Research article

Chitosan coating for extending postharvest quality of tomatoes (Lycopersicon esculentum Mill.) maintained at different storage temperatures

  • Received: 17 April 2018 Accepted: 21 May 2018 Published: 28 May 2018
  • The growing consumer demand for produces without chemical residues has focused efforts on the assessment of innovative natural antimicrobials. In this context, chitosan, derived from abundantly available chitin sources such as crab, shrimp and insects, has been reported to possess an excellent film-forming ability and inherent antimicrobial properties suitable for development of edible antimicrobial films. Thus, the present study was established to study the effect of chitosan coating on extending postharvest quality of fresh tomatoes (Lycopersicon esculentum Mill. cv. ‘Diamentino’) maintained at two different storage temperatures (5 °C with 90% relative humidity and 21 °C with 65% relative humidity). Coating the tomatoes with chitosan solutions reduced the weight loss, with greater effect at 1% than 0.5 or 2% concentrations. Chitosan-coated tomatoes were firmer, higher in titratable acidity, and exhibited less biochemical changes than the control fruit at the end of storage. The loss in visual quality was significantly reduced by coating the fruits with chitosan solutions of 0.5, 1.0 and 2.0% as compared to the control. Among the applied concentrations, chitosan at 1% can be recommended as it was pioneering for most of the parameters analyzed during cold storage at both 5 °C for 20 d and at 21 °C for 10 d. Due to its lower cost and convenience to human health, chitosan may be one of the attractive and effective biopolymers for achieving adequate conservation of fresh tomatoes.

    Citation: Hayriye Fatma Kibar, Ferhan K. Sabir. Chitosan coating for extending postharvest quality of tomatoes (Lycopersicon esculentum Mill.) maintained at different storage temperatures[J]. AIMS Agriculture and Food, 2018, 3(2): 97-108. doi: 10.3934/agrfood.2018.2.97

    Related Papers:

  • The growing consumer demand for produces without chemical residues has focused efforts on the assessment of innovative natural antimicrobials. In this context, chitosan, derived from abundantly available chitin sources such as crab, shrimp and insects, has been reported to possess an excellent film-forming ability and inherent antimicrobial properties suitable for development of edible antimicrobial films. Thus, the present study was established to study the effect of chitosan coating on extending postharvest quality of fresh tomatoes (Lycopersicon esculentum Mill. cv. ‘Diamentino’) maintained at two different storage temperatures (5 °C with 90% relative humidity and 21 °C with 65% relative humidity). Coating the tomatoes with chitosan solutions reduced the weight loss, with greater effect at 1% than 0.5 or 2% concentrations. Chitosan-coated tomatoes were firmer, higher in titratable acidity, and exhibited less biochemical changes than the control fruit at the end of storage. The loss in visual quality was significantly reduced by coating the fruits with chitosan solutions of 0.5, 1.0 and 2.0% as compared to the control. Among the applied concentrations, chitosan at 1% can be recommended as it was pioneering for most of the parameters analyzed during cold storage at both 5 °C for 20 d and at 21 °C for 10 d. Due to its lower cost and convenience to human health, chitosan may be one of the attractive and effective biopolymers for achieving adequate conservation of fresh tomatoes.


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    [1] Heber D, Lu QY (2002) Overview of mechanisms of action of lycopene. Exp Biol Med 227: 920–923. doi: 10.1177/153537020222701013
    [2] Stewart AJ, Bozzonet S, Mullen W, et al. (2000) Occurrence of flavonols in tomatoes and tomato-based products. J Agric Food Chem 48: 2663–2669. doi: 10.1021/jf000070p
    [3] Luthria DL, Mukhopadhyay S, Krizek D (2006) Content of total phenolics and phenolic acids in tomato (Lycopersicon esculentum Mill.) fruits as influenced by cultivar and solar UV radiation. J Food Com Anal 19: 771–777.
    [4] Benhabiles MS, Tazdait D, Abdi N, et al. (2013) Assessment of coating tomato fruit with shrimp shell chitosan and N,O-carboxymethyl chitosan on postharvest preservation. Food Measure 7: 66–74. doi: 10.1007/s11694-013-9140-9
    [5] Sabir FK, Agar IT (2011) Effects of 1-methylcyclopropene and modified atmosphere packing on postharvest life and quality in tomatoes. J Food Quality 34: 111–118. doi: 10.1111/j.1745-4557.2011.00372.x
    [6] Cantwell M (2010) Optimum procedures for ripening tomatoes. In: Thompson JT, Crisosto C, editors. Fruit ripening and ethylene management. UC Postharvest Horticulture Series 9: 106–116.
    [7] Grierson D, Kader AA (1986) Fruit ripening and quality. In: Atherton JG, Rudich J, editors. The Tomato Crop. Chapman and Hall, New York, London, pp. 241–280.
    [8] Terry LA, Joyce DC (2004) Elicitors of induced disease resistance in postharvest horticultural crops: A brief review. Postharvest Biol Technol 32: 1–13. doi: 10.1016/j.postharvbio.2003.09.016
    [9] Wang SY, Gao H (2013) Effect of chitosan-based edible coating on antioxidants, antioxidant enzyme system, and postharvest fruit quality of strawberries (Fragaria x ananassa Duch.). LWT-Food Sci Technol 52: 71–79. doi: 10.1016/j.lwt.2012.05.003
    [10] Ben-Shalom N, Ardi R, Pinto R, et al. (2003) Controlling gray mould caused by Botrytis cinerea in cucumber plants by means of chitosan. Crop Prot 22: 285–290. doi: 10.1016/S0261-2194(02)00149-7
    [11] Kumar P, Sethi S, Sharma RR, et al. (2017) Effect of chitosan coating on postharvest life and quality of plum during storage at low temperature. Sci Hortic 226: 104–109. doi: 10.1016/j.scienta.2017.08.037
    [12] Elbarbary AM, Mostafa TB (2014) Effect of g-rays on carboxymethyl chitosan for use as antioxidant and preservative coating for peach fruit. Carbohyd Polym 104: 109–117. doi: 10.1016/j.carbpol.2014.01.021
    [13] Poverenov E, Danino S, Horev B, et al. (2014) Layer-by-layer electrostatic deposition of edible coating on fresh cut melon model: anticipated and unexpected effects of alginateechitosan combination. Food Bioprocess Tech 7: 1424–1432. doi: 10.1007/s11947-013-1134-4
    [14] Petriccione M, De Sanctis F, Pasquariello MS, et al. (2015) The effect of chitosan coating on the quality and nutraceutical traits of sweet cherry during postharvest life. Food Bioprocess Tech 8: 394–408. doi: 10.1007/s11947-014-1411-x
    [15] El Ghaouth A, Ponnampalam R, Castaigne F, et al. (1992) Chitosan coating to extend the storage life of tomatoes. HortScience 27: 1016–1018.
    [16] de Capdeville G,Wilson CL, Beer SV, et al. (2002) Alternative disease control agents induce resistance to blue mold in harvested 'Red Delicious' apple fruit. Phytopathology 92: 900–908. doi: 10.1094/PHYTO.2002.92.8.900
    [17] USDA (1991) United States Department of Agriculture, Agricultural Marketing Service, pp. 13.
    [18] Han C, Zuo J, Wang Q, et al. (2014) Effects of chitosan coating on postharvest quality and shelf life ofsponge gourd (Luffa cylindrica) during storage. Sci Hortic 166: 1–8. doi: 10.1016/j.scienta.2013.09.007
    [19] Azadanlou R (2001) A methodology for assessing the quality of fruit and vegetables. PhD, Swiss Federal Institute of Technology Zurich, Switzerland.
    [20] Sharma SK, Maguer ML (1996) Kinetics of Lycopene Degradation in Tomato Pulp Solids under Different Processing and Storage Conditions. Food Res Int 29: 309–315. doi: 10.1016/0963-9969(96)00029-4
    [21] Rao AV, Waseem Z, Agarwal S (1998) Lycopene content of tomatoes and tomato products and their contribution to dietary lycopene. Food Res Int 31: 737–741. doi: 10.1016/S0963-9969(99)00053-8
    [22] Ozdemir AE, Dundar O (2006) The effects of fungicide and hot water treatments on the internal quality parameters of Valencia oranges. Asian J Plant Sci 5: 142–146. doi: 10.3923/ajps.2006.142.146
    [23] Thaipong K, Boonprakob U, Crosby K, et al. (2006) Comparison of ABTS, DPPH, FRAP, and ORAC assays for estimating antioxidant activity from guava fruit extracts. J Food Compos Anal 19: 669–675. doi: 10.1016/j.jfca.2006.01.003
    [24] Singleton VL, Orthofer R, Lamuela-Ravento RM (1999) Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent. In: Methods in enzymology, Packer L, editor. San Diego, CA: Academic Press, 299: 152–315.
    [25] Benzie IFF, Strain JJ (1996) Ferric reducing ability of plasma (FRAP) as a measure of antioxidant power: The FRAP assay. Anal Biochem 239: 70–76. doi: 10.1006/abio.1996.0292
    [26] Sabir FK, Agar IT (2011) Influence of different concentrations of 1-methylcyclopropene on the quality of tomato harvested at different maturity stages. J Sci Food Agr 91: 2835–2843. doi: 10.1002/jsfa.4529
    [27] Paull RE, Chen NJ (1989) Waxing and plastic wraps influence water loss from papaya fruit during storage and ripening. J Americ Society Hortic Sci 114: 937–942.
    [28] Pérez-Gago MB, Serra M, del Río MA (2006) Color change of fresh-cut apples coated with whey protein concentrate-based edible coatings. Postharvest Biol Technol 39: 84–92. doi: 10.1016/j.postharvbio.2005.08.002
    [29] El-Eleryan EE (2015) Effect of chitosan and green tea on the quality of Washington navel orange during cold storage. Am J Plant Physiol 10: 43–54. doi: 10.3923/ajpp.2015.43.54
    [30] Mostofi Y, Toivonen PMA, Lessani H, et al. (2003) Effects of 1-methylcyclopropene on ripening of greenhouse tomatoes at three storage temperatures. Postharvest Biol Technol 27: 285–292. doi: 10.1016/S0925-5214(02)00113-8
    [31] Hobson G, Grierson D (1993) Tomato. In: Seymour GB, Taylor JE, Tucker GA, editors. Biochemistry of fruit ripening. 1st ed. London. Chapman & Hall, pp. 405–442.
    [32] Zhu X, Wang QM, Cao JK, et al. (2008) Effects of chitosan coating on postharvest quality of mango (Mangifera indica L.cv. Tainong) fruits. J Food Process Pres 32: 770–784. doi: 10.1111/j.1745-4549.2008.00213.x
    [33] Paniagua AC, East AR, Hindmarsh JP, et al. (2013) Moisture loss is the major cause of firmness change during postharvest storage of blueberry. Postharvest Biol Technol 79: 13–19. doi: 10.1016/j.postharvbio.2012.12.016
    [34] Zhang D, Quantick PC (1998) Antifungal effects of chitosan coating on fresh strawberries and raspberries during storage. J Hort Sci Biotechnol 73: 763–767. doi: 10.1080/14620316.1998.11511045
    [35] El Ghaouth A, Ponnampalam R, Boulet M (1991) Chitosan coating effect on storability and quality of fresh strawberries. J Food Sci 56: 1618–1621. doi: 10.1111/j.1365-2621.1991.tb08655.x
    [36] Javanmardi J, Kubota C (2006) Variation of lycopene, antioxidant activity, total soluble solids and weight loss of tomato during postharvest storage. Postharvest Biol Tec 41: 151–155. doi: 10.1016/j.postharvbio.2006.03.008
    [37] Kerch G, Sabovics M, Kruma Z, et al. (2011) Effect of chitosan and chitooligosaccharide on vitamin C and polyphenols contents in cherries and strawberries during refrigerated storage. Eur Food Res Tech 233: 351–358. doi: 10.1007/s00217-011-1525-6
    [38] Gol NB, Patel PR, Rao TVR (2013) Improvement of quality and shelf-life of strawberries with edible coatings enriched with chitosan. Postharvest Biol Tec 85: 185–195. doi: 10.1016/j.postharvbio.2013.06.008
    [39] Simões ADN, Tudela JA, Allende A, et al. (2013) Edible coatings containing chitosan and moderate modified atmospheres maintain quality and enhance phytochemicals of carrot sticks. Postharvest Biol Technol 51: 364–370.
    [40] Friedman M, Juneja VK (2010) Review of antimicrobial and antioxidative activities of chitosans in food. J Food Protect 73: 1737–1761. doi: 10.4315/0362-028X-73.9.1737
    [41] No HK, Meyers SP, Prinyawiwatkul W, et al. (2007) Applications of chitosan for improvement of quality and shelf life of foods: a review. J Food Sci 72: R87–100. doi: 10.1111/j.1750-3841.2007.00383.x
    [42] Petriccione M, Mastrobuoni F, Pasquariello MS, et al. (2015) Effect of chitosan coating on the postharvest quality and antioxidant enzyme system response of strawberry fruit during cold storage. Foods 4: 501–523. doi: 10.3390/foods4040501
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