Calcium, Potassium, and Magnesium Affect the Nutritional Value of Tomato Grafted Fruits Grown in a Nutrient Film Technique System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Vegetal Material Used and Growing Conditions
2.2. Graft
2.3. Nutrient Film Technique (NFT)
2.4. Transplant to the NFT System
2.5. Treatments Application
2.6. Analysis of Crop Parameters
2.7. Mineral Content of the Fruit
2.8. Statistic Analysis
3. Results
3.1. Crop Parameters for Grafts
3.2. Crop Parameters for Doses
3.3. Crop Parameters for Interactions
3.4. Mineral Profile of the Fruit of Grafted Plants
3.5. Results of the Mineral Profile of the Fruit for the Different Doses
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Méndez-Carmona, J.Y.; Ramírez-Guzmán, N.; Sandoval-Cortes, J.; Ascacio-Valdés, J.A.; Boone-Villa, V.D.; Govea-Salas, M.; Aguilar, C.N. Valorization of Tomato Fruit Processing Residues. In Agricultural Waste: Environmental Impact, Useful Metabolites and Energy Production; Ramawat, K., Mérillon, J.M., Arora, J., Eds.; Sustainable Development and Biodiversity; Springer: Singapore, 2023; Volume 31, pp. 215–243. [Google Scholar] [CrossRef]
- González-García, Y.; López-Vargas, E.R.; Pérez-Álvarez, M.; Cadenas-Pliego, G.; Benavides-Mendoza, A.; Valdés-Reyna, J.; Pérez-Labrada, F.; Juárez-Maldonado, A. Seed priming with carbon nanomaterials improves the bioactive compounds of tomato plants under saline stress. Plants 2022, 11, 1984. [Google Scholar] [CrossRef] [PubMed]
- Flores, I.R.; Vásquez-Murrieta, M.S.; Franco-Hernández, M.O.; Márquez-Herrera, C.E.; Ponce-Mendoza, A.; del Socorro López-Cortéz, M. Bioactive compounds in tomato (Solanum lycopersicum) variety saladette and their relationship with soil mineral content. Food Chem. 2021, 344, 128608. [Google Scholar] [CrossRef] [PubMed]
- Colla, G.; Roupahel, Y.; Cardarelli, M.; Rea, E. Effect of salinity on yield, fruit quality, leaf gas exchange, and mineral composition of grafted watermelon plants. HortScience 2006, 41, 622–627. [Google Scholar] [CrossRef]
- Hernández-González, Z.; Sahagún-Castellanos, J.; Espinosa-Robles, P.; Colinas-León, M.T.; Rodríguez-Pérez, J.E. Efecto del patrón en el rendimiento y tamaño de fruto en pepino injertado. Rev. Fitotec. Mex. 2014, 37, 41. [Google Scholar] [CrossRef]
- Schwarz, D.; Rouphael, Y.; Colla, G.; Venema, J.H. Grafting as a tool to improve tolerance of vegetables to abiotic stresses: Thermal stress, water stress and organic pollutants. Sci. Hortic. 2010, 127, 162–171. [Google Scholar] [CrossRef]
- Peralta-Manjarrez, R.M.; Benavides-mendoza, A.; Ramírez-Godina, F. Micromorphology of cucumber obtained by grafting and developed into two fertilization systems. Rev. Mex. Cienc. Agrícolas 2016, 15, 118–123. [Google Scholar]
- Velasco-Alvarado, M.D.J.; Castro-Brindis, R.; Castillo-González, A.M.; Avitia-García, E.; Sahagún-Castellanos, J.; Lobato-Ortiz, R. Composición mineral, biomasa y rendimiento en tomate (Solanum lycopersicum L.) injertado. Interciencia 2016, 41, 703–708. [Google Scholar]
- Vasileva, V.H.; Dinev, N.S. Mineral content and quality parameters of tomato fruits as affected by different potassium ferti-lization treatments and cultivar specifics. Indian J. Agric. Res. 2020, 55, 169–174. [Google Scholar] [CrossRef]
- Ding, X.; He, L.; Li, R.; Qian, T.; Zhang, H.; Jin, H.; Cui, J.; Wang, H.; Zhou, Q.; Zou, J.; et al. Zero discharge of nutrient solution to the environment in a soilless greenhouse cucumber production systems. Plants 2022, 11, 2252. [Google Scholar] [CrossRef]
- Mazumder, M.N.N.; Misran, A.; Ding, P.; Wahab, P.E.M.; Mohamad, A. Preharvest foliar spray of calcium chloride on growth, yield, quality, and shelf life extension of different lowland tomato varieties in Malaysia. Horticulturae 2021, 7, 466. [Google Scholar] [CrossRef]
- He, H.; Jin, X.; Ma, H.; Deng, Y.; Huang, J.; Yin, L. Changes of plant biomass partitioning, tissue nutrients and carbohydrates status in magnesium-deficient banana seedlings and remedy potential by foliar application of magnesium. Sci. Hortic. 2020, 268, 109377. [Google Scholar] [CrossRef]
- Ahmed, M.Z.; Hussain, T.; Gulzar, S.; Adnan, M.Y.; Khan, M.A. Calcium improves the leaf physiology of salt treated Limonium stocksii: A floriculture crop. Sci. Hortic. 2021, 285, 110190. [Google Scholar] [CrossRef]
- Larbi, A.; Kchaou, H.; Gaaliche, B.; Gargouri, K.; Boulal, H.; Morales, F. Supplementary potassium and calcium improves salt tolerance in olive plants. Sci. Hortic. 2020, 260, 108912. [Google Scholar] [CrossRef]
- Chen, Z.C.; Peng, W.T.; Li, J.; Liao, H. Functional dissection and transport mechanism of magnesium in plants. Semin. Cell Dev. Biol. 2018, 74, 142–152. [Google Scholar] [CrossRef] [PubMed]
- Nawaz, M.A.; Imtiaz, M.; Kong, Q.; Cheng, F.; Ahmed, W.; Huang, Y.; Bie, Z. Grafting: A Technique to Modify Ion Accumulation in Horticultural Crops. Front. Plant Sci. 2016, 7, 1457. [Google Scholar] [CrossRef] [PubMed]
- Treviño López, E.A.; Sandoval-Rangel, A.; Benavides Mendoza, A.; Benavides Mendoza, A.; Ortega Ortiz, H.; Cadenas Pliego, G.; Cabrera de la Fuente, M. Nanopartículas de selenio absorbidas en hidrogeles de quitosán-polivinil alcohol en la producción de pepino injertado. Rev. Mex. Cienc. Agrícolas 2021, 26, 159–169. [Google Scholar] [CrossRef]
- García-Ávila CD, J.; Castillo-González, A.M.; Avitia-García, E.; Colinas-León MT, B.; Trejo-Téllez, L.I.; Vargas-Madriz, H. Magnesio y su relación con la calidad de Lilium cv. Casablanca. Rev. Mex. Cienc. Agrícolas 2017, 6, 265–276. [Google Scholar] [CrossRef]
- Sánchez, E.; Torres, A.; Flores, M.; Córdova, F.; Preciado, P.; Quiroz, C. Use of rootstocks on the yield, fruit quality and resistance to Phytophthora capsici Leonian in bell peppers. Nova Sci. 2015, 7, 227–244. [Google Scholar]
- Grimaldo Juárez, O.; Suárez Hernández, Á.M.; Vargas-Hernández, E.A.; Carrazco Peña, L.D.; Morales Zamorano, L.A. Concentración de nutrientes en hoja y calidad de pepino en plantas injertadas bajo condiciones salinas. Idesia 2020, 38, 41–48. [Google Scholar] [CrossRef]
- An, S.; Bae, J.H.; Kim, H.C.; Kwack, Y. Production of grafted vegetable seedlings in the republic of korea: Achievements, challenges and perspectives. Hortic. Sci. Technol. 2021, 39, 547–559. [Google Scholar] [CrossRef]
- Pérez-Grajales, M.; Pérez-Reyes, T.Q.; Cruz-Álvarez, Ó.; Castro-Brindis, R.; Martínez-Damián, M.T. Compatibilidad del portainjerto CM-334 y su respuesta sobre el rendimiento, calidad fisicoquímica y contenido de capsaicinoides en frutos de Capsicum pubescens. Inf. Técnica Económica Agrar. Rev. 2021, 117, 332–346. [Google Scholar] [CrossRef]
- Rodríguez-Mendoza, M.N.; Baca-Castillo, G.; García-Cué, J.L.; Urrieta-Velázquez, J.A. Aclareo de frutos y aspersiones foliares de calcio y miel de abeja sobre la calidad de tomate tipo costilla. Rev. Fitotec. Meicana 2015, 38, 197. [Google Scholar] [CrossRef]
Treatment | PH | NL | NF | PD | ED | FW | |
---|---|---|---|---|---|---|---|
Factor 1: Graft | Grafted | 179.68 a | 25.04 a | 32.72 a | 87.61 a | 55.51 a | 158.1 a |
Ungrafted | 157.60 b | 22.60 b | 29.76 b | 81.61 b | 48.93 b | 134.22 b | |
Factor 2: Fertilizer dose Ca-K-Mg | 0-0-0 | 167.50 a | 23.80 a | 31.50 a | 84.56 a | 51.79 b | 139.54 b |
9-0-0 | 158.50 a | 23.90 a | 31.90 a | 85.15 a | 53.37 a | 146.95 a | |
0-12-0 | 160.60 a | 23.70 a | 32.00 a | 84.15 a | 52.08 b | 148.51 a | |
0-0-9 | 169.70 a | 23.90 a | 31.40 a | 84.29 a | 51.98 b | 148.30 a | |
9-12-9 | 168.9 a | 23.80 a | 31.90 a | 84.66 a | 51.88 b | 147.28 a | |
Interaction | |||||||
Grafted | 0-0-0 | 178.00 a | 22.60 b | 33.60 a | 87.00 b | 54.72 b | 152.94 b |
Grafted | 9-0-0 | 179.80 a | 25.00 a | 33.80 a | 89.08 a | 57.98 a | 160.10 a |
Grafted | 0-12-0 | 179.80 a | 24.80 a | 33.60 a | 86.44 b | 55.28 b | 159.60 a |
Grafted | 0-0-9 | 180.00 a | 25.40 a | 33.40 a | 87.16 b | 55.20 b | 159.58 a |
Grafted | 9-12-9 | 180.80 a | 25.00 a | 34.20 a | 87.88 a | 54.38 b | 158.48 a |
Ungrafted | 0-0-0 | 157.00 b | 22.60 b | 29.40 b | 82.12 c | 48.86 c | 126.74 e |
Ungrafted | 9-0-0 | 157.20 b | 22.80 b | 30.00 b | 81.22 c | 48.76 c | 133.80 d |
Ungrafted | 0-12-0 | 157.40 b | 22.60 b | 30.40 b | 81.86 c | 48.88 c | 137.54 c |
Ungrafted | 0-0-9 | 159.40 b | 22.40 b | 29.40 b | 81.42 c | 48.78 c | 136.92 c |
Ungrafted | 9-12-9 | 157.00 b | 22.60 b | 29.60 b | 81.44 c | 49.38 c | 136.08 c |
CV (%) | 1.88 | 4.18 | 5.32 | 1.76 | 2.6 | 1.5 |
Treatment | N | P | K | Ca | Mg | Fe | Cu | Zn | Mn | |
---|---|---|---|---|---|---|---|---|---|---|
% | mg/kg | |||||||||
Factor 1: Graft | Grafted | 2.43 a | 352.00 a | 3359.00 a | 166.07 a | 123.60 a | 49.15 a | 1.97 a | 6.92 a | 4.50 a |
Ungrafted | 2.32 b | 348.00 b | 2937.00 b | 151.20 b | 104.30 b | 29.85 b | 1.85 b | 6.45 b | 4.24 b | |
Significance | 0.0187 | 0.0001 | 0.00001 | 0.0001 | 0.0001 | 0.0001 | 0.0001 | 0.0001 | 0.0001 | |
Factor 2: Fertilizer dose Ca-K-Mg | 0-0-0 | 2.23 c | 345.00 c | 3092.00 a | 155.37 b | 102.80 b | 34.10 c | 1.84 c | 6.41 b | 4.20 c |
9-0-0 | 2.34 b | 345.00 c | 3216.00 a | 155.55 b | 105.10 b | 34.30 c | 1.90 b | 6.64 b | 4.38 b | |
0-12-0 | 2.48 a | 345.00 c | 3113.00 a | 153.00 b | 103.80 b | 34.17 c | 1.86 b | 6.52 b | 4.29 b | |
0-0-9 | 2.30 c | 352.00 b | 3120.00 a | 164.17 a | 129.10 a | 35.19 b | 1.93 a | 6.42 b | 4.27 b | |
9-12-9 | 2.52 a | 359.00 a | 3198.00 a | 164.29 a | 129.00 a | 59.74 a | 1.99 a | 7.46 a | 4.73 a | |
Significance | 0.0019 | 0.0001 | 0.3615 | 0.0001 | 0.0001 | 0.0001 | 0.041 | 0.0001 | 0.0001 | |
Interaction | ||||||||||
Grafted | 0-0-0 | 2.19 c | 348.00 b | 3306.00 a | 158.61 b | 103.60 b | 35.45 c | 1.86 c | 6.56 b | 4.21 c |
Grafted | 9-0-0 | 2.44 b | 347.00 b | 3446.00 a | 159.26 b | 104.50 b | 35.64 c | 1.93 b | 6.76 b | 4.41 b |
Grafted | 0-12-0 | 2.55 a | 348.00 b | 3330.00 a | 156.26 b | 103.60 b | 36.46 c | 1.89 c | 6.44 b | 4.25 b |
Grafted | 0-0-9 | 2.44 b | 358.00 a | 3311.00 a | 178.09 a | 154.00 a | 40.66 b | 2.02 a | 6.51 b | 4.34 b |
Grafted | 9-12-9 | 2.55 a | 360.00 a | 3402.00 a | 178.15 a | 152.50 a | 89.52 a | 2.13 a | 8.34 a | 5.29 a |
Ungrafted | 0-0-0 | 2.27 b | 343.00 c | 2878.00 b | 152.14 c | 102.20 b | 29.74 d | 1.83 c | 6.25 c | 4.18 c |
Ungrafted | 9-0-0 | 2.24 b | 344.00 b | 2987.00 b | 151.84 c | 105.70 b | 29.96 d | 1.88 c | 6.52 b | 4.34 b |
Ungrafted | 0-12-0 | 2.40 a | 347.00 b | 2897.00 b | 151.35 c | 104.00 b | 29.85 d | 1.83 c | 6.44 b | 4.32 b |
Ungrafted | 0-0-9 | 2.17 c | 346.00 b | 2929.00 b | 150.25 c | 104.20 b | 29.72 d | 1.84 c | 6.33 c | 4.21 c |
Ungrafted | 9-12-9 | 2.49 a | 358.00 a | 2995.00 b | 150.42 c | 105.50 b | 29.96 d | 1.85 c | 6.57 b | 4.16 c |
Significance | 0.1547 | 0.0013 | 0.9886 | 0.0001 | 0.0001 | 0.0001 | 0.0129 | 0.0001 | 0.0001 | |
CV (%) | 6.17 | 0.8 | 4.7 | 1.56 | 4.1 | 0.66 | 4.13 | 3.78 | 3.1 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Peralta Manjarrez, R.M.; Delgado Martínez, R.; Benavides Mendoza, A.; Juárez Maldonado, A.; Cabrera De la Fuente, M. Calcium, Potassium, and Magnesium Affect the Nutritional Value of Tomato Grafted Fruits Grown in a Nutrient Film Technique System. Agriculture 2023, 13, 2189. https://doi.org/10.3390/agriculture13122189
Peralta Manjarrez RM, Delgado Martínez R, Benavides Mendoza A, Juárez Maldonado A, Cabrera De la Fuente M. Calcium, Potassium, and Magnesium Affect the Nutritional Value of Tomato Grafted Fruits Grown in a Nutrient Film Technique System. Agriculture. 2023; 13(12):2189. https://doi.org/10.3390/agriculture13122189
Chicago/Turabian StylePeralta Manjarrez, Rocío Maricela, Rafael Delgado Martínez, Adalberto Benavides Mendoza, Antonio Juárez Maldonado, and Marcelino Cabrera De la Fuente. 2023. "Calcium, Potassium, and Magnesium Affect the Nutritional Value of Tomato Grafted Fruits Grown in a Nutrient Film Technique System" Agriculture 13, no. 12: 2189. https://doi.org/10.3390/agriculture13122189
APA StylePeralta Manjarrez, R. M., Delgado Martínez, R., Benavides Mendoza, A., Juárez Maldonado, A., & Cabrera De la Fuente, M. (2023). Calcium, Potassium, and Magnesium Affect the Nutritional Value of Tomato Grafted Fruits Grown in a Nutrient Film Technique System. Agriculture, 13(12), 2189. https://doi.org/10.3390/agriculture13122189