ANALYSIS OF MICROPLASTIC CONTAMINATION IN VANAME SHRIMP (Litopenaeus vannamei) WITH DIFFERENT CULTIVATION METHODS

Puji Hastuti, Asih Fitriana Dewi, Defri Yona, Muhammad Mahmudi

Abstract


Vaname shrimp cultivation is inseparable from the use of plastic. Plastic will fragment into microplastics and pollute the environment. Water sources and cultivation methods are often the source of microplastics entering the cultivation environment. This study aims to determine microplastic pollution in three different cultivation methods, seen from the presence of microplastics in water, sediment, commercial feed, and whiteleg shrimp. Sampling was carried out for three months of December 2024 - February 2025 by testing microplastics in water, sediment, feed, gill organs, and the digestive tract of whiteleg shrimp during one cultivation cycle. The microplastics found amounted to 1,593 particles, 877 particles in water, 561 particles in sediment, 53 particles in feed, and 102 particles in shrimp samples. The microplastics found were in the form of films, fragments, fibers, and pellets with sizes between 10-600 μm. The average abundance of microplastics in water and sediment fluctuates depending on geographical and weather conditions. Microplastics in feed indicate the presence of microplastic sources from the monthly feeding process. Meanwhile, the abundance of microplastics in shrimp accumulates every month. The differences in microplastic abundance in the three methods indicate the presence of microplastic pollution originating from cultivation equipment, commercial feed, and water sources that have been contaminated with microplastics.


Keywords


Microplastic, Vaname , Cultivation, Methods

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References


Victoria, A. V. (2017). Microplastic Contamination in Freshwater. Chemical Engineering ITB, January, 1–10.

Utomo, E. A. T., & Muzaki, F. K. (2022). Bioaccumulation of Microplastics in Tilapia Fish Meat (Oreochromis niloticus) in Floating Net Cages of Ranu Grati, Pasuruan, East Java. 11(5).

Hidayat, N. F., Zainollah, M., Oktaviani, D., Swasti, P. R., Yuantomo, A., Adriansah, I. S., Hanif, A. A., Khusna, I., & Septi, F. M. L. (2019). Utilization of Plastic Waste into Household Crafts to Improve the Welfare of Residents of Pengos-A Gerbosari Samigaluh Kulon Progo. Proceedings of the Community Service Conference, 1, 101–104

Corcoran, P. L., Biesinger, M. C., & Grifi, M. (2009). Plastics and beaches: a degrading relationship. Marine pollution bulletin, 58(1), 80-84.

Wicaksono, E. A. (2022). The Threat of Microplastic Pollution in Aquaculture Activities in Indonesia. Journal of Fisheries and Marine Science, 5(June), 77–91.

Galafassi, S., Campanale, C., Massarelli, C., Uricchio, V. F., & Volta, P. (2021). Do freshwater fish eat microplastics? A review with a focus on effects on fish health and predictive traits of mps ingestion. Water (Switzerland), 13(16), 1–20.

Pratiwi, H. C., & Manan, A. (2015). Basic Histology Techniques on Gourami Fish (Osphronemus gouramy) [ The Basic Histology Technique of Gouramy Fish (Osphronemus gourami)]. Scientific Journal of Fisheries and Marine Sciences, 7(2), 153–158.

Timilsina, A., Adhikari, K., Yadav, A. K., Joshi, P., Ramena, G., & Bohara, K. (2023). Effects of microplastics and nanoplastics in shrimp: Mechanisms of plastic particle and contaminant distribution and subsequent effects after uptake. Science of The Total Environment, 894(June), 164999.

Afrianto, S., & Muqsith, A. (2014). Management of Whiteleg Shrimp Nauplius Production (Litopenaeus Vannamei) at the Shrimp Hatchery Installation of the Brackish Water Aquaculture Fisheries Center, Gelung, Situbondo, East Java. Journal of Fisheries Science, 5(2), 53–64.

Arsad, S., Afandy, A., Purwadhi, A. P., Maya V, B., Saputra, D. K., & Buwono, N. R. (2017). Study of Vaname Shrimp Culture (Litopenaeus vannamei) in Different Rearing System. Scientific Journal of Fisheries and Marine Sciences, 9(1), 1.

Andriyanto, F., Efani, A., & Riniwati, H. (2013). Analysis of Production Factors of Vannamei Shrimp ( Litopenaeus Vannamei ) Aquaculture Paciran Subdistrict Lamongan District , East Jav. ECSOFiM Journal, Vol. 1, No(1), 82–96

Arsad, S., Musa, M., Lusiana, E. D., Mahmudi, M., Buwono, N. R., & Bintoro, G. (2018). Community Empowerment to Increase Litopenaeus vannamei Productivity Towards Semi-Intensive System by Potential Analysis and Self-Feed Production. Agrokreatif Jurnal Ilmiah Pengabdian Kepada Masyarakat, 4(2), 156.

Boucher, J., & Friot, D. (2017). Primary microplastics in the oceans: A global evaluation of sources. In Primary microplastics in the oceans: A global evaluation of sources.

Sandra, S. W., & Radityaningrum, A. D. (2021). Study of Microplastic Abundance in Aquatic Biota. Journal of Environmental Science, 19(3), 638–648.

Fitriyah, A., Syafrudin, S., & Sudarno, S. (2022). Identification of Physical Characteristics of Microplastics in the Kalimas River, Surabaya, East Java. Indonesian Journal of Environmental Health, 21(3), 350–357.

Priscilla, V., & Patria, M. P. (2020). Comparison of microplastic abundance in aquaculture ponds of milkfish Chanos chanos (Forsskal, 1775) at Muara Kamal and Marunda, Jakarta Bay. IOP Conference Series: Earth and Environmental Science, 404(1).

Ramli, R., Yaqin, K., & Rukminasari, N. (2021). Microplastics contamination in green mussels Perna viridis in Pangkajene Kepulauan Waters, South Sulawesi, Indonesia. Akuatikisle: Jurnal Akuakultur, Pesisir Dan Pulau-Pulau Kecil, 5(1), 1–5.

Restiani, B. R. (2017). Initial Study of Microplastics in Sediment, Water and White Shrimp Bodies Originating from Ponds in the Tapak Area of Semarang. Angewandte Chemie International Edition, 6(11), 951–952., 5–24.

Yona, D., Zahran, M. F., Fuad, M. A. Z., Prananto, Y. P., & Harlyan, L. I. (2021). Microplastics in waters: Types, sampling methods, and laboratory analysis. Universitas Brawijaya Press.

Masura, J., Baker, J., Foster, G., & Arthur, C. (2015). Laboratory Methods for the Analysis of Microplastics in the Marine Environment: Recommendations for quantifying synthetic particles in waters and sediments. NOAA Technical Memorandum NOS-OR&R-48.

Boerger, C. M., Lattin, G. L., Moore, S. L., & Moore, C. J. (2010). Plastic ingestion by planktivorous fishes in the North Pacific Central Gyre. Marine Pollution Bulletin, 60(12), 2275–2278.

Febriani, I. S., Amin, B., & Fauzi, M. (2020). Distribution of microplastics in the waters of Bengkalis Island, Bengkalis Regency, Riau Province. Depik, 9(3), 386–392.

Ayuningtyas, W. C., Yona, D., S, S. H. J., & Iranawati, F. (2019). Abundance of Microplastics in Waters in Banyuurip, Gresik, East Java. JFMR-Journal of Fisheries and Marine Research, 3(1), 41-45.

Pradiptaadi, B. P. A., & Fallahian, F. (2022). Analysis of microplastic abundance in water and sediment in the lower reaches of the Brantas River Basin. Environmental Pollution Journal, 2(1).

Browne, M. A., Niven, S. J., Galloway, T. S., Rowland, S. J., & Thompson, R. C. (2013). Microplastic moves pollutants and additives to worms, reducing functions linked to health and biodiversity. Current Biology, 23(23), 2388–2392.

Browne, M. A. 2015. Sources and Pathways of Microplastics to Habitats. Marine Anthropogenic Litter. Springer International Publishing. 229–244.

Azizah, P., Ridlo, A., & Suryono, C. A. (2020). Microplastics in Sediments on Kartini Beach, Jepara Regency, Central Java. Journal of Marine Research, 9(3), 326-332.

Anggiani, M (2020).Potential of Microorganisms As Microplastic Bioremediation Agents in the Sea. Ocean, 45(2), 40-49.

Dewi, I. S., Budiarsa, A. A., & Ritonga, I. R. (2015). Distribution of microplastics in sediments in Muara Badak, Kutai Kartanegara Regency. Depik, 4(3).

Syamsuddin, R. (2022). Indonesia Towards Sustainable Aquaculture. Proceedings of the National Symposium on Marine Affairs and Fisheries, 9, 1-14.

Thiele, C. J., Hudson, M. D., Russell, A. E., Saluveer, M., & Sidaoui-Haddad, G. (2021). Microplastics in fish and fishmeal: an emerging environmental challenge? Scientific Reports, 11(1), 1–12.

Neves, D., Sobral, P., Ferreira, J. L., & Pereira, T. (2015). Ingestion of microplastics by commercial fish off the Portuguese coast. Marine pollution bulletin, 101(1), 119-126.

Baalkhuyur, F. M., Qurban, M. A., Panickan, P., & Duarte, C. M. (2020). Microplastics in fishes of commercial and ecological importance from the Western Arabian Gulf. Marine Pollution Bulletin, 152, 110920.

Mahamud, A. G. M. S. U., Anu, M. S., Baroi, A., Datta, A., Khan, M. S. U., Rahman, M., Tabassum, T., Tanwi, J. T., & Rahman, T. (2022). Microplastics in fishmeal: A threatening issue for sustainable aquaculture and human health. Aquaculture Reports, 25(June), 101205

Akmal, Y., Hakim, S., Humairani, R., Irfannur, I., Muliari, M., & Rinaldi, R. (2022). The Use of High Density Polyethylene (HDPE) in the Mina Laut Budidaya Group in Improving the Management of Vaname Shrimp (Litopenaeus vannamei) Cultivation. Solma Journal, 11(3), 609-619.

Tang, K. H. D. (2023). Climate change and plastic pollution: A review of their connections. Tropical Environment, Biology, and Technology, 1(2), 110-120.




DOI: http://dx.doi.org/10.12962%2Fj25481479.v10i2.22865

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