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Tytuł artykułu

Microplastics in Grouper Fish (Genera Epinephelus) Gastrointestinal Tract from Pramuka Island, Seribu Islands, Indonesia

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Marine fishery products have been contaminated with microplastic (MPs), including molluscs, crustacean, and fish. The study aimed to analyze the number and types of MPs in the digestive tract and sediment, correlation between number of MPs with total body length, and estimated uptake of MPs in the fish from sediment using Bioaccumulation Factor (BAF). The method of determining sampling point involved purposive sampling and direct observation at Pramuka Island, Seribu Islands, Indonesia. Groupers fish were found in 20 individuals with 4 species of Epinephelus areolatus, E. ongus, E. sexfasciatus, and E. fuscoguttatus. The number of MPs found in the gastrointestinal tract of Epinephelus is 1648 particles with 3 types: fiber, fragment, and pellet. The highest number of MPs in the sediment was at dock and the lowest was at Gosong Pramuka Island. The numbers of MPs in the digestion tract does not affect the body length of individual species. The BAF value indicates result that the MPs uptake in sediments to gastrointestinal tract of Epinephelus grouper is low. All samples of the Epinephelus grouper were contaminated with MPs.
Słowa kluczowe
Rocznik
Strony
194--205
Opis fizyczny
Bibliogr. 75 poz., rys., tab.
Twórcy
autor
  • Department of Biology, Faculty of Science and Technology, State Islamic University Syarif Hidayatullah, Tangerang Selatan, Banten, 15412, Indonesia
  • Department of Biology, Faculty of Science and Technology, State Islamic University Syarif Hidayatullah, Tangerang Selatan, Banten, 15412, Indonesia
  • Department of Biology, Faculty of Science and Technology, State Islamic University Syarif Hidayatullah, Tangerang Selatan, Banten, 15412, Indonesia
Bibliografia
  • 1. Abd-Allah E., El-Ganainy A., Osman, A. 2015. Age and Growth of the Areolate Grouper Epinephelus areolatus from the Gulf of Suez. American Journal of Life Sciences, 3, 7–12.
  • 2. Akhbarizadeh R., Moore F., Keshavarzi B. 2017. Investigating a probable relationship between microplastics and potentially toxic elements in fish muscles from northeast of Persian Gulf. Environ Pollut, 232, 154–163.
  • 3. Allen G., Steene R., Humann P., Deloach N. 2003. Reef fish identification Tropical Pacific. Florida: New World Publications, Inc.
  • 4. Al-Lihaibi S., Al-Mehmadi A., Alarif W.M., Bawakid N.O., Kallenborn R., Ali A. M. 2019. Microplastics in sediments and fish from the Red Sea coast at Jeddah (Saudi Arabia). Environmental Chemistry, 16, 641–650.
  • 5. AndradyA.L. 2011. Microplastics in the marine environment. Marine Pollution Bulletin, 62, 1596–1605.
  • 6. Arnot J. A., Gobaz F. 2006. A review of bioconcentration factor (BCF) and bioaccumulation factor (BAF) assessments for organic chemical in aquatic organisms. Environmental Reviews, 14, 257–297.
  • 7. Asadi M.A., Ritonga Y.A.P., Yona D., Hertika A.M.S. 2019. Vertical distribution of microplastics in coastal sediments of Bama Resort, Baluran National Park, Indonesia. Nature Environment and Pollution Technology, 18, 1169–1176.
  • 8. Assuyuti Y.M., Zikrillah R.B., Tanzil M.A., Banata A., Utami P. 2018. Distribution and types of marine debris and its correlation with coral reef ecosystem of Pramuka, Panggang, Air, and Kotok Besar Islands in the Thousand Islands, Jakarta. Majalah Ilmiah Biologi Biosfera: A Scientific Journal, 35, 91–102. [in Indonesian]
  • 9. Avio C.G., Gorbi S., Milan M., Benedetti M., Fattorini D., d’Errico G., Pauletto M., Bargelloni L., Regoli F. 2015. Pollutants bioavailability and toxycological risk from microplastics to marine mussels. Environmental Pollutions, 198, 211–222.
  • 10. Baalkhuyur F.M., Dohaish E.A.B., Elhalwagy M.E.A., Alikunhi N.M., AlSuwailem A.M., Røstad A., Coker D.J., Berumen M.L., Duarte C.M. 2018. Microplastic in the gastrointestinal tract of fishes along the Saudi Arabian Red Sea coast. Mar Pollut Bull., 131, 407–415.
  • 11. Bagaev A., Mizyuk A., Khatmullina L., Isachenko I., Chubarenko I. 2017. Anthropogenic fibres in the Baltic Sea water column: Field data, laboratory and numerical testing of their motion. Sci Total Environ., 599–600, 560–571.
  • 12. Bessa F., Barria P., Neto J.M., Frias J., Otero V., Sobral P., Marques J.C. 2018. Occurrence of miroplastics in commercial fish from a natural estuarine environment. Marine Pollution Bulletin, 128, 575–584.
  • 13. BPS Kabupaten Kepulauan Seribu. Seribu Islands in Figure 2020. https://kepulauanseribukab.bps.go.id/publication/2020/05/20/12fa7e5bf33212506cfcaf5d/kabupaten-kepulauan-seribu-dalam-angka-2020.html.
  • 14. Browne M.A., Crump P., Niven S.J., Teuten E., Tonkin A., Galloway T.S., Thompson R.C. 2011. Accumulation of microplastic on shrolines worldwide: sources and sinks. Environmental Science Technology, 45, 9175–9179.
  • 15. Carbery M., O’Connor W., Thavamani P. 2018. Trophic trensfer of microplastics and mixed contaminants in the marine food web and implications for human health. Environmental International, 115, 400–409.
  • 16. Cordova M.R., Purwiyanto A.I.S., Suteja Y. 2019. Abundance and characteristics of microplastics in the northern coastal waters of Surabaya, Indonesia. Mar Pollut Bull, 142, 183–188.
  • 17. Critchell K., Hoogenboom M.O. 2018. Effects of microplastic exposure on the body condition and behaviour of planktonivorous reef fish (Acanthochromis polyacanthus). PLoS ONE, 13(3), e0193308.
  • 18. Dowarah K., Devipriya S.P. 2019. Microplastic prevalence in the beaches of Puducherry, India and its correlation with fishing and tourism/recreational activities. Mar Pollut Bull., 148, 123–133.
  • 19. Dwiyitno, Wibowo S., Januar H.I., Andayani F., Yusuf G., Barokah G.R., Putri A.K. 2018. Threats of marine debris and microplastic contamination in aquatic environment and fishery products. Re- search and Product Processing Center Marine and Fisheries Biotechnology. No. PB04-4-2018. 2018. Jakarta. [in Indonesian]
  • 20. Erlangga H.R. 2021. Partitioning diet intra and inter-spesific competition of two kerapus (Epinephelus malabaricus and Epinephelus areolatus) using DNA metabarcoding. Master’s Thesis. IPB University, Bogor, Indonesia. [in Indonesian]
  • 21. Falahudin D., Cordova M.R., Sun X., Yogaswara D., Wulandari I., Hindarti D., Arifin Z. 2020. The first occurrence, spatial distribution and characteristics of microplastic particles in sediments from Banten Bay, Indonesia. Sci Total Environ., 705, 135304.
  • 22. Freitas M.O., Abilhoa V., Spach H.L., Minte-Vera C.V., Francini-Filho R.B., Kaufman L., Moura R.L. 2017. Feeding ecology of two sympatric species of large-sized groupers (Perciformes: Epinephelidae) on Southwestern Atlantic coralline reefs. Neotrop Ichthyol., 15, e160047.
  • 23. Fishbase. 2019. https://www.fishbase/summer/Epinephelus-sexfasciatus.html. (access 16 December 2019)
  • 24. Frias J., Nash R., Pagter E., O’Connor I. 2018. Standardised protocol for monitoring microplastics in sediments. JPI Oceans BASEMAN Project.
  • 25. Galloway T.S., Cole M., Lewis C. 2017. Interactions of microplastic debris throughout the marine ecosystem. Nature Ecology & Evolution, 1(5), 0116.
  • 26. Garnier Y., Jacob H., Guerra A.S., Bertucci F., Lecchini D. 2019. Evaluation of microplastic ingestion by tropical fish from Moorea Island, French Polynesia. Mar Pollut Bull., 140, 165–170.
  • 27. GESAMP. 2015. Sources, fate and effects of microplastics in the marine environment: a global assessment. (Kershaw, P. J., ed.). (IMO/FAO/UNESCO-IOC/ UNIDO/WMO/IAEA/UN/UNEP/UNDP Joint Group of Experts on the Scientific Aspects of Marine Environmental Protection). Rep. Stud. GESAMP, 90, 96.
  • 28. Gibran F.Z. 2007. Activity, habitat use, feeding behavior, and diet of four sympatric species of Serranidae (Actinopterygii: Perciformes) in southeastern Brazil. Neotrop Ichthyol., 5, 387–398.
  • 29. Goldberg E.D. 1995. The health of the ocean-a 1994 update. Chemical Ecology, 10, 3–8.
  • 30. Gove J.M., Whitney J.L., McManus M.A., Lecky J., Carvalho F.C., Lynch J.M., Li J., Neubauer P., Smith K.A., Phipps J.E., Kobayashi D.R., Balagso K.B., Contreras E.A., Manuel M.E., Merrifield M.A., Polovina J.J., Asner G.P., Maynard J.A., Williams G. J. 2019. Prey-size plastics are invading larval fish nurseries. PNAS, 116, 24143–24149.
  • 31. Graham E.R., Thompson J.T. 2009. Deposit and suspension-feeding sea cucumbers (Echinodermata) ingest plastic fragments. Journal of Experimental Marine Biology, 368, 22–29.
  • 32. Gündoğdu S., Çevik C., Ataş N.T. 2020. Occurrence of microplastics in the gastrointestinal tracts of some edible fish species along the Turkish coast. Turk J Zool., 44, 312–323.
  • 33. Handyman D.I.W., Purba N.P., Pranowo W.S., Harahap S.A., Dante I.F., Yuliadi L.P.S. 2019. icroplastics patch based on hydrodynamic modeling in the north Indramayu, Java sea. Pol J Environ Stud., 28, 135–142.
  • 34. Hantoro I., Löhr A., Van Belleghem F.G.A.J., Widianarko B., RagasA.M.J. 2019. Microplastics in coastal areas and seafood: implications for food safety. Food Additives & Contaminants: Part A, 36, 674–711.
  • 35. Hapitasari D.N. 2016. Analysis of microplastic content in sand and demersal fish: Snapper (Lutjanus sp.) and Grouper Fish ( Epinephelus sp.) at Ancol, Palabuhanratu, and Labuan Beaches. Undergraduated Thesis. IPB University, Bogor, Indonesia.
  • 36. HastutiA.R., Lumbanbatu D.T.F., Wardiatno Y. 2019. The presence of microplastics in the digestive tract of commercial fishes off Pantai Indah Kapuk coast, Jakarta, Indonesia. Biodiversitas, 20, 1233–1242.
  • 37. Heemstra P.C., Randall J.E. 1993. FAO species catalogue: An annotated and illustrated catalogue of the grouper, rockcod, hind, coral grouper, and lyretail species known to date. Volume 16 Groupers of the world (Family Serranidae, subfamily Epinephelinae). Rome (IT): FAO of the United Nations, 379.
  • 38. Hildago-Ruz V., Gutow L., Thompson R.C., Thiel M. 2012. Microplastics in the marine environment: a review of the methods used for identification and quantification. Environmental Science & Technology, 46, 3060–3075.
  • 39. Holmes L.A., Turner A., Thompson R.C. 2012. Adsorption of metal trace to plastic resin pellets in the marine environment. Environmental Pollution. 160: 42–48.
  • 40. Jatmiko I., Rochman F., Arnenda G. L. 2018. Distribution and abundance of fish larvae in south of alas strait, West Nusa Tenggara. Ilmu Kelautan: Indonesian Journal of Marine Sciences, 23, 87–92. [in Indonesian]
  • 41. Jâms I.B., Windsor F.M., Poudevigne-Durance T., Ormerod S.J., Durance I. 2020. Estimating the size distribution of plastics ingested by animals. Nat Commun, 11, 1594.
  • 42. Karbalaei S., Golieskardi A., Hazilawati, Abdulwahid S., Hanachi P., Walker T.R., Karami A. 2019. Abudance and characteristics of microplastics in commercial marine fish from Malaysia. Marine Pollution Bulletin, 148, 5–15.
  • 43. Karthik R., Robin R.S., Purvaja R., Ganguly D., Anandavelu I., Raghuraman R., Hariharan G., Ramakrishna A., Ramesh R. 2018. Microplastics along the beaches of southeast coast of India. Sci Total Environ, 645, 1388–1399.
  • 44. KKP. Marine and Fisheries in Figures 2018. The Center for Data, Statistics and Information. Jakarta. 2018, xxvi + 356. [in Indonesian]
  • 45. Li C., GanY., Zhang C., He H., Fang J., Wang L., Wang Y., Liu J. 2021. Microplastic communities, in different environments: Differences, links, and role of diversity index in source analysis. Water Res., 188, 116574.
  • 46. Liboiron M., Melvin J., Richárd N., Saturno J., Ammendolia J., Liboiron F., Charron L., Mather C. 2019. Low incidence of plastic ingestion among three fish species significant for human consumption on the island of Newfoundland, Canada. Mar Pollut Bull., 141, 244–248.
  • 47. Lie S., Suyoko A., Effendi A.R., Ahmada B., Aditya H.W., Sallima I.R., Arisudewi N.P.A.N., Hadid N.I., Rahmasari N., Reza A. 2018. Measurement of microplastic density in the Karimunjawa National Park, Central Java, Indonesia. Ocean Life, 2, 54–58.
  • 48. Lima A.R.A., Barletta M., Costa M.F. 2015. Seasonal distribution and interactions between plankton and microplastics in a tropical estuary. Estuar Coast Shelf S., 165, 213–225.
  • 49. Lusher A.L., Hollman P.C.H., Mendoza-Hill J.J. 2017a. Microplastics in fisheries and aquaculture: status of knowledge on their occurrence and implications for aquatic organisms and food safety. Rome, Italy: FAO Fisheries and Aquaculture Technical Paper, 615.
  • 50. Lusher A.L., Welden N.A., Sobral P., Cole M. 2017b. Sampling, isolating and identifying microplastics ingested by fish and invertebrates. Anal Methods-UK, 9, 1346–1360.
  • 51. Maharani A., Purba N.P., Faizal I. 2018. Occurrence of beach debris in Tunda Island, Banten, Indonesia. E3S Web of Conferences, 47, 1–12.
  • 52. Manalu A.A., Hariyadi S., Wardiatno Y. 2017. Microplastics abundance in coastal sedimets of Jakarta Bay, Indonesia. AACL Bioflux. 10, 1164–1173.
  • 53. Miller M.E., Hamann M., Kroon F.J. 2020. Bioaccumulation and biomagnification of microplastics in marine organisms: A review and meta-analysis of current data. PlosOne, 15(10), e0240792.
  • 54. Mugilarasan M., Venkatachalapathy R., Sharmila N. 2015. Occurrence of microplastic resin pellets in sediments around Agatti island, India. International Journal of Recent Scientific Research, 6, 7198–7201.
  • 55. Nanami A., Sato T., Takebe T., Teruya K., Soyano K. 2013. Microhabitat association in white-streaked grouper Epinephelus ongus: importance of Acropora spp. Mar Biol., 160, 1511–1517.
  • 56. Patria M.P., Santoso C.A., Tsabita N. 2020. Microplastic ingestion by Periwinkle Snail Littoraria scabra and mangrove crab Metopograpsus quadridentata in Pramuka Island, Jakarta Bay, Indonesia. Sains Malays, 49, 2151–2158.
  • 57. Pegado T.S.S., Schmid K., Winemiller K.O., Cincinelli A., Dei L., Giarrizzo T., Chelazzi D. 2018. First evidence of microplastic ingestion by fishes from the Amazon River Estuary. Mar Pollut Bull., 133, 814–821.
  • 58.Pettipas S., Bernier M., Walker T.R. 2016. A Canadian policy framework to mitigate plastic marine pollution. Marine Policy, 68, 117–122.
  • 59. Possatto F.E., Barletta M., Costa M.F., Ivar do Sul J.A., Dantas D.V. 2011. Plastic debris ingestion by marine catfish: An unexpected fisheries impact. Marine Pollution Bulletin, 62, 1098–1102.
  • 60. Priscilla V., Sedayu A., Patria M.P. 2019. Microplastic abundance in the water, seagrass, and sea hare Dolabella auricularia in Pramuka Island, Seribu Islands, Jakarta Bay, Indonesia. J Phys Conf Ser., 1402, 033073.
  • 61. Reñones O., Polunin N.V.C., Goni R. 2002. Size related dietary shifts ofEpinephelus marginatus in a western Mediterranean littoral ecosystem: an isotope and stomach content analysis. J Fish Biol., 61, 122–137.
  • 62. Salini J.P., Blaber S.J.M., Brewer D.T. 1994. Diets of trawled predatory fish of the Gulf of Carpentaria, Australia, with particular reference to predation on prawns. Aust J Mar Fresh Res., 45, 397–411.
  • 63. Sayogo B.H., Patria M.P., Takarina N.D. 2020. The density of microplastic in sea cucumber (Holothuria sp.) and sediment at Tidung Besar and Bira Besar island, Jakarta. J Phys Conf Ser. 1524, 012064.
  • 64. Sbrana A., Valente T., Scacco U., Bianchi J., Silvestri C., Palazzo L., de Lucia G.A., Valerani C., Ardizzone G., Matiddi M. 2020. Spatial variability and influence of biological parameters on microplastic ingestion byBoops boops (L.) along the Italian coasts (Western Mediterranean Sea). Environ Pollut., 263, 114429.
  • 65. Septian F.M., Purba N.P., Agung M.U.K., Yuliadi L.P.S., Akuan L.F., Mulyani P.G. 2018. Spatial distribution of microplastics in sediments of Pangandaran Beach, West Java. Journal Geomaritim Indonesia, 1, 1–8. [in Indonesian]
  • 66. Shabaka S.H., Marey R.S., Ghobashy M., Abushady A.M., Ismail G.A., Khairy H.M. 2020. Thermal analysis and enhanced visual technique for assessment of microplastics in fish from an Urban Harbor, Mediterranean Coast of Egypt. Mar Pollut Bull., 159, 111465.
  • 67. Sussarellu R., Suquet M., Thomas Y., Lambert C., Fabioux C., Pernt M.E.J., Le Göic N., Quillien V., Mingant C., Epelboin Y., Corporeau C. 2016. Oyster reproduction is affected by exposure to polystyrene microplastics. PNAS, 113, 2430–2435.
  • 68. Tanaka K., Takada H. 2016. Microplastic fragments and microbeads in digestive tracts of planktivorous fish from urban coastal waters. Sci Rep-UK, 6, 34351.
  • 69. Tubagus W., Sunarto, Ismail M.R., Yuliadi L.P.S. 2020. Identification of Microplastic Composition on Clams (Gafrarium tumidum) and Sediments in Pari Island, Seribu Islands, Jakarta. Ilmu Kelautan: Indonesian Journal of Marine Sciences, 25, 115–120. [in Indonesian]
  • 70. Wang X., Zheng H., Zhao J., Luo X., Wang Z., Xing B. 2020. Photodegradation elevated the toxicity of polystyrene microplastics to grouper (Epinephelus moara) through disrupting hepatic lipid homeostasis. Environ Sci Technol., 54, 6202–6212.
  • 71. Watts A.J., Lewis C., Goodhead R.M., Beckett S.J., Moger J., Tyler C.R., Galloway T.S. 2014. Uptake and retention of microplastics by the shore crabs Carcinus maenas. Environmental Science Technology, 49, 14597–14604.
  • 72. Wright S.L., Thompson R.C., Galloway T.S. 2013. The physical impacts of microplastic on marine organisms: a review. Environmental Pollution, 178, 483–492.
  • 73. Xu J., Li D. 2021. Feeding behavior responses of a juvenile hybrid grouper, Epinephelus fuscoguttatus♀ × E. lanceolatus♂, to microplastics. Environ Pollut., 268, 115648.
  • 74. Yona D., Maharani M.D., Cordova M.R., Elvania Y., Dharmawan I.W.E. 2020. Microplastics analysis in the gill and gastrointestinal tract of coral reef fishes from three small outer islands of Papua, Indonesia: A preliminary study. Jurnal Ilmu dan Teknologi Kelautan Tropis., 12, 495–505. [in Indonesian]
  • 75. Zhang K., Gong W., Lv J., Xiong X., Wu C. 2015. Accumulation of floating microplastics behind the Three Gorges Dam. Environmental Pollution, 204, 117–123.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e16a3001-8fb9-40e6-ab5b-6e1bc743e696
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