Food Sci. 1990;55:1460-61. https://doi.org/10.1111/j.1365-2621.1990.tb03958.x
  27. Hasan H, Mohamad A, Aldaaiek G. Extraction and determination the of beta carotene content in carrots and tomato samples collected from some markets at El-Beida city, Libya. EPH-Int J Appl Sci. 2019;1:105-10. https://doi.org/10.53555/ephas.v1i1.1327
  28. Nagata M, Yamashita I. Simple method for simultaneous determination of chlorophyll and carotenoids in tomato fruit. Nippon Shokuhin Kogyo Gakkaishi. 1992;39:925-28. https://doi.org/10.3136/nskkk1962.39.925
  29. Ibrahim MH, Jaafar HZ, Karimi E, Ghasemzadeh A. Primary, secondary metabolites, photosynthetic capacity and antioxidant activity of the Malaysian herb Kacip Fatimah (Labisia pumila Benth) exposed to potassium fertilization under greenhouse conditions. Int J Mol Sci. 2012;13:15321-42. https://doi.org/10.3390/ijms131115321
  30. Leal FR, Cecílio Filho AB, Mendoza-Cortez JW, Barbosa JC. Nitrogen and potassium concentration in the nutrients solution for the production of tomato (Solanum lycopersicum). Afr J Agric Res. 2015;10:1823-31. https://doi.org/10.5897/AJAR2014.9224
  31. Iqbal M, Niamatullah M, Yousaf I, Munir M, Khan MZ. Effect of nitrogen and potassium on growth, economical yield and yield components of tomato. Sarhad J Agric. 2011;27:545-48.
  32. Kasinath BL, Ganeshmurthy AN, Senthivel T, Kumar MS, Manjunath BL, Sadashiva AT. Studies on interaction effects of combined application of magnesium and potassium on soil properties and yield of tomato (Solanum lycopersicum L.) in an Alfisol. Int J Curr Microbiol Appl Sci. 2017;6:2775-84. https://doi.org/10.20546/ijcmas.2017.609.342
  33. Fanasca S, Rouphael Y, Cardarelli M, Colla G. The influence of K: Ca: Mg: Na ratio and total concentration on yield and fruit quality of soilless-grown tomatoes: A modelling approach. Acta Hortic. 2005;697:345-50. https://doi.org/10.17660/ActaHortic.2005.697.43
  34. Hassan MU, Chattha MU, Khan I, Chattha MB, Aamer M, Nawaz M et al. Nickel toxicity in plants: Reasons, toxic effects, tolerance mechanisms and remediation possibilities?A review. Environ Sci Pollut Res. 2019;26:12673-88. https://doi.org/10.1007/s11356-019-04892-x
  35. Yusuf M, Fariduddin Q, Hayat S, Ahmad A. Nickel: An overview of uptake, essentiality and toxicity in plants. Bull Environ Contam Toxicol. 2011;86:1-17. https://doi.org/10.1007/s00128-010-0171-1
  36. Gad N, El-Sherif MH, El-Gereedly NH. Influence of nickel on some physiological aspects of tomato plants. Aust J Basic Appl Sci. 2007;1:286-93.
  37. Panthee DR, Kressin JP, Piotrowski A. Heritability of flower number and fruit set under heat stress in tomato. HortScience. 2018;53:1294-99. https://doi.org/10.21273/HORTSCI13317-18
  38. Angmo P, Phuntsog N, Namgail D, Chaurasia OP, Stobdan T. Effect of shading and high temperature amplitude in greenhouse on growth, photosynthesis, yield and phenolic contents of tomato (Lycopersicum esculentum Mill.). Physiol Mol Biol Plants. 2021;27:1539-46. https://doi.org/10.1007/s12298-021-01032-z
  39. Shamshiri RR, Jones JW, Thorp KR, Ahmad D, Man HC, Taheri S. Review of optimum temperature, humidity and vapour pressure deficit for microclimate evaluation and control in greenhouse cultivation of tomato: A review. Int Agrophys. 2018;32(2):287-302. https://doi.org/10.1515/intag-2017-0005
  40. Balcerowicz M. Tomatoes turn pale in the heat: High temperature reduces red and green pigmentation via phytochromes. Plant Physiol. 2020;183:810-11. https://doi.org/10.1104/pp.20.00662
  41. Liu F, Cohen Y, Fuchs M, Plaut Z, Grava A. The effect of vapor pressure deficit on leaf area and water transport in flower stems of soil-less culture rose. Agric Water Manag. 2006;81:216-24. https://doi.org/10.1016/j.agwat.2005.03.005
  42. Maroušek J, Kondo Y, Ueno M, Kawamitsu Y. Commercial-scale utilization of greenhouse residues. Biotechnol Appl Biochem. 2013;60:253-58. https://doi.org/10.1002/bab.1055
  43. Maroušek J, Gavurová B. Recovering phosphorous from biogas fermentation residues indicates promising economic results. Chemosphere. 2022;291:133008. https://doi.org/10.1016/j.chemosphere.2021.133008
  44. Maroušek J, Strunecký O, Stehel V. Biochar farming: Defining economically perspective applications. Clean Technol Environ Policy. 2019;21:1389-95. https://doi.org/10.1007/s10098-019-01728-7
  45. Stylianou M, Laifi T, Bennici S, Dutournie P, Limousy L, Agapiou A et al. Tomato waste biochar in the framework of circular economy. Sci Total Environ. 2023;871:161959. https://doi.org/10.1016/j.scitotenv.2023.161959
  46. Maroušek J, Maroušková A, Periakaruppan R, Gokul GM, Anbukumaran A, Bohatá A et al. Silica nanoparticles from coir pith synthesized by acidic sol-gel method improve germination economics. Polymers. 2022;14:266. https://doi.org/10.3390/polym14020266

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