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A Preliminary Study on the Meat Yield, Nutritional Composition, Lipid Quality Indices, and Mineral and Heavy Metal Contents of Annular Seabream ($Diplodus$ $annularis$ Linnaeus, 1758) Caught in the Black Sea

Year 2024, Volume: 9 Issue: 2, 431 - 448, 29.12.2024
https://doi.org/10.33484/sinopfbd.1449027

Abstract

In this study, the meat yield, nutritional composition (protein, fat, moisture, ash, carbohydrate), amino acid content, fatty acid composition, and mineral and heavy metal contents of annular seabream ($Diplodus$ $annularis$) were investigated. Additionally, the lipid quality indices (LQI) of annular sea bream were examined. The meat yield of annular seabream was found to be 29.69%. Protein, fat, moisture, ash and carbohydrate values were 17.78 g/100g, 2.28 g/100g, 76.96 g/100g, 1.80 g/100g and 1.19 g/100g, respectively. The total amount of essential amino acids and non-essential amino acids were determined as 147.45 mg/g and 462.74 mg/g, respectively. Polyunsaturated fatty acids (PUFAs) were the predominant fatty acids (37.74%), followed by saturated fatty acids (SFAs) (34.85%) and monounsaturated fatty acids (MUFAs) (27.36%). Atherogenicity Index (AI), Thrombogenicity Index (TI) and Polyene Index (PI) from LQIs were calculated as 0.47, 0.35 and 0.91, respectively. The H/H (Hypocholesterolemic/hypercholesterolemic) ratio of annular seabream was 2.83 and FLQ (Fish Lipid Quality) was 14.48. The first three of the most abundant minerals in annular sea bream were potassium (K), phosphorus (P) and sodium (Na). The heavy metals Hg, Pb and Cd were found within the allowed limit values. As a result, the annular seabream meat was found to have low fat values and high protein content, and to contain essential amino acids, polyunsaturated fatty acids and important minerals. The current study is the first research conducted on the nutritional composition of annular sea bream in the Black Sea.

Ethical Statement

The study does not require ethics committee approval or any special permission.

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References

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Karadeniz’de Avlanan Isparoz Balığı ($Diplodus$ $annularis$ Linnaeus, 1758)’nın Et Verimi, Besin Kompozisyonu, Lipid Kalite Indeksleri, Mineral ve Ağır Metal İçerikleri Üzerine Bir Ön Çalışma

Year 2024, Volume: 9 Issue: 2, 431 - 448, 29.12.2024
https://doi.org/10.33484/sinopfbd.1449027

Abstract

Bu çalışmada isparozun et verimi, besin kompozisyonu (protein, yağ, nem, kül, karbonhidrat), aminoasit içeriği, yağ asitleri kompozisyonu, mineral içeriği ve ağır metal içerikleri araştırılmıştır. Ayrıca isparoz balığının yağ kalite indeksleri incelenmiştir. Isparoz balığının et verimi %29.69 olarak bulunmuştur. Protein, yağ, nem, kül ve karbonhidrat değerleri sırasıyla, 17.78 g/100g, 2.28 g/100g, 76.96 g/100g, 1.80 g/100g ve 1.19 g/100g olarak tespit edilmiştir. Toplam esansiyel aminoasit miktarı 147.45 mg/g, toplam esansiyel olmayan aminoasit miktarı ise 462.74 mg/g olarak belirlenmiştir. Çoklu doymamış yağ asitleri (PUFAs) (37.74%) baskın yağ asitleri olup, onu doymuş yağ asitleri (SFAs) (34.85%) ve tekli doymamış yağ asitleri (MUFAs) (27.36%) takip etmiştir. Yağ kalite indekslerinden aterojenite indeksi (AI), trombojenite indeksi (TI) ve polien indeksi (PI) sırasıyla 0.47, 0.35 0.91 olarak tespit edilmiştir. İsparoz balığının H/H oranı 2.83 ve FLQ ise 14.48 olarak bulunmuştur. İsparoz balığında en fazla bulunan minerallerden ilk üçü potasyum (K), fosfor (P)ve sodyum (Na) olarak ölçülmüştür. Ağır metallerden Hg, Pb ve Cd izin verilen limit değerler içerisinde bulunmuştur. Sonuç olarak bu çalışmada isparoz balığı etinin, düşük yağ ve yüksek protein içeriğine sahip olduğu, esansiyel aminoasitleri, çoklu doymamış yağ asitlerini ve önemli mineralleri bünyesinde bulundurduğu tespit edilmiştir. Mevcut çalışma Karadeniz’de isparoz balığının besinsel kompozisyonuna yönelik olarak gerçekleştirilen ilk araştırma özelliğini taşımaktadır.

References

  • Khalili Tilami, S., & Sampels, S. (2018). Nutritional value of fish: Lipids, proteins, vitamins, and minerals. Reviews in Fisheries Science & Aquaculture, 26(2), 243–253. https://doi.org/10.1080/23308249.2017.1399104
  • Food and Agriculture Organization (2020). The State of World Fisheries and Aquaculture. Sustainability in Action. Rome. https://doi.org/10.4060/ca9229en
  • Maulu, S., Nawanzi, K., Abdel-Tawwab, M., & Khalil, H. S. (2021). Fish nutritional value as an approach to children’s nutrition. Frontiers in Nutrition, 8. 780844. https://doi.org/10.3389/fnut.2021.780844
  • Isparoz balığı, (Diplodus annularis). Balıknet. 07.02.2024. https://baliknetcom.wordpress.com/2021/04/21/isparoz-baligi-diplodus-annularis/
  • Isparoz- Diplodus annularis (Linnaeus, 1758). Su Ürünleri Merkez Araştırma Enstitüsü. 07.02.2024. https://www.surkoopekutuphane.org/baliklari-taniyalim/
  • Erat, S. (2019). Güneydoğu Karadeniz kıyılarında ısparoz balığı (Diplodus annularis (Linnaeus, 1758)’nın bazı populasyon parametreleri. (Tez no. 655634) [Yüksek Lisans Tezi, Ordu Üniversitesi].
  • Fishbase. (Diplodus annularis (Linnaeus, 1758). Annular seabream. 07.02.2024. https://www.fishbase.se/summary/diplodus-annularis
  • Deniz balıkları. İspari. 09.02.2024. https://tarim.ibb.istanbul/tarim-ve-su-urunleri-mudurlugu/deniz-baliklari.html.
  • Türkiye İstatistik Kurumu (2024). Su Ürünleri İstatistikleri. https://data.tuik.gov.tr/Kategori/GetKategori?p=tarim-111&dil=1
  • Ozekinci, U. (2005). Determination of the selectivity of monofilament gillnets used for catching the annular sea bream (Diplodus annularis L., 1758) by length-girth relationships in İzmir Bay (Aegean Sea). Turkish Journal of Veterinary & Animal Sciences, 29, 375-380.
  • Ayaz, A., Altınagac, U., Ozekinci, U., Cengiz, Ö., & Oztekin, A. (2010). Effects of hanging ratio on gill net selectivity for annular sea bream (Diplodus annularis) in the Northern Aegean Sea, Turkey. Journal of Animal and Veterinary Advances, 9(7):1137-1142.
  • Chaouch, H., Ben Abdallah-Ben Hadj Hamida, O., Ghorbel, M., & Jarboui, O. (2014). Feeding habits of the annular seabream, Diplodus annularis (Linnaeus, 1758) (Pisces: Sparidae), in the Gulf of Gabes (Central Mediterranean). Cahiers de Biologie Marine, 55, 13-19.
  • Cengiz, O., Kızılkaya, B., & Parug, S. S. (2019). Türkiye suları için isparoz balığı’nın (Diplodus annularis Linnaeus, 1758) büyüme özellikleri. Kahramanmaraş Sütçü İmam Üniversitesi Tarım ve Doğa Dergisi, 22(5): 817-822. https://doi.org/10.18016/ksutarimdoga.vi.525929
  • Ayyıldız, H., & Altın, A. (2020). Gökçeada sığ sularında bulunan isparoz, diplodus annularis larva ve juvenillerinin günlük yaş ve büyüme özellikleri. Yüzüncü Yıl Üniversitesi Tarım Bilimleri Dergisi, 30 (1): 57-67. https://doi.org/10.29133/yyutbd.652859
  • Gonul, L. T., Kucuksezgin, F., & Pazi, İ. (2018). Levels, distribution, and ecological risk of organochlorines in red mullet (Mullus barbatus) and annular sea bream (Diplodus annularis) from the Gulf of Izmir, Eastern Aegean, in 2009–2012. Environmental Science and Pollution Research, 25. 25162-25174. https://doi.org/10.1007/s11356-018-2528-7
  • Gharred, T., Mannai, R., Belgacem, M., & Jebali, J. (2020). Incidence of morphometry variation, growth alteration, and reproduction performance of the annular sea bream (Diplodus annularis) as effective tools to assess marine contamination: how useful is a multi-biotimarkers approach? Environmental Science and Pollution Research, 27, 4075-4088. https://doi.org/10.1007/s11356-019-07014-9
  • Ketata-Khitouni, I., Abdelmouleh, A., Bouain, A., & Boudhrioua Mihoubi, N. (2010). Variations of the chemical composition of five coastal catch fish species of the Gulf of Gabès (Tunisia). Cybium, 34(2), 175-183.
  • Ketata Khitouni, I., Boudhrioua Mihoubi, N., Bouain, A., & Ben Rebah, F. (2014). Seasonal variation of the chemical composition, fatty acid profiles and mineral elements of Diplodus annularis (Linnaeus, 1758) caught in the Tunisian Coastal Water. Journal of Food and Nutrition Research, 2(6), 306-311.
  • Passi, S., Cataudella, S., Di Marco, P., De Simone, F., & Rastrelli, L. (2002). Fatty acid composition and antioxidant levels in muscle tissue of different mediterranean marine species of fish and shellfish. Journal of Agricultural Food Chemistry, 50, 7314-7322.
  • Bouhlel, I., Mnari, A., Chraief, I., Hammami, M., El Cafsi, M., & Chaouch, A. (2009). Fatty acids in muscles, liver and gonads in Diplodus annularis from the Tunisian coasts. Cahiers de Biologie Marine, 50, 223-229.
  • Ozogul, Y., Ozogul, F., Cicek, E., Polat, A., & Kuley, E. (2009). Fat content and fatty acid compositions of 34 marine water fish species from the Mediterranean Sea. International Journal of Food Sciences and Nutrition, 60(6), 464-475.
  • Bosworth, B. G., Wolters, W. R. Silva, J. L., Chamul, R. S., & Park, S. (2004). Comparison of production, meat yield, and meat quality traits of NWAC103 line channel catfish, norris line channel catfish, and female channel catfish x male blue catfish F1 hybrids. North American Journal of Aquaculture, 66, 177-183. https://doi.org/10.1577/A03-032.1
  • Association of Official Analytical Chemists (1961). Officials Methods of Analysis. Washington. D.C. https://academic.oup.com/jaoac/issue/44/1
  • Bligh, E. G., & Dyer, W. J. (1959). A rapid method of total lipid extraction and purification. Canadian Journal of Biochemistry Physiology, 37(8), 911-917. https://doi.org/10.1139/o59-099
  • Ludorff, W., Meyer, V. (1973). Fishe und fisherzeuge. Z. Auflage. Verlag Paul Parey. In, Berlin und Hamburg: 209-210.
  • Association of Official Analytical Chemists (1984). Officials Methods of Analysis. Washington. D.C. http://lib3.dss.go.th/fulltext/scan_ebook/aoac_1984_v67_n2.pdf
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There are 57 citations in total.

Details

Primary Language English
Subjects Fisheries Technologies
Journal Section Research Articles
Authors

Bengünur Çorapcı 0000-0002-1005-5406

Publication Date December 29, 2024
Submission Date March 8, 2024
Acceptance Date August 13, 2024
Published in Issue Year 2024 Volume: 9 Issue: 2

Cite

APA Çorapcı, B. (2024). A Preliminary Study on the Meat Yield, Nutritional Composition, Lipid Quality Indices, and Mineral and Heavy Metal Contents of Annular Seabream ($Diplodus$ $annularis$ Linnaeus, 1758) Caught in the Black Sea. Sinop Üniversitesi Fen Bilimleri Dergisi, 9(2), 431-448. https://doi.org/10.33484/sinopfbd.1449027


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