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Effects of Salting Pretreatment on Quality and Safety of Shrimp (Parapenaeopsis Spp.) Powder.

Nur Farhanis Abdullah Zawawi  -  Faculty of Bioresources and Food Industry, Universiti Sultan Zainal Abidin, Kampus Besut, 22200 Besut, Terengganu, Malaysia
Nor Aisyah Ramli  -  Faculty of Bioresources and Food Industry, Universiti Sultan Zainal Abidin, Kampus Besut, 22200 Besut, Terengganu, Malaysia
Nur Nadhila Elisa Yusoff  -  Faculty of Bioresources and Food Industry, Universiti Sultan Zainal Abidin, Kampus Besut, 22200 Besut, Terengganu, Malaysia
John Yew Huat Tang orcid scopus publons  -  Faculty of Bioresources and Food Industry, Universiti Sultan Zainal Abidin, Kampus Besut, 22200 Besut, Terengganu, Malaysia
*Asmaliza Abd Ghani orcid scopus publons  -  Faculty of Bioresources and Food Industry, Universiti Sultan Zainal Abidin, Kampus Besut, 22200 Besut, Terengganu, Malaysia
Open Access Copyright 2023 Journal of Applied Food Technology

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Abstract

Shrimps are well known as one of the healthiest seafood options, providing a huge amount of protein, vitamins, and minerals. However, shrimp is a highly perishable food, thus attempts to make innovative and healthy products may improve per capita consumption while lengthening the nutrient content shelf life. This research focused on the effects of different pretreatment salt concentrations at 0, 3, 6, and 9% on nutritional composition, microbial activity, and sensory evaluation of the shrimp powder samples. The analyses were performed in triplicate using the Association of Official Analytical Chemicals (AOAC) method for proximate analysis and physical analysis was used to determine pH, color, and water activity. The sensory attributes like saltiness, color, odor, texture, and aftertaste were measured using the hedonic scale method. Initial findings demonstrated significant differences in proximate composition, particularly protein content, ranging from 13 to 46% (w/w). There were also notable variations in color attributes among the shrimp powder samples. The lightness value varied, reflecting differences in the brightness levels of the powder, ranging from light to dark shades. The findings also revealed there were no significant differences in the total plate count among the shrimp powder samples which ranged from 3.50 to 2.69 Log CFU/g except shrimp powder treated with 0% salt concentration sample exhibited slightly higher counts compared to others which is 4.93 Log CFU/g. Sensory evaluation revealed variations in saltiness, color, odor, texture, and aftertaste profiles, with certain samples exhibiting stronger saltiness, color, odor, texture, and aftertaste, while others had milder attributes. These findings show that the most preferable salt concentration for brining shrimp is 3% because it can preserve protein content and have the best acceptability during sensory evaluation.

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Keywords: salt concentrations; shrimp powder; proximate composition; microbial activity; sensory evaluation
Funding: Ministry of Higher Education (MOHE) and Universiti Sultan Zainal Abidin for funding under the Fundamental Research Grant Scheme (FRGS) (FRGS/1/2021/WAB04/UNISZA/02/6)

Article Metrics:

  1. Ahmed, I., Qazi, I. M., Jamal, S. 2016. Developments in Osmotic Dehydration Technique for the Preservation of Fruits and Vegetables. Innovative Food Science & Emerging Technologies, 34, 29–43. DOI: 10.1016/j.ifset.2016.01.003
  2. Akonor, P. T., Ofori, H., Dziedzoave, N. T., Kortei, N. K. 2016. Drying Characteristics and Physical and Nutritional Properties of Shrimp Meat as Affected by Different Traditional Drying Techniques. International Journal of Food Science, 2016, 1–5. DOI: 10.1155/2016/7879097
  3. AlFaris, N. A., Alshammari, G. M., AlTamimi, J. Z., AlMousa, L. A., Alagal, R. I., AlKehayez, N. M., Aljabryn, D. H., Alsayadi, M. M., Yahya, M. A. 2022. Evaluating the Effects of Different Processing Methods on the Nutritional Composition of Shrimp and the Antioxidant Activity of Shrimp Powder. Saudi Journal of Biological Sciences 29(1), 640–649. DOI: 10.1016/j.sjbs.2021.09.029
  4. AOAC. 2000. Official Method of Analysis of Association of Analytical Chemists International. 17th Edition, Horowitz, Maryland
  5. Balzaretti, C., Marzano, M. 2013. Prevention of travel-related foodborne diseases: Microbiological risk assessment of food handlers and ready-to-eat foods in northern Italy airport restaurants. Food Control 29(1), 202–207. DOI: 10.1016/j.foodcont.2012.05.077
  6. Barcenilla, C., Alvarez-Ordóñez, A., López, M. P., Alvseike, O., Prieto, M. A. 2022. Microbiological Safety and Shelf-Life of Low-Salt Meat Products—A Review. Foods 11(15), 2331. DOI: 10.3390/foods11152331
  7. Binici, A. Kaya, G. K. 2017. Effect of brine and dry salting methods on the physicochemical and microbial quality of chub (Squalius cephalus Linnaeus, 1758). Food Science and Technology 38 (Suppl. 1). DOI: 10.1590/1678-457x.15717
  8. Food Act 1983 (ACT 281) & Regulations (As at 25th August 2019). 2018
  9. Fellendorf, S., O’Sullivan, M. G., Kerry, J. P. 2015. Impact of varying salt and fat levels on the physicochemical properties and sensory quality of white pudding. Meat Science 103, 75–82. DOI: 10.1016/j.meatsci.2014.12.010
  10. Gatti, E., Di Virgilio, N., Magli, M., Predieri, S. 2011. Integrating Sensory Analysis and Hedonic Evaluation for Apple Quality Assessment. Journal of Food Quality 34(2), 126–132. DOI: 10.1111/j.1745-4557.2011.00373.x
  11. Hamzeh, S., Motamedzadegan, A., Shahidi, S., Ahmadi, M. H., Regenstein, J. M. 2019. Effects of Drying Condition on Physico-chemical Properties of Foam-mat Dried Shrimp Powder. Journal of Aquatic Food Product Technology 28(7), 794–805. DOI: 10.1080/10498850.2019.1640817
  12. Henney, J. E., Taylor, C. L., Boon, C. S. 2010. Strategies to Reduce Sodium Intake in the United States. In National Academies Press eBooks. DOI: 10.17226/12818
  13. Jayasinghe, P., Jayasinghe, J. Galappaththi, C. 2010. Influence of Different Processing Methods on Quality and Shelf Life of Dried Shrimp. Sri Lanka Journal of Aquatic Sciences 11, pp.85–91. DOI: 10.4038/sljas.v11i0.2225
  14. Li, D., Xie, H., Liu, Z., Li, J., Liu, B., Liu, X. Zhou, D. 2019. Shelf life prediction and changes in lipid profiles of dried shrimp (Penaeus vannamei) during accelerated storage, Food Chemistry 297, 124951, DOI: 10.1016/j.foodchem.2019.124951
  15. Lin, Y., Gao, Y., Li, A., Wang, L., Ai, Z., Xiao, H., Li, J., Li, X. 2022. Improvement of Pacific White Shrimp (Litopenaeus vannamei) Drying Characteristics and Quality Attributes by a Combination of Salting Pretreatment and Microwave. Foods 11(14):2066. DOI: 10.3390/foods1114206
  16. Mohamed, H. R. 2019. Effect of Salting Process on Fish Quality. Nutrition and Food Processing 2(1), 01–06. https://doi.org/10.31579/2637-8876/011
  17. Niamnuy, C., Devahastin, S., Soponronnarit, S. 2007. Effects of Process Parameters on Quality Changes of Shrimp During Drying in a Jet-Spouted Bed Dryer. Journal of Food Science 72(9), E553–E563. DOI: 10.1111/j.1750-3841.2007.00516.x
  18. Nirmal, N. P., Santivarangkna, C., Rajput, M. S., Benjakul, S. 2020. Trends in shrimp processing waste utilization: An industrial prospective. Trends in Food Science & Technology 10, 20–35. DOI: 10.1016/j.tifs.2020.07.001
  19. Noor, N. M., Jirarat, T. 2018. Effect of food additives on the quality of white shrimp (Litopenaeus vannamei). Food Research 2(6), 546–554. DOI: 10.26656/fr.2017.2(6).114
  20. Nwosu, O. R., Obire, O., Wemedo, S. A., Ogbonna, D. N. 2020. Microbiological and Nutritional Quality of Market and Home Smoke Dried Shrimp. Journal of Advances in Microbiology 35–42. DOI: 10.9734/jamb/2020/v20i530243
  21. Qiu, X., Chen, S., & Lin, H. 2019. Oxidative Stability of Dried Seafood Products during Processing and Storage: A Review. Journal of Aquatic Food Product Technology 28(3), 329–340. DOI: 10.1080/10498850.2019.1581317
  22. Rabie, M., Osheba, A., Ghoniem, G., Mohmmed, L. 2016. Effect of Pretreatments and Drying Methods on Quality Attributes and Safety of Dried Shrimp (Pandalus borealis). Journal of Food and Dairy Sciences 7(7), 345–353. DOI: 10.21608/jfds.2016.46018
  23. Sakai, K., Shinomiya, S. 2011. Preliminary report on eight new genera formerly attributed to Parapenaeopsis Alcock, 1901, Sensu lato (Decapoda, Penaeidae). Crustaceana 84(4), 491–504. DOI: 10.1163/001121611x557037
  24. Sinha, R., Khare, S. K. 2014. Protective role of salt in catalysis and maintaining structure of halophilic proteins against denaturation. Frontiers in Microbiology 5. DOI: 10.3389/fmicb.2014.00165
  25. Zhang, M., Chen, H., Mujumdar, A. S., Tang, J., Miao, S., Wang, Y. 2015. Recent Developments in High-Quality Drying of Vegetables, Fruits, and Aquatic Products. Critical Reviews in Food Science and Nutrition 57(6), 1239–1255. DOI: 10.1080/10408398.2014.979280
  26. Zhang, H., Gu, W., Li, Y. J., Tang, M. 2020. Hygroscopic properties of sodium and potassium salts as related to saline mineral dusts and sea salt aerosols. Journal of Environmental Sciences 95, 65–72. DOI: 10.1016/j.jes.2020.03.046

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