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Yield, Quality and Nutrient Content of Tomato in Response to Soil Drenching of Silicic Acid

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Abstract

Although the role of silicon (Si) in enhancing crop performance has been proven in many field crops including rice, wheat, sugarcane and soybean, its influence on Si non-accumulator crops like tomato is very much limited. In order to evaluate the effect of silicic acid on tomato, a field experiment was conducted during summer 2018. The experiment consisted of with and without silicic acid treatments to test the efficacy of silicic acid soil drenching on yield, quality and nutrient content of tomato. The results revealed that soil drenching of silicic acid @ 4 ml L−1 at 15, 30 and 45 days after planting significantly increased the yield attributes, viz. number of fruits per plant (41.42 ± 2.77), fruit yield per plant (2.34 ± 0.05 kg) and fruit yield per hectare (86.66 ± 1.74 t) over control. Silicic acid soil drenching significantly enhanced the quality parameters in tomato. The total soluble solids (TSS) and lycopene content of tomato significantly improved with drenching of silicic acid @ 4 ml L−1 over control from 3.55 ± 0.23 to 4.23 ± 0.21 Brix and 4.65 ± 0.66 to 6.34 ± 0.22 mg 100 g−1 fruit, respectively, but significantly decreased the titratable acidity (0.45 ± 0.08 per cent) of tomato over control (0.63 ± 0.03 per cent) and enhanced major and micronutrients contents apart from Si. Thus, soil drenching of silicic acid @ 4 ml L−1 has found to be a novel way to enhance yield, quality and nutrient content of tomato.

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References

  1. Abro SA, Qureshi R, Soomro FM, Mirbahar AA, Jakhar GS (2009) Effects of silicon levels on growth and yield of wheat in silty loam soil. Pak J Bot 41(3):1385–1390

    CAS  Google Scholar 

  2. Ahmad A, Afzal M, Ahmad AUH, Tahir M (2013) Effect of foliar application of silicon on yield and quality of rice (Oryza sativa L.). Cienc Agrotec 3(155):21–28

    Google Scholar 

  3. Al-aghabary K, Zhu Z, Shi Q (2005) Influence of silicon supply on chlorophyll content, chlorophyll fluorescence, and antioxidative enzyme activities in tomato plants under salt stress. J Plant Nutr 27(12):2101–2115

    Google Scholar 

  4. Ministry of agriculture cooperation and farmer welfare (2018) Government of India, New Delhi. https://agricoop.gov.in/sites/default/files/DATA-2018-19%20%283rd%20Adv.Est_.%29%20-%20Website.pdf Accessed 17 June 2020

  5. AOAC (1970) Methods of analysis. In: Association of official analytical chemists, 9th Ed. Association of Official Analytical Chemists, Washington, DC, p 789.

  6. Ashraf M, Rahmatulla H, Afzal M, Ahmed R, Mujeeb F, Sarwar A, Ali L (2010) Alleviation of detrimental effects of NaCl by silicon nutrition in salt-sensitive and salt-tolerant genotypes of sugarcane (Saccharum officinarum L.). Plant Soil 326:381–391

    CAS  Google Scholar 

  7. Baruah TC, Barthakur HP (1997) A text book of soil analysis. Vikas Publishing House Pvt Ltd., New Delhi, pp 142–190

    Google Scholar 

  8. Carneiro JDO, Souza MAD, Rodrigues YDM, Mapeli AM (2015) Efeito da temperatura e do uso de embalagem na conservação pós-colheita de frutos de cagaita (Eugenia dysenterica DC.). Rev Bras Frutic 37(3):568–577

    Google Scholar 

  9. Chesnin L, Yein CH (1950) Turbidometric determination of available sulphates. Soil Sci Soc Am J 15:149–151

    Google Scholar 

  10. Cliff MA, Li JB, Toivonena PMA, Ehret DL (2012) Effects of nutrient solution electrical conductivity on the compositional and sensory characteristics of greenhouse tomato fruit. Postharvest Biol Tec 74:132–140

    CAS  Google Scholar 

  11. Crusciol CAC, Soratto RS, Castro GSA, Costa CHM, Neto JF (2013) Foliar application of stabilized silicic acid on soybean, common bean, and peanut. Rev Ciênc Agron 44(2):404–410

    Google Scholar 

  12. Figeuiredo FC, Botrel PP, Teixeiral CP, Petrazzini LL, Locarno M, Carvalho JG (2010) Pulverização foliar e fertirrigação com silício nos atributos físico-químicos de qualidade e índices de coloração do morango. Ciênc Agrotec 34(5):1306–1311

    Google Scholar 

  13. Fiori MP (2006) Behavior of tomato cultivars as to the use of steel slopes in the environment. Doctoral Thesis, University of Marília, Unimar.

  14. Gonzalo MJ, Lucena JJ, Hernández-Apaolaza L (2013) Effect of silicon addition on soybean (Glycine max) and cucumber (Cucumis sativus) plants grown under iron deficiency. Plant Physiol Biochem 70:455–461

    PubMed  CAS  Google Scholar 

  15. Guével MH, Menzies JG, Bélanger RR (2007) Effect of root and foliar applications of soluble silicon on powdery mildew control and growth of wheat plants. Eur J Plant Pathol 119:429–436

    Google Scholar 

  16. Gunes A, Inal A, Bagci EG, Pilbeam DJ (2007) Silicon mediated changes of some physiological and enzymatic parameters symptomatic for oxidative stress in spinach and tomato grown in sodic B toxic soil. Plant Soil 290:103–114

    CAS  Google Scholar 

  17. Haroon M, Amruta SB, Prakash NB, Rangaswamy KT, Lingaiah HB (2020) Effect of silicon on incidence and severity of purple blotch disease (Alternaria porri (Ellis) Cif.) in onion (Allium cepa L.). Int J Curr Microbiol App Sci 9(2):429–439

    CAS  Google Scholar 

  18. Haysom MBC, Chapman LS (1975) Some aspects of the calcium silicate trials at Mackay. Proc Qld Soc Sugar Cane Technol 42:117–212

    CAS  Google Scholar 

  19. He LY, Wang SW (1999) Effect of Si fertilization on wheat. Soil Fertil 3:8–11

    Google Scholar 

  20. Hunt JW, Dean AP, Webster RE, Johnson GN, Ennos AR (2008) A novel mechanism by which silica defends grasses against herbivory. Ann Bot 102:653–656

    PubMed  PubMed Central  CAS  Google Scholar 

  21. Jackson ML (1973) Soil chemical analysis. New Delhi, Prentice Hall of India Pvt Ltd, p 498

    Google Scholar 

  22. Jarosz Z (2014) The effect of silicon application and type of medium on yielding and chemical composition of tomato. Acta Sci Pol Hortoru 13(4):171–183

    Google Scholar 

  23. Jeer M, Yele Y, Sharma KC, Prakash NB (2020) Exogenous application of different silicon sources and potassium reduces pink stem borer damage and improves photosynthesis, yield and related parameters in wheat. Silicon. https://doi.org/10.1007/s12633-020-00481-7

    Article  Google Scholar 

  24. Kamenidou S, Cavins TJ, Marek S (2010) Silicon supplements affect floricultural quality traits and elemental nutrient concentrations of greenhouse produced gerbera. Sci Hort 123(3):390–394

    CAS  Google Scholar 

  25. Kazi SS, Syed I, Joshi KG (2012) Effect of multi-micronutrient on yield and quality attributes of the sweet orange. Afr J Agric Res 7(29):4118–4123

    Google Scholar 

  26. Korndorfer GH, Snyder GH, Ulloa M, Datnoff LE (2001) Calibration of soil and plant silicon for rice production. J Plant Nutr 24:1071–1084

    Google Scholar 

  27. Li CH, Chu TD, Liu XB, Yang Q (1999) Silicon nutrition effects and its study and application development in China. In: Proceedings of symposium of plant nutrition, Shaanxi Science and Technology Press, p 329–333.

  28. Liang Y, Zhang W, Chen Q, Ding R (2005) Effect of silicon on H+ ATPase and H+: ATPase activity, fatty acid composition and fluidity of tonoplast vesicles from roots of salt-stressed barley (Hordeum vulgare L.). Environ Exp Bot 53:29–37

    CAS  Google Scholar 

  29. Lindsay WL, Norvell WA (1978) Development of a DTPA soil test for zinc, iron, manganese and copper. Soil Sci Soc Am J 42:421–428

    CAS  Google Scholar 

  30. Liu C, Li F, Luo C, Liu X, Wang S, Liu T, Li X (2009) Foliar application of two silica sols reduced cadmium accumulation in rice grains. J Hazard Mater 161:1466–1472

    PubMed  CAS  Google Scholar 

  31. Lopes UP, Zambolim L, Neto PNS, Souza AF, Capucho AS, Rodrigues FA (2013) Effect of foliar application of potassium silicate on the progress of coffee leaf rust. Trop Plant Pathol 38(6):547–551

    Google Scholar 

  32. Ma JF, Miyake Y, Takahashi E (2002) Silicon as a beneficial element for crop plants. In: Datnoff LE, Snyder GH, Korndorfer GH (eds) Silicon in agriculture. Elsevier, Amsterdam, pp 17–39

    Google Scholar 

  33. Ma JF, Takahashi E (2002) Soil, fertilizer, and plant silicon research in Japan. Elsevier, Amsterdam, p 281

    Google Scholar 

  34. Ma JF, Takahashi E (1990) Effect of silicon on the growth and phosphorus uptake of rice. Plant Soil 126:115–119

    CAS  Google Scholar 

  35. Ma JF, Takahashi E (1989) Release of silicon from rice straw under flooded conditions. Soil Sci Plant Nutr 35(4):663–667

    Google Scholar 

  36. Ma JF, Yamaji N (2006) Si uptake and accumulation in higher plants. Trends Plant Sci 11:392–397

    PubMed  CAS  Google Scholar 

  37. Majidi H, Minaei S, Almasi M, Mostofi Y (2011) Total soluble solids, titratable acidity and repining index of tomato in various storage conditions. Aust J Basic Appl Sci 5(12):1723–1726

    CAS  Google Scholar 

  38. Marodin JC, Resende JTV, Morales RGF, Silva MLS, Galvão AG, Zanin DS (2014) Yield of tomato fruits in relation to silicon sources and rates. Hortic Bras 32:220–224

    Google Scholar 

  39. Mitani N, Ma JF (2005) Uptake system of silicon in different plant species. J Exp Bot 56(414):1255–1261

    PubMed  CAS  Google Scholar 

  40. Mitani N, Yamaji N, Ma JF (2008) Characterization of substrate specificity of a rice silicon transporter, Lsi1. Eu J Physiol 456(4):679–686

    CAS  Google Scholar 

  41. Nagula S, Joseph B, Gladis R (2016) Silicon nutrition to rice (Oryza sativa L.) alleviates Fe, Mn and Al toxicity in laterite derived rice soils. J Indian Soc Soil Sci 64(3):297–301

    Google Scholar 

  42. Narayanaswamy C, Prakash NB (2009) Calibration and categorization of plant available silicon in rice soils of South India. J Plant Nutr 32(8):1237–1254

    CAS  Google Scholar 

  43. Narayanaswamy C, Prakash NB (2010) Evaluation of selected extractants for plant-available silicon in rice soils of Southern India. Commun Soil Sci Plant Anal 41:977–989

    CAS  Google Scholar 

  44. Patil VK, Yadlod SS, Tambe TB, Narsude PB (2010) Effect of foliar application of micronutrients on flowering and fruit set of tomato (Lycopersicon esculentum Mill.) cv PHULE RAJA. Int J Agr Sci 6(1):164–166

    Google Scholar 

  45. Piper CS (1966) Soil and plant analysis. Hans Publishers, Bombay

    Google Scholar 

  46. Prakash NB, Chandrashekar N, Mahendra C, Patil SU, Thippeshappa GN, Laane HM (2011) Effect of foliar spray of soluble silicic acid on growth and yield parameters of wetland rice in hilly and coastal zone soils of Karnataka. South India J Plant Nutr 34(12):1883–1893

    CAS  Google Scholar 

  47. Ranganna S (1977) Handbook of analysis and quality control for fruit and vegetable products. Tata McGraw-Hill, New Delhi, p 1112

    Google Scholar 

  48. Rodrigues FA, Duarte HSS, Domiciano GP, Souza CA, Korndorfer GH, Zambolim L (2009) Foliar application of potassium silicate reduces the intensity of soybean rust. Aust Plant Pathol 38:366–372

    CAS  Google Scholar 

  49. Romero-Aranda MR, Jurado O, Cuartero J (2006) Silicon alleviates the deleterious salt effect on tomato plant growth by improving plant water status. J Plant Physiol 163(8):847–855

    PubMed  CAS  Google Scholar 

  50. Sabir A, Sabir FK, Kara Z (2011) Effects of modified atmosphere packing and honey dip treatments on quality maintenance of minimally processed grape cv. Razaki (V. vinifera L.) during cold storage. J Food Sci Technol 48(3):312–318

    PubMed  PubMed Central  Google Scholar 

  51. Sarto MVM, Lana MC, Rampim L, Rosset JS, Wobeto JR, Ecco M, Bassegio D, Costa PF (2014) Effect of silicate on nutrition and yield of wheat. Afr J Agric Res 9(11):956–962

    CAS  Google Scholar 

  52. Sandhya TS, Prakash NB (2020) Effect of foliar silicic acid on growth, nutrient uptake and blast disease resistance of finger millet (Eleusine coracana (L.) Gaertn.). Int J Curr Microbiol App Sci 9(4):2111–2121

    CAS  Google Scholar 

  53. Savant NK, Snyder GH, Dantoff LE (1997) Silicon management and sustainable rice production. Adv Agron 58:151–199

    CAS  Google Scholar 

  54. Shwethakumari U, Prakash NB (2018) Effect of foliar application of silicic acid on soybean yield and seed quality under field conditions. J Indian Soc Soil Sci 66(4):406–414

    Google Scholar 

  55. Singh S, Bairwa H, Gurjar SC, Kumar H, Jangir M, Bagri UK (2018) Effect of foliar spray of micronutrients on uptake of micronutrients in (Solanum esculentum Mill.) cv. Navoday. Int J Curr Microbiol Appl Sci 7:930–933

    Google Scholar 

  56. Soratto RP, Crusciol C, Castro G, Costa HM, Neto FJ (2012) Leaf application of silicic acid to white oat and wheat. Rev Bras Ciênc Solo 36(5):1538–1544

    CAS  Google Scholar 

  57. Stevens J, Senaratna T, Sivasithamparam K (2006) Salicylic acid induces salinity tolerance in tomato (Lycopersicon esculentum cv. Roma), associated changes in gas exchange, water relations and membrane stabilisation. Plant Growth Regul 49:77–83

    CAS  Google Scholar 

  58. Syu CH, Huang CC, Jiang PY, Chein PH, Wang HY, Su JY, Lee DY (2016) Effect of foliar and soil application of sodium silicate on arsenic toxicity and accumulation in rice (Oryza sativa L.) seedlings grown in as contaminated paddy. J Soil Sci Plant Nutr 62(4):357–366

    CAS  Google Scholar 

  59. Venkataraju (2013) Effect of different sources of silicon on growth and yield of maize in southern dry zone of Karnataka. M.Sc. (Agri.) Thesis, University of Agricultural Sciences, Bengaluru

  60. Wang M, Jiang W, Yu H (2010) Effects of exogenous epibrassinolide on photosynthetic characteristics in tomato (Lycopersicon esculentum Mill) seedlings under weak light stress. J Agr Food Chem 58:3642–3645

    CAS  Google Scholar 

  61. Wasti S, Manaa A, Mimouni H, Nsairi A, Ibtissem M, Gharbi E, Gautier H, Ben Ahmed H (2017) Exogenous application of calcium silicate improves salt tolerance in two contrasting tomato (Solanum lycopersicum) cultivars. J Plant Nutr 40(5):673–684

    CAS  Google Scholar 

  62. Zhang FS, Shen AL, Liu CZ (1996) A preliminary study of the effect of silicon application to rice in the growing area along the Haunghe River. J Henan Agri Sci 10:14–15

    Google Scholar 

  63. Zhang Y, Shi Y, Gong H, Zhao H, Li H, Hu Y, Wang Y (2018) Beneficial effects of silicon on photosynthesis of tomato seedlings under water stress. J Integr Agric 17(10):2151–2159

    CAS  Google Scholar 

  64. Zuccarini P (2008) Effects of silicon on photosynthesis, water relations and nutrient uptake of Phaseolus vulgaris under NaCl stress. Biol Plant 52(1):157–160

    CAS  Google Scholar 

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Thimmappa, P., Nagabovanalli Basavarajappa, P. Yield, Quality and Nutrient Content of Tomato in Response to Soil Drenching of Silicic Acid. Agric Res 10, 634–644 (2021). https://doi.org/10.1007/s40003-020-00526-8

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