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Yenilebilir Mikro Boyutlu Kompozit Kaplama Uygulamalarının Albion Çilek Meyvelerinin Soğukta Muhafazasına Etkisi

Year 2024, Volume: 7 Issue: 2, 101 - 110
https://doi.org/10.55257/ethabd.1561278

Abstract

Çilek meyvelerinin hasattan sonraki en büyük sorunlardan biri derim sonrası ömürlerinin kısa oluşudur. Bu gerçekten hareketle planlanan bu çalışmada, kitosan mikropartikülü (KMP) ve selenyum mikropartikülü (SeMP) ile kekik esansiyel yağı (Yağ) kombinasyonlarından oluşturulan yeni nesil aktif gıda koruyucu kaplama ajanlarının Albion çilek çeşidine ait meyvelerin derim sonrası kalitesi üzerine etkileri araştırılmıştır. Meyveler yenilebilir kolloid solüsyonla kaplandıktan sonra 4 oC’de tutulmuş ve 0, 5, 10, 15 ve 20. günlerde kalite parametrelerine yönelik analizler yapılmıştır. Çalışma sonucunda kolloid solüsyonla kaplama uygulamalarından KMP+SeMP uygulaması ve bunu takiben KMP+SeMP+Yağ uygulamasının ağırlık kaybı, solunum ve çürüme oranlarını azalttığı, renk değerleri (L*, chroma ve hue), meyve eti sertliği, suda çözünür kuru madde (SÇKM) miktarı, titre edilebilir asit (TEA) ve C vitamini içerikleri ile toplam fenolik, antosiyanin ve antioksidan kapasitesini korumada en etkili uygulamalar olduğu tespit edilmiştir. Bu sonuçlar KMP+SeMP ve KMP+SeMP+Yağ uygulamalarını çilek meyvelerinin kalitesinin korunmasında ve derim sonrası raf ömrünün uzatılmasında kullanılabilecek yenilebilir kaplamalar olabileceğini göstermektedir. Çalışma sonuçları derim sonrası çabuk bozulan ürünlerde ve raf ömrünün uzatılmasında yeni teknoloji ile üretilen mikro boyutlu kompozit kaplama ajan/ajanlarının elde edilme sürecine katkı sağlayacaktır. Ayrıca bu sonuçlar gelecekte bu ve benzer konularda yapılması olası çalışmalara ışık tutma amacıyla kullanılabileceği söylenebilir.

Supporting Institution

Erciyes Üniversitesi

Project Number

FBA-2023-12370

References

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Effect of Edible Nanocomposite Coating Applications on Cold Storage of Albion Strawberry Fruits

Year 2024, Volume: 7 Issue: 2, 101 - 110
https://doi.org/10.55257/ethabd.1561278

Abstract

One of the biggest problems of strawberry fruits after harvest is their short life. In this study, the effects of the new generation active food preservative coating agents formed from combinations of micro sized chitosan (CH) and selenium (Se), and thyme essential oil (Oil) on the quality of Albion strawberry fruits after harvest were investigated. After the fruits were coated with edible colloid solution, they were kept at 4 oC and quality parameter analyses were performed on days 0, 5, 10, 15 and 20. As a result of the study, it was determined that the application of CH+Se and the subsequent application of CH+Se+Oil from colloid solution coatings reduced weight loss, respiration and decay rates. Also, it was determined that these applications were the most effective applications in preserving color values (L*, chroma and hue), fruit flesh firmness, total soluble solid (TSS) amount, acidity and vitamin C contents and total phenolics, anthocyanin and antioxidant capacity. These results show that CH+Se and CH+Se+Oil applications can be used as edible coatings to preserve the quality of strawberry fruits and extend their shelf life after harvest. The results of the study will contribute to the process of obtaining micro sized composite coating agent/agents produced with new technology in extending the shelf life. In addition, it can be said that these results can be used to guide possible future studies on similar topics.

Project Number

FBA-2023-12370

References

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  • Arabpoor, B., Yousefi, S., Weisany, W., Ghasemlou, M., 2021. Multifunctional coating composed of Eryngium campestre L. essential oil encapsulated in nano-chitosan to prolong the shelf-life of fresh cherry fruits. Food Hydrocolloids, 111: 106394.
  • Barikloo, H., Ahmadi, E., 2018. Shelf life extension of strawberry by temperatures conditioning, chitosan coating, modified atmosphere, and clay and silica nanocomposite packaging. Scientia Horticulturae, 240: 496-508.
  • Bourtoom, T., 2008. Edible films and coatings: characteristics and properties. International Food Research Journal, 15(3): 237-248.
  • Brand-Williams, W., Cuvelier, M.E., Berset, C.L.W.T., 1995. Use of a free radical method to evaluate antioxidant activity. LWT-Food science and Technology, 28(1): 25-30.
  • Butler, B.L., Vergano, P.J., Testin, R.F., Bunn, J.M., Wiles, J.L., 1996. Mechanical and barrier properties of edible chitosan films as affected by composition and storage. Journal of Food Science, 61(5): 953-956.
  • Cid-López, M.L., Soriano-Melgar, L.D.A.A., García-González, A., Cortéz-Mazatán, G., Mendoza-Mendoza, E., Rivera-Cabrera, F., Peralta-Rodríguez, R.D., 2021. The benefits of adding calcium oxide nanoparticles to biocompatible polymeric coatings during cucumber fruits postharvest storage. Scientia Horticulturae, 287: 110285.
  • Candir, E., Ozdemir, A.E., Aksoy, M.C., 2018. Effects of chitosan coating and modified atmosphere packaging on postharvest quality and bioactive compounds of pomegranate fruit cv.‘Hicaznar’. Scientia Horticulturae, 235: 235-243.
  • Çınar, S., Sabır, F.K., 2021. Kirazda hasat sonrası kitosan ve aloe vera uygulamalarının soğukta muhafaza süresince kalite özelliklerine etkisi. Alatarım, 20(2): 114-122
  • Dorazilová, J., Muchová, J., Šmerková, K., Diviš, P., Kopel, P., Kociová, S., Veselý, R., Pavlináková, V., Adam, V., Vojtová, L., 2020. Synergistic effect of chitosan and selenium nanoparticles on biodegradation and antibacterial properties of collagenous scaffolds designed for infected burn wounds. Nanomaterials, 10(10): 1971.
  • Dulta, K., Koçarsoy-Ağçeli, G., Chauhan, P., Chauhan, P.K., 2021. Biogenic production and characterization of CuO nanoparticles by Carica papaya leaves and its biocom patibility applications. Journal of Inorganic and Organometallic Polymers and Materials, 31(4): 1846-1857.
  • Dulta, K., Koşarsoy Ağçeli, G., Thakur, A., Singh, S., Chauhan, P., Chauhan, P.K., 2022a. Development of alginate-chitosan based coating enriched with ZnO nanoparticles for increasing the shelf life of orange fruits (Citrus sinensis L.). Journal of Polymers and the Environment, 30(8): 3293-3306.
  • Dulta, K., Koşarsoy Ağçeli, G., Chauhan, P., Jasrotia, R., Chauhan, P. K., Ighalo, J.O., 2022b. Multifunctional CuO nanoparticles with enhanced photocatalytic dye degradation and antibacterial activity. Sustainable Environment Research, 32: 1-15.
  • Duran, M., Aday, M.S., Zorba, N.N.D., Temizkan, R., Büyükcan, M.B., Caner, C., 2016. Potential of antimicrobial active packaging ‘containing natamycin, nisin, pomegranate and grape seed extract in chitosan coating’to extend shelf life of fresh strawberry. Food and Bioproducts Processing, 98: 354-363.
  • Emamifar, A., Mohammadizadeh, M., 2015. Preparation and application of LDPE/ZnO nanocomposites for extending shelf life of fresh strawberries. Food Technology and Biotechnology, 53(4): 488-495.
  • Fernandez-Leon, M.F., Fernandez-Leon, A.M., Lozano, M., Ayuso, M.C., Amodio, M.L., Colelli, G., González-Gómez, D., 2013. Retention of quality and functional values of broccoli ‘Parthenon’stored in modified atmosphere packaging. Food Control, 31(2): 302-313.
  • Feyzioglu, G.C., Tornuk, F., 2016. Development of chitosan nanoparticles loaded with summer savory (Satureja hortensis L.) essential oil for antimicrobial and antioxidant delivery applications. LWT - Food Science and Technology, 70: 104-110.
  • Frias, J.M., Oliveira, J.C., 2001. Kinetic models of ascorbic acid thermal degradation during hot air drying of maltodextrin solutions. Journal of Food Engineering, 47(4): 255-262.
  • García-Alonso, M., Rimbach, G., Rivas-Gonzalo, J.C., de Pascual-Teresa, S., 2004. Antioxidant and cellular activities of anthocyanins and their corresponding vitisins a studies in platelets, monocytes, and human endothelial cells. Journal of Agricultural and Food Chemistry, 52(11): 3378-3384.
  • Giusti, M.M., Rodriguez-Saona, L.E., Wrolstad, R.E., 1999. Spectral characteristics, molar absorptivity and color of pelargonidin derivatives. Journal of Agricultural and Food Chemistry, 47(11): 4631-7.
  • Gol, N. B., Patel, P. R., & Rao, T. R. (2013). Improvement of quality and shelf-life of strawberries with edible coatings enriched with chitosan. Postharvest Biology and Technology, 85, 185-195.
  • González-Saucedo, A., Barrera-Necha, L.L., Ventura-Aguilar, R.I., Correa-Pacheco, Z.N., Bautista-Baños, S., Hernández-López, M., 2019. Extension of the postharvest quality of bell pepper by applying nanostructured coatings of chitosan with Byrsonima crassifolia extract (L.) Kunth. Postharvest Biology and Technology, 149: 74-82.
  • Hernandez-Munoz, P., Almenar, E., Del Valle, V., Velez, D., Gavara, R., 2008. Effect of chitosan coating combined with postharvest calcium treatment on strawberry (Fragaria× ananassa) quality during refrigerated storage. Food Chemistry, 110(2): 428-435.
  • Ilk, S., Sağlam, N., Özgen, M., Korkusuz, F., 2017. Chitosan nanoparticles enhances the anti-quorum sensing activity of kaempferol. International Journal of Biological Macromolecules, 94: 653-662.
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There are 67 citations in total.

Details

Primary Language Turkish
Subjects Agricultural Engineering (Other)
Journal Section Articles
Authors

Ercan Yıldız 0000-0003-1445-2385

Fatih Hancı 0000-0002-2015-0351

Project Number FBA-2023-12370
Early Pub Date October 24, 2024
Publication Date
Submission Date October 4, 2024
Acceptance Date October 21, 2024
Published in Issue Year 2024 Volume: 7 Issue: 2

Cite

APA Yıldız, E., & Hancı, F. (2024). Yenilebilir Mikro Boyutlu Kompozit Kaplama Uygulamalarının Albion Çilek Meyvelerinin Soğukta Muhafazasına Etkisi. Erciyes Tarım Ve Hayvan Bilimleri Dergisi, 7(2), 101-110. https://doi.org/10.55257/ethabd.1561278