全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

Comparison Traditional and New Technology on Shrimp Farming Nutritional Components of Shrimp

DOI: 10.4236/oalib.1112071, PP. 1-16

Subject Areas: Aquaculture, Fisheries & Fish Science

Keywords: Penaeus vannamei, Amino Acids, Shrimp Texture, Shrimp Muscle

Full-Text   Cite this paper   Add to My Lib

Abstract

One of the major global sectors is aquaculture, which includes shrimp farming. In order to determine the differences in shrimp development, muscle, and nutritional components, this study examines the use of new and traditional technology. The results of the various experimental groups’ Penaeus vannamei weight gain rate, specific growth rate, survival rate, and feed coefficient showed that the ecobased materials may encourage shrimp growth. Each group’s shrimp muscle had an essential amino acid score (AAS) of greater than 0.80 and a chemical score (CS) of greater than 0.60. In the muscle of each treatment group, the proportion of saturated fatty acid (SFA), monounsaturated fatty acid (MUFA), and polyunsaturated fatty acid (PUFA) was 1:0.4:1.4. It revealed a deficiency of MUFA in comparison to the optimal ratio of 1:1:1. It has also been demonstrated that dietary lipids influence the composition of fatty acids. The ecological base can raise the amount of elements in prawn muscles, support shrimp growth and development, and maintain metabolic balance, all of which will boost prawn production. Compared to other treatment groups, the ecological basis group has higher levels of hardness, flexibility, and chewiness in the shrimp muscle. levels of hardness, flexibility, and chewiness in the shrimp muscle.

Cite this paper

Xia, F. , You, J. , Wang, Y. and Subrahmanyam, M. V. (2024). Comparison Traditional and New Technology on Shrimp Farming Nutritional Components of Shrimp. Open Access Library Journal, 11, e2071. doi: http://dx.doi.org/10.4236/oalib.1112071.

References

[1]  Nirmal, N.P., Santivarangkna, C., Rajput, M.S. and Benjakul, S. (2020) Trends in Shrimp Processing Waste Utilization: An Industrial Prospective. Trends in Food Science & Technology, 103, 20-35. https://doi.org/10.1016/j.tifs.2020.07.001
[2]  IMARC (2020) Shrimp Market: Global Industry Trends. Share, Size, Growth, Opportunity and Forecast 2020-2025.
[3]  Domínguez, R., Pateiro, M., Gagaoua, M., Barba, F.J., Zhang, W. and Lorenzo, J.M. (2019) A Comprehensive Review on Lipid Oxidation in Meat and Meat Products. Antioxidants, 8, Article 429. https://doi.org/10.3390/antiox8100429
[4]  Zhang, W., Xiao, S. and Ahn, D.U. (2013) Protein Oxidation: Basic Principles and Implications for Meat Quality. Critical Reviews in Food Science and Nutrition, 53, 1191-1201. https://doi.org/10.1080/10408398.2011.577540
[5]  Bolnick, D.I., Snowberg, L.K., Hirsch, P.E., Lauber, C.L., Knight, R., Caporaso, J.G., et al. (2014) Individuals’ Diet Diversity Influences Gut Microbial Diversity in Two Freshwater Fish (Threespine Stickleback and Eurasian Perch). Ecology Letters, 17, 979-987. https://doi.org/10.1111/ele.12301
[6]  Sommer, F., Anderson, J.M., Bharti, R., Raes, J. and Rosenstiel, P. (2017) The Resilience of the Intestinal Microbiota Influences Health and Disease. Nature Reviews Microbiology, 15, 630-638. https://doi.org/10.1038/nrmicro.2017.58
[7]  Bäckhed, F., Ding, H., Wang, T., Hooper, L.V., Koh, G.Y., Nagy, A., et al. (2004) The Gut Microbiota as an Environmental Factor That Regulates Fat Storage. Proceedings of the National Academy of Sciences of the United States of America, 101, 15718-15723. https://doi.org/10.1073/pnas.0407076101
[8]  Chythanya, R., Karunasagar, I. and Karunasagar, I. (2002) Inhibition of Shrimp Pathogenic Vibrios by a Marine Pseudomonas I-2 Strain. Aquaculture, 208, 1-10. https://doi.org/10.1016/s0044-8486(01)00714-1
[9]  Ezquerra Brauer, J.M., Salazar Leyva, J.A., Bringas Alvarado, L. and Rouzaud Sandez, O. (2003) Effect of Dietary Protein on Muscle Collagen, Collagenase and Shear Force of Farmed White Shrimp (Litopenaeus vannamei). European Food Research and Technology, 217, 277-280. https://doi.org/10.1007/s00217-003-0739-7
[10]  Rivas-Vega, M.E., Rouzaud-Sandez, O., Martinez-Cordova, L.R. and Ezquerrabrauer, J.M. (2001) Effects of Feed Protein Levels on Digestive Proteolytic Activity, Texture, and Thermal Dena-turation of Muscle Protein in Reared Blue Shrimp. Journal of Aquatic Food Product Technology, 10, 25-38. https://doi.org/10.1300/j030v10n04_03
[11]  Dunajski, E. (1980) Texture of Fish Muscle. Journal of Texture Studies, 10, 301-318. https://doi.org/10.1111/j.1745-4603.1980.tb00862.x
[12]  Buchtová, H., Svobodová, Z., Kocour, M. and Velíšek, J. (2009) Amino Acid Composition in Fillets of Mirror Crossbreds Common Carp (Cyprinus carpio, Linnaeus 1758). Acta Veterinaria Brno, 78, 337-344. https://doi.org/10.2754/avb200978020337
[13]  Ma, Y., Li, M., Xie, D., Chen, S., Dong, Y., Wang, M., et al. (2020) Fishmeal Can Be Replaced with a High Proportion of Terrestrial Protein in the Diet of the Carnivorous Marine Teleost (Trachinotus ovatus). Aquaculture, 519, Article ID: 734910. https://doi.org/10.1016/j.aquaculture.2019.734910
[14]  Tran, H.Q., Nguyen, T.T., Prokešová, M., Gebauer, T., Doan, H.V. and Stejskal, V. (2022) Systematic Review and Meta-Analysis of Production Performance of Aquaculture Species Fed Die-tary Insect Meals. Reviews in Aquaculture, 14, 1637-1655. https://doi.org/10.1111/raq.12666
[15]  Motte, C., Rios, A., Lefebvre, T., Do, H., Henry, M. and Jintasataporn, O. (2019) Replacing Fish Meal with Defatted Insect Meal (Yellow Meal-worm Tenebrio molitor) Improves the Growth and Immunity of Pacific White Shrimp (Litopenaeus vannamei). Animals, 9, Article 258. https://doi.org/10.3390/ani9050258
[16]  Wang, G., Peng, K., Hu, J., Yi, C., Chen, X., Wu, H., et al. (2019) Evaluation of Defatted Black Soldier Fly (Hermetia illucens L.) Larvae Meal as an Alternative Protein Ingredient for Juvenile Japanese Seabass (Lateolabrax japonicus) Diets. Aquaculture, 507, 144-154. https://doi.org/10.1016/j.aquaculture.2019.04.023
[17]  Rahimnejad, S., Hu, S., Song, K., Wang, L., Lu, K., Wu, R., et al. (2019) Replacement of Fish Meal with Defatted Silkworm (Bombyx mori L.) Pupae Meal in Diets for Pacific White Shrimp (Litopenaeus vannamei). Aquaculture, 510, 150-159. https://doi.org/10.1016/j.aquaculture.2019.05.054
[18]  Bruni, L., Pastorelli, R., Viti, C., Gasco, L. and Parisi, G. (2018) Characterisation of the Intestinal Microbial Communities of Rainbow Trout (Oncorhynchus mykiss) Fed with Hermetia illucens (Black Soldier Fly) Partially Defatted Larva Meal as Partial Dietary Protein Source. Aquaculture, 487, 56-63. https://doi.org/10.1016/j.aquaculture.2018.01.006
[19]  Fasakin, E.A., Ba-logun, A.M. and Ajayi, O.O. (2003) Evaluation of Full-Fat and Defatted Maggot Meals in the Feeding of Clariid Catfish Clarias gariepinus Fingerlings. Aquaculture Research, 34, 733-738. https://doi.org/10.1046/j.1365-2109.2003.00876.x
[20]  Castro, C., Pérez-Jiménez, A., Coutinho, F., Pousão-Ferreira, P., Brandão, T.M., Oliva-Teles, A., et al. (2013) Digestive Enzymes of Meagre (Argyrosomus regius) and White Seabream (Dip-lodus sargus). Effects of Dietary Brewer’s Spent Yeast Supplementation. Aquaculture, 416, 322-327. https://doi.org/10.1016/j.aquaculture.2013.09.042
[21]  Krogdahl, Å., Bakke-McKellep, A.M. and Baeverfjord, G. (2003) Effects of Graded Levels of Standard Soybean Meal on Intestinal Structure, Mucosal Enzyme Activities, and Pancreatic Re-sponse in Atlantic Salmon (Salmo salar L.). Aquaculture Nutrition, 9, 361-371. https://doi.org/10.1046/j.1365-2095.2003.00264.x
[22]  Colston, T.J. and Jackson, C.R. (2016) Microbiome Evolution along Divergent Branches of the Vertebrate Tree of Life: What Is Known and Unknown. Molecular Ecology, 25, 3776-3800. https://doi.org/10.1111/mec.13730
[23]  Zhang, M., Sun, Y., Chen, K., Yu, N., Zhou, Z., Chen, L., et al. (2014) Characteri-zation of the Intestinal Microbiota in Pacific White Shrimp, Litopenaeus vannamei, Fed Diets with Different Lipid Sources. Aquaculture, 434, 449-455. https://doi.org/10.1016/j.aquaculture.2014.09.008
[24]  Qiao, F., Liu, Y.K., Sun, Y.H., Wang, X.D., Chen, K., Li, T.Y., et al. (2016) Influence of Different Dietary Carbohydrate Sources on the Growth and Intestinal Mi-crobiota of Litopenaeus vannamei at Low Salinity. Aquaculture Nutrition, 23, 444-452. https://doi.org/10.1111/anu.12412
[25]  Zheng, Y., Yu, M., Liu, Y., Su, Y., Xu, T., Yu, M., et al. (2016) Comparison of Cul-tivable Bacterial Communities Associated with Pacific White Shrimp (Litopenaeus vannamei) Larvae at Different Health Statuses and Growth Stages. Aquaculture, 451, 163-169. https://doi.org/10.1016/j.aquaculture.2015.09.020
[26]  Sha, Y., Liu, M., Wang, B., Jiang, K., Qi, C. and Wang, L. (2016) Bacterial Population in Intestines of Litopenaeus vannamei Fed Different Probiotics or Probiotic Supernatant. Journal of Microbiology and Biotechnology, 26, 1736-1745. https://doi.org/10.4014/jmb.1603.03078
[27]  Zhang, M., Sun, Y., Liu, Y., Qiao, F., Chen, L., Liu, W., et al. (2016) Re-sponse of Gut Microbiota to Salinity Change in Two Euryhaline Aquatic Animals with Reverse Salinity Preference. Aquacul-ture, 454, 72-80. https://doi.org/10.1016/j.aquaculture.2015.12.014
[28]  Defoirdt, T., Boon, N., Sorgeloos, P., Ver-straete, W. and Bossier, P. (2007) Alternatives to Antibiotics to Control Bacterial Infections: Luminescent Vibriosis in Aqua-culture as an Example. Trends in Biotechnology, 25, 472-479. https://doi.org/10.1016/j.tibtech.2007.08.001
[29]  Karunasagar, I., Pai, R., Malathi, G.R. and Karunasagar, I. (1994) Mass Mortality of Penaeus monodon Larvae Due to Antibiotic-Resistant Vibrio harveyi Infection. Aquaculture, 128, 203-209. https://doi.org/10.1016/0044-8486(94)90309-3
[30]  Rengpipat, S., Rukpratanporn, S., Piyatiratitivorakul, S. and Menasaveta, P. (2000) Immunity Enhancement in Black Tiger Shrimp (Penaeus monodon) by a Probiont Bacterium (Bacillus S11). Aquaculture, 191, 271-288. https://doi.org/10.1016/s0044-8486(00)00440-3
[31]  Panigrahi, A. and Azad, I.S. (2007) Microbial Intervention for Better Fish Health in Aquaculture: The Indian Scenario. Fish Physiology and Biochemistry, 33, 429-440. https://doi.org/10.1007/s10695-007-9160-7
[32]  Li, W.J., Chen, S.S. and Qiu, W.Q. (2014) Comparative Analysis of Amino Acid Composition in Antarctic Krill and White Shrimp. Advanced Materials Research, 941, 1114-1119. https://doi.org/10.4028/www.scientific.net/amr.941-944.1114
[33]  Chen, D., Su, J., Liu, X., Yan, D. and Lin, Y. (2012) Taste Evaluation of Non-Volatile Taste Compounds in Bivalve Mollusks from Beibu, Guangxi. Food Science, 33, 165-168. (In Chinese)
[34]  Wu, X., Wang, Q., Lou, B., Liu, Z. and Chen, Y. (2014) Effect of Fatterning Period on Ovarian Development and Nutritional Quality of Female Swimming Crab (Portunus trituberculatus). Journal of Fisheries of China, 38, 170-181.
[35]  Liu, Q., Huang, S., Yue, W., Chen, X., Peng, Z., Wang, J., et al. (2017) Effects of Elodea nuttallii on Growth and Nutritional Quality of Chinese Mitten Crab, Eriocheir sinensis. Journal of Fishery Sciences of China, 24, 91-99. https://doi.org/10.3724/sp.j.1118.2017.16219
[36]  Shi, Y., Zhang, G., Liu, Y., Yan, Y., Xie, Y., Lu, G., Xu, J. and Liu, J. (2013) Effects of Salinity on Nutrient Composition, Amino Acid Composition and Content in Themuscle of Parapenaeopsis hardwickii. Chinese Journal of Zoology, 8, 399-406.
[37]  Cui, G., Jiang, Z., Wang, J., Hu, Z. and Wei, W. (2018) Comparison of Nutritional Components of Macrobrachium rosenbergii under Two Cultivation Modes. Jiangsu Agricultural Sciences, 46, 212-214.
[38]  Zhao, F., Zhuang, P., Song, C., Shi, Z. and Zhang, L. (2010) Amino Acid and Fatty Acid Compositions and Nutritional Quality of Muscle in the Pomfret, Pampus punctatissimus. Food Chemistry, 118, 224-227. https://doi.org/10.1016/j.foodchem.2009.04.110
[39]  Li, H., Li, X., Liu, T., Jiang, X., Sun, Y., Ji, L. and Wang, Y. (2017) Analysis on Nutritional Components in Fenneropenaeus chinensis in the Biological Aquaculture Mode Integrating Salt Pro-duction and Fish Farming. Fishery Modernization, 44, 60-66.
[40]  Ju, Z.Y., Forster, I.P. and Dominy, W.G. (2009) Effects of Supplementing Two Species of Marine Algae or Their Fractions to a Formulated Diet on Growth, Survival and Composition of Shrimp (Litopenaeus vannamei). Aquaculture, 292, 237-243. https://doi.org/10.1016/j.aquaculture.2009.04.040
[41]  Bono, G., Gai, F., Peiretti, P.G., Badalucco, C., Brugiapaglia, A., Siragusa, G., et al. (2012) Chemical and Nutritional Characterisation of the Central Mediterranean Giant Red Shrimp (Aris-taeomorpha foliacea): Influence of Trophic and Geographical Factors on Flesh Quality. Food Chemistry, 130, 104-110. https://doi.org/10.1016/j.foodchem.2011.07.004
[42]  Avnimelech, Y. (1999) Carbon/Nitrogen Ratio as a Control Ele-ment in Aquaculture Systems. Aquaculture, 176, 227-235. https://doi.org/10.1016/s0044-8486(99)00085-x
[43]  Phuong, P.K., Son, C.P.N., Sauvain, J.J. and Tarradellas, J. (1998) Contamination by PCB’s, DDT’s, and Heavy Metals in Sediments of Ho Chi Minh City’s Canals, Viet Nam. Bulletin of Envi-ronmental Contamination and Toxicology, 60, 347-354. https://doi.org/10.1007/s001289900633
[44]  Anh, M.T., Do Hong, L.C., Nguyen, N.V., Thi, C.L.T., Minh, T.L., Slooten, K.B., et al. (2003) Micropollutants in the Sediment of the Sai-Gon-Dongnai River: Situation and Ecological Risks. CHIMIA, 57, 537-541. https://doi.org/10.2533/000942903777679037
[45]  Ikemoto, T., Tu, N.P.C., Okuda, N., Iwata, A., Omori, K., Tanabe, S., et al. (2007) Biomagnification of Trace Elements in the Aquatic Food Web in the Mekong Delta, South Vietnam Using Stable Carbon and Nitrogen Isotope Analysis. Archives of Environmental Contamination and Toxicology, 54, 504-515. https://doi.org/10.1007/s00244-007-9058-5
[46]  Tu, N.P.C., Ha, N.N., Ikemoto, T., Tuyen, B.C., Tanabe, S. and Takeuchi, I. (2008) Bioaccumulation and Distribution of Trace Elements in Tissues of Giant River Prawn Macrobrachium rosenbergii (Decapoda: Palaemonidae) from South Vietnam. Fisheries Science, 74, 109-119. https://doi.org/10.1111/j.1444-2906.2007.01474.x
[47]  Tu, N.P.C., Ha, N.N., Ikemoto, T., Tuyen, B.C., Tanabe, S. and Takeuchi, I. (2008) Regional Variations in Trace Element Concentrations in Tissues of Black Tiger Shrimp Penaeus Monodon (Decapoda: Penaeidae) from South Vietnam. Marine Pollution Bulletin, 57, 858-866. https://doi.org/10.1016/j.marpolbul.2008.02.016
[48]  Agusa, T., Inoue, S., Kunito, T., Minh, T.B., Ha, N.N., Tu, N.P.C., et al. (2009) Human Exposure to Arsenic from Groundwater in the Red River and Mekong River Deltas in Vietnam. Interna-tional Journal of Environmental Studies, 66, 49-57. https://doi.org/10.1080/00207230902759962
[49]  Niamnuy, C., Devahastin, S. and Soponronnarit, S. (2008) Changes in Protein Compositions and Their Effects on Physical Changes of Shrimp during Boiling in Salt Solution. Food Chemistry, 108, 165-175. https://doi.org/10.1016/j.foodchem.2007.10.058
[50]  Rawdkuen, S., Jaimakreu, M. and Benjakul, S. (2013) Physico-chemical Properties and Tenderness of Meat Samples Using Proteolytic Extract from Calotropis Procera Latex. Food Chemis-try, 136, 909-916. https://doi.org/10.1016/j.foodchem.2012.08.077
[51]  Mathiassen, J.R., Misimi, E., Bondø, M., Veliyu-lin, E. and Østvik, S.O. (2011) Trends in Application of Imaging Technologies to Inspection of Fish and Fish Products. Trends in Food Science & Technology, 22, 257-275. https://doi.org/10.1016/j.tifs.2011.03.006
[52]  Wang, C., Wang, S., He, X., Wu, L., Li, Y. and Guo, J. (2020) Combination of Spectra and Texture Data of Hyperspectral Imaging for Prediction and Vis-ualization of Palmitic Acid and Oleic Acid Contents in Lamb Meat. Meat Science, 169, Article ID: 108194. https://doi.org/10.1016/j.meatsci.2020.108194
[53]  Xu, W., Zhang, F., Wang, J., Ma, Q., Sun, J., Tang, Y., et al. (2022) Real-Time Monitoring of the Quality Changes in Shrimp (Penaeus vannamei) with Hyperspectral Imaging Technology dur-ing Hot Air Drying. Foods, 11, Article 3179. https://doi.org/10.3390/foods11203179
[54]  Li, D., Li, N., Dong, X., Tan, Z., Na, X., Liu, X., et al. (2022) Effect of Phytic Acid Combined with Lactic Acid on Color and Texture Deterioration of Ready-to-Eat Shrimps during Storage. Food Chemistry, 396, Article ID: 133702. https://doi.org/10.1016/j.foodchem.2022.133702
[55]  Wang, X., Xie, X., Zhang, T., Zheng, Y. and Guo, Q. (2022) Effect of Edible Coating on the Whole Large Yellow Croaker (Pseudosciaena crocea) after a 3-Day Storage at -18℃: With Emphasis on the Correlation between Water Status and Classical Quality Indices. LWT, 163, Article ID: 113514. https://doi.org/10.1016/j.lwt.2022.113514

Full-Text


Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133