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Literature Review: Dampak Mikroplastik Terhadap Lingkungan Pesisir, Biota Laut dan Potensi Risiko Kesehatan

1Mahasiswa Program Studi Magister Kesehatan Lingkungan, Fakultas Kesehatan Masyarakat, Universitas Airlangga, Surabaya 60115, Jawa Timur, Indonesia

2Departemen Kesehatan Lingkungan, Fakultas Kesehatan Masyarakat, Universitas Airlangga, Surabaya 60115, Jawa Timur, Indonesia

Open Access Copyright 2023 Jurnal Kesehatan Lingkungan Indonesia under http://creativecommons.org/licenses/by-sa/4.0.

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Abstract

Latar Belakang: Sampah plastik masih menjadi masalah berat di dunia. Sampah plastik adalah akumulasi benda-benda plastik (misalnya, botol plastik dan banyak lagi) di lingkungan bumi yang berdampak negatif terhadap kehidupan makhluk hidup. Sebagian besar degradasi menghasilkan serat dan mikroplastik berserabut. Mikroplasstik berpotensi menyebabkan gangguan metabolism, neurotoksisitas dan peningkatan risiko kanker pada manusia. Selain itu mikroplastik dapat menimbulakn potensi risiko kesehatn seperti : gangguan kekebalan, neurotoksisitas, gangguan reproduksi serta karsinogenik. Kajian literatur yang akan dilakukan mengenai dampak mikroplastik terhadap lingkungan pesisir, biota serta potensi risiko kesehatan yang disebabkan oleh paparan mikroplastik.

Metode: Penelitia ini merupakan sebuah literature Review. Database yang digunakan dalam pencarian artikel ini menggunakan Google Scholar dan ScienceDirect dengan kata kunci "microplastic, plastic waste effect, coastal microplastic, microplastic marine fish, microplastic and health effect", yang telah dilakukan oleh peneliti-peneliti sebelumnya baik dari dalam maupun luar negeri. Artikel yang didapatkan diseleksi sesuai topik mengenai pencemaran mikropalstik di wilayah pesisir, yang bisa di download, dan artikel yang terbit mulai 2018-2022. Artikel yang direview sebanyak 13 artikel yang relevan dan sesuai topik .

Hasil: Hasil review menemukan bahwa yang paling banyak terkontaminasi mikroplastik adalah biota laut sebanyak 8 Artikel yang ditemukan, bentuk mikroplastik yang paling banyak ditemukan adalah fiber dan fragment sebanyak 8 artikel yang ditemukan dan polimer mikroplastik yang ditemukan paling banyak polypropylene sebanyak 7 artikel. Jenis polimer mikropalstik yang terdeteksi berpotensi menyebabkan permasalahan kesehatan seperti gangguan metabolism, gangguan saluran pencernaan, gangguan fungsi hati, gangguan fungsi ginjal, kanker,  gangguan resporoduksi dan mudah lupa.

Simpulan: berdasarkan literature review yang dilakukan dapat disumpulakn bahwa mikropalstik sudah banyak mencemari lingkungan pesisir, sediment, air laur, dan biota laut yang berpotensi mengkontaminasi manusia dan berpotensi menyebabkan potensi risiko kesehatan seperti gangguan metabolisme, gangguan saluran pencernaan, gangguan fungsi hati, gangguan fungsi ginjal, kanker,  gangguan resporoduksi dan mudah lupa.

 

ABSTRACT

Literature Review: The Impact of Microplastics on Coastal Environments, Marine Life and Potential Health Risks

Background: Plastic waste is still a serious problem in the world. Plastic waste is the accumulation of plastic objects (for example, plastic bottles and more) in the earth's environment that negatively affect living things’ lives. Most degradation results in filamentous fibers and microplastics. Microplasstics can potentially cause metabolic disorders, neurotoxicity and an increased risk of cancer in humans. In addition, microplastics can pose potential health risks such as: immune disorders, neurotoxicity, reproductive disorders and carcinogenic. A literature review will be conducted on the impact of microplastics on coastal environments, biota and potential health risks caused by exposure to microplastics.

Method: This research is a literature review. The database used in searching this article uses Google Scholar and ScienceDirect with the keywords "microplastic, plastic waste effect, coastal microplastic, microplastic marine fish, microplastic and health effect", which has been done by previous researchers both from within and outside the country. The articles obtained are selected according to topics regarding microplastic pollution in coastal areas, which can be downloaded, and articles published from 2018-2022. The articles reviewed were 13 articles that were relevant and on-topic

Results: The results of the review found that the most contaminated with microplastics were marine life as many as 8 articles  found, the most forms of microplastics found were fibers and fragments as many as 8 articles found and microplastic polymers found the most polypropylene as many as 7 articles. The types of microplastic polymers detected have the potential to cause health problems such as metabolic disorders, digestive tract disorders, liver function disorders, kidney function disorders, cancer, resporoduction disorders and forgetfulness.

Conclusion: Based on the literature review conducted, it can be concluded that microplastics have polluted many coastal environments, sediments, water, and marine life that have the potential to contaminate humans and potentially cause potential health risks such as metabolic disorders, digestive tract disorders, liver function disorders, kidney function disorders, cancer, reproductive disorders and forgetfulness.

 

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Keywords: Lingkungan Pesisir; Mikroplastik; Biota Laut dan Risiko Kesehatan

Article Metrics:

  1. Westminster C of. Plastic waste – everything you need to know [Internet]. [cited 2022 Aug 5]. Available from: https://cleanstreets.westminster.gov.uk/plastic-waste-complete-guide/
  2. Abdulraheem M. Tackling Increasing Plastic Waste [Internet]. 2021 [cited 2022 Aug 5]. Available from: https://datatopics.worldbank.org/what-a-waste/tackling_increasing_plastic_waste.html
  3. OECD. Plastic pollution is growing relentlessly as waste management and recycling fall short, says OECD [Internet]. 2022 [cited 2022 Aug 5]. Available from: https://www.oecd.org/newsroom/plastic-pollution-is-growing-relentlessly-as-waste-management-and-recycling-fall-short.htm
  4. Martín-Lara MA, Godoy V, Quesada L, Lozano EJ, Calero M. Environmental status of marine plastic pollution in Spain. Mar Pollut Bull [Internet]. 2021;170:112677. Available from: https://doi.org/10.1016/j.marpolbul.2021.112677
  5. Citrasari N, Oktavitri NI, Aniwindira NA. Analysis of the Generation Rate and Composition of Waste in the Kenjeran Coastal Settlement, Surabaya. Berk Penelit Hayati J Biol Res [Internet]. 2013 Oct 21;18(1 SE-Articles). Available from: https://ojs.berkalahayati.org/index.php/jurnal/article/view/161
  6. Høiberg MA, Woods JS, Verones F. Global distribution of potential impact hotspots for marine plastic debris entanglement. Ecol Indic. 2022;135(December 2021)
  7. Neto JGB, Rodrigues FL, Ortega I, Rodrigues L dos S, Lacerda AL d. F, Coletto JL, et al. Ingestion of plastic debris by commercially important marine fish in southeast-south Brazil. Environ Pollut. 2020;267
  8. Cordova MR. Plastic Pollution in the Ocean. Oseana. 2017;42(3):21–30
  9. Khoironi A, Hadiyanto H, Anggoro S, Sudarno S. Evaluation of polypropylene plastic degradation and microplastic identification in sediments at Tambak Lorok coastal area, Semarang, Indonesia. Mar Pollut Bull [Internet]. 2020;151(January):110868. Available from: https://doi.org/10.1016/j.marpolbul.2019.110868
  10. Capparelli M V., Molinero J, Moulatlet GM, Barrado M, Prado-Alcívar S, Cabrera M, et al. Microplastics in rivers and coastal waters of the province of Esmeraldas, Ecuador. Mar Pollut Bull. 2021;173(August)
  11. Yagi M, Kobayashi T, Maruyama Y, Hoshina S, Masumi S, Aizawa I, et al. Microplastic pollution of commercial fishes from coastal and offshore waters in southwestern Japan. Mar Pollut Bull [Internet]. 2022;174(January):113304. Available from: https://doi.org/10.1016/j.marpolbul.2021.113304
  12. Sainio E, Lehtiniemi M, Setälä O. Microplastic ingestion by small coastal fish in the northern Baltic Sea, Finland. Mar Pollut Bull. 2021;172(August)
  13. Rowlands E, Galloway T, Cole M, Peck VL, Posacka A, Thorpe S, et al. Vertical flux of microplastic, a case study in the Southern Ocean, South Georgia. Mar Pollut Bull [Internet]. 2023;193:115117. Available from: https://doi.org/10.1016/j.marpolbul.2023.115117
  14. Fred-Ahmadu OH, Ayejuyo OO, Benson NU. Microplastics distribution and characterization in epipsammic sediments of tropical Atlantic Ocean, Nigeria. Reg Stud Mar Sci [Internet]. 2020;38:101365. Available from: https://doi.org/10.1016/j.rsma.2020.101365
  15. Li L, Zuo J, Duan X, Wang S, Hu K, Chang R. Impacts and mitigation measures of plastic waste: A critical review. Environ Impact Assess Rev [Internet]. 2021;90(July):106642. Available from: https://doi.org/10.1016/j.eiar.2021.106642
  16. Kehinde O, Ramonu OJ, Babaremu KO, Justin LD. Plastic wastes: environmental hazard and instrument for wealth creation in Nigeria. Heliyon [Internet]. 2020;6(10):e05131. Available from: https://doi.org/10.1016/j.heliyon.2020.e05131
  17. Barboza LGA, Dick Vethaak A, Lavorante B, Lundebye AK, Guilhermino L. Marine microplastic debris: An emerging issue for food security, food safety and human health. Mar Pollut Bull [Internet]. 2018;133(January):336–48. Available from: https://doi.org/10.1016/j.marpolbul.2018.05.047
  18. Daniel DB, Ashraf PM, Thomas SN. Microplastics in the edible and inedible tissues of pelagic fishes sold for human consumption in Kerala, India. Environ Pollut [Internet]. 2020;266:115365. Available from: https://doi.org/10.1016/j.envpol.2020.115365
  19. Daud A, Birawida AB, Amqam H, Tahir A, Hajrah N, Nurtang L. Risk Analysis of Microplastic in Fish (Nemiptus Japonicas & Rastrelliger Sp.) in Communities in the Coast Area of Tamasaju, Galesong Takalar. Med Leg Updat. 2021;21(2):196–203
  20. Yang X, Man YB, Wong MH, Owen RB, Chow KL. Environmental health impacts of microplastics exposure on structural organization levels in the human body. Sci Total Environ [Internet]. 2022;825:154025. Available from: https://doi.org/10.1016/j.scitotenv.2022.154025
  21. Rahman A, Sarkar A, Yadav OP, Achari G, Slobodnik J. Potential human health risks due to environmental exposure to nano- and microplastics and knowledge gaps: A scoping review. Sci Total Environ [Internet]. 2021;757:143872. Available from: https://doi.org/10.1016/j.scitotenv.2020.143872
  22. Do MT, Chang VC, Mendez MA, de Groh M. Urinary bisphenol a and obesity in adults: Results from the canadian health measures survey. Heal Promot Chronic Dis Prev Canada. 2017;37(12):403–12
  23. Jadhav EB, Sankhla MS, Bhat RA, Bhagat DS. Microplastics from food packaging: An overview of human consumption, health threats, and alternative solutions. Environ Nanotechnology, Monit Manag [Internet]. 2021;16(May):100608. Available from: https://doi.org/10.1016/j.enmm.2021.100608
  24. Park EJ, Han JS, Park EJ, Seong E, Lee GH, Kim DW, et al. Repeated-oral dose toxicity of polyethylene microplastics and the possible implications on reproduction and development of the next generation. Toxicol Lett [Internet]. 2020;324(November 2019):75–85. Available from: https://doi.org/10.1016/j.toxlet.2020.01.008
  25. Patil PB, Maity S, Sarkar A. Potential human health risk assessment of microplastic exposure: current scenario and future perspectives. Environ Monit Assess [Internet]. 2022;194(12). Available from: https://doi.org/10.1007/s10661-022-10539-1
  26. Al A, Agung T, Prasetya E, Ratna I, Ahmad M. Science of the Total Environment Microplastics in human food chains : Food becoming a threat to health safety. Sci Total Environ [Internet]. 2023;858(October 2022):159834. Available from: https://doi.org/10.1016/j.scitotenv.2022.159834
  27. Sincihu Y, Lusno MFD, Mulyasari TM, Elias SM, Sudiana IK, Kusumastuti K, et al. Wistar Rats Hippocampal Neurons Response to Blood Low-Density Polyethylene Microplastics: A Pathway Analysis of SOD, CAT, MDA, 8-OHdG Expression in Hippocampal Neurons and Blood Serum Aβ42 Levels. Neuropsychiatr Dis Treat. 2023;19:73–83
  28. Ragusa A, Svelato A, Santacroce C, Catalano P, Notarstefano V, Carnevali O, et al. Plasticenta: First evidence of microplastics in human placenta. Environ Int [Internet]. 2021;146:106274. Available from: https://doi.org/10.1016/j.envint.2020.106274
  29. Lee DH. Evidence of the possible harm of endocrine-disrupting chemicals in humans: Ongoing debates and key issues. Endocrinol Metab. 2018;33(1):44–52
  30. Gurjar UR, Xavier KAM, Shukla SP, Jaiswar AK, Deshmukhe G, Nayak BB. Microplastic pollution in coastal ecosystem off Mumbai coast, India. Chemosphere [Internet]. 2022;288(P1):132484. Available from: https://doi.org/10.1016/j.chemosphere.2021.132484
  31. Yuan F, Ding Y, Wang Y, Yu W, Zou X, Chen H, et al. Microplastic pollution in Larimichthys polyactis in the coastal area of Jiangsu, China. Mar Pollut Bull [Internet]. 2021;173(PB):113050. Available from: https://doi.org/10.1016/j.marpolbul.2021.113050
  32. Guilhermino L, Martins A, Lopes C, Raimundo J, Vieira LR, Barboza LGA, et al. Microplastics in fishes from an estuary (Minho River) ending into the NE Atlantic Ocean. Mar Pollut Bull [Internet]. 2021;173(PA):113008. Available from: https://doi.org/10.1016/j.marpolbul.2021.113008
  33. Hayes A, Kirkbride P, Leterme SC. Variation in polymer types and abundance of microplastics from two rivers and beaches in Adelaide, South Australia. Mar Pollut Bull [Internet]. 2021;172(August):112842. Available from: https://doi.org/10.1016/j.marpolbul.2021.112842
  34. Zhang C, Wang S, Sun D, Pan Z, Zhou A, Xie S, et al. Microplastic pollution in surface water from east coastal areas of Guangdong, South China and preliminary study on microplastics biomonitoring using two marine fish. Chemosphere [Internet]. 2020;256:127202. Available from: https://doi.org/10.1016/j.chemosphere.2020.127202
  35. Sambandam M, Dhineka K, Sivadas SK, Kaviarasan T, Begum M, Hoehn D, et al. Occurrence, characterization, and source delineation of microplastics in the coastal waters and shelf sediments of the central east coast of India, Bay of Bengal. Chemosphere [Internet]. 2022;303(P2):135135. Available from: https://doi.org/10.1016/j.chemosphere.2022.135135
  36. Hossain MJ, AftabUddin S, Akhter F, Nusrat N, Rahaman A, Sikder MNA, et al. Surface water, sediment, and biota: The first multi-compartment analysis of microplastics in the Karnafully river, Bangladesh. Mar Pollut Bull [Internet]. 2022;180(June):113820. Available from: https://doi.org/10.1016/j.marpolbul.2022.113820
  37. Zhang Y, Peng Y, Xu S, Zhang S, Zhou G, Yang J, et al. Distribution characteristics of microplastics in urban rivers in Chengdu city: The influence of land-use type and population and related suggestions. Sci Total Environ [Internet]. 2022;846:157411. Available from: https://www.sciencedirect.com/science/article/pii/S0048969722045090
  38. Vital SA, Cardoso C, Avio C, Pittura L, Regoli F, Bebianno MJ. Do microplastic contaminated seafood consumption pose a potential risk to human health? Mar Pollut Bull [Internet]. 2021;171(August):112769. Available from: https://doi.org/10.1016/j.marpolbul.2021.112769
  39. Mulu M, Wendelinus Dasor Y, Hudin R, Tarsan V. Marine Debris and Microplastics: Efforts to Prevent Hazards and Their Impacts in Tempode, Salama Village, Manggarai Regency, NTT. Randang Tana - J Pengabdi Masy. 2020;3(2):79–84
  40. Yudhantari CI, Hendrawan IG, Ria Puspitha NLP. Microplastic Content in the Digestive Tract of Protolan Lemuru Fish (Sardinella Lemuru) Caught in the Bali Strait. J Mar Res Technol. 2019;2(2):48
  41. Garcés-Ordóñez O, Saldarriaga-Vélez JF, Espinosa-Díaz LF, Patiño AD, Cusba J, Canals M, et al. Microplastic pollution in water, sediments and commercial fish species from Ciénaga Grande de Santa Marta lagoon complex, Colombian Caribbean. Sci Total Environ. 2022;829(2)
  42. Yona D, Maharani MD, Cordova MR, Elvania Y, Dharmawan IWE. Microplastics Analysis in the Gill and Gastrointestinal Tract of Coral Reef Fishes From Three Small Outer Islands of Papua, Indonesia: a Preliminary Study. J Ilmu dan Teknol Kelaut Trop. 2020;12(2):497–507
  43. Lackmann C, Velki M, Šimić A, Müller A, Braun U, Ečimović S, et al. Two types of microplastics (polystyrene-HBCD and car tire abrasion) affect oxidative stress-related biomarkers in earthworm Eisenia andrei in a time-dependent manner. Environ Int [Internet]. 2022;163:107190. Available from: https://www.sciencedirect.com/science/article/pii/S0160412022001167
  44. Browne M. Accumulation of microplastic on shorelines woldwide: Sources and sinks. Environ Sci Technol [Internet]. 2011;45(21):9175–9. Available from: https://api.elsevier.com/content/abstract/scopus_id/80055096730
  45. Jeyasanta KI, Sathish N, Patterson J, Edward JKP. Macro-, meso- and microplastic debris in the beaches of Tuticorin district, Southeast coast of India. Mar Pollut Bull [Internet]. 2020;154(January):111055. Available from: https://doi.org/10.1016/j.marpolbul.2020.111055
  46. Yona D, Samantha CD, Kasitowati RD. Perbandingan Kandungan Mikroplastik Pada Kerang Darah Dan Kerang Tahu Dari Perairan Desa Banyuurip, Gresik. Saintek Perikan Indones J Fish Sci Technol. 2021;17(2):108–14
  47. Sutanhaji AT, Rahadi B, Firdausi NT. Analisis Kelimpahan Mikroplastik Pada Air Permukaan di Sungai Metro, Malang. J Sumberd Alam dan Lingkung. 2021;8(2):74–84
  48. Nugroho DH, Restu IW, Ernawati NM. Kajian Kelimpahan Mikroplastik di Perairan Teluk Benoa Provinsi Bali. Curr Trends Aquat Sci. 2018;1(1):80
  49. Almas FF, Bezirci G, Çağan AS, Gökdağ K, Çırak T, Başaran Kankılıç G, et al. Tracking the microplastic accumulation from past to present in the freshwater ecosystems: A case study in Susurluk Basin, Turkey. Chemosphere. 2022;303(January)
  50. Ding R, Ouyang F, Peng D, You J, Ding L, Ouyang Z, et al. A case study of distribution and characteristics of microplastics in surface water and sediments of the seas around Shenzhen, southern coastal area of China. Sci Total Environ [Internet]. 2022;838(April):156063. Available from: https://doi.org/10.1016/j.scitotenv.2022.156063
  51. Herrera A, Acosta-Dacal A, Pérez Luzardo O, Martínez I, Rapp J, Reinold S, et al. Bioaccumulation of additives and chemical contaminants from environmental microplastics in European seabass (Dicentrarchus labrax). Sci Total Environ [Internet]. 2022;822:153396. Available from: https://doi.org/10.1016/j.scitotenv.2022.153396
  52. Barboza LGA, Lopes C, Oliveira P, Bessa F, Otero V, Henriques B, et al. Microplastics in wild fish from North East Atlantic Ocean and its potential for causing neurotoxic effects, lipid oxidative damage, and human health risks associated with ingestion exposure. Sci Total Environ [Internet]. 2020;717:134625. Available from: https://doi.org/10.1016/j.scitotenv.2019.134625
  53. Yee MSL, Hii LW, Looi CK, Lim WM, Wong SF, Kok YY, et al. Impact of microplastics and nanoplastics on human health. Nanomaterials. 2021;11(2):1–23
  54. Yuan Z, Nag R, Cummins E. Human health concerns regarding microplastics in the aquatic environment - From marine to food systems. Sci Total Environ [Internet]. 2022;823:153730. Available from: https://doi.org/10.1016/j.scitotenv.2022.153730
  55. Bhuyan MS. Effects of Microplastics on Fish and in Human Health. Front Environ Sci. 2022;10(March):1–17
  56. Lin X, Xie H, Zhang Y, Tian X, Cui L, Shi N, et al. The toxicity of nano polyethylene terephthalate to mice: Intestinal obstruction, growth retardant, gut microbiota dysbiosis and lipid metabolism disorders. Food Chem Toxicol [Internet]. 2023;172(November 2022):113585. Available from: https://doi.org/10.1016/j.fct.2022.113585
  57. Leslie HA, van Velzen MJM, Brandsma SH, Vethaak AD, Garcia-Vallejo JJ, Lamoree MH. Discovery and quantification of plastic particle pollution in human blood. Environ Int [Internet]. 2022;163(December 2021):107199. Available from: https://doi.org/10.1016/j.envint.2022.107199
  58. Jenner LC, Rotchell JM, Bennett RT, Cowen M, Tentzeris V, Sadofsky LR. Detection of microplastics in human lung tissue using μFTIR spectroscopy. Sci Total Environ [Internet]. 2022;831(December 2021):154907. Available from: https://doi.org/10.1016/j.scitotenv.2022.154907
  59. Turroni S, Wright S, Rampelli S, Brigidi P, Zinzani PL, Candela M. Microplastics shape the ecology of the human gastrointestinal intestinal tract. Curr Opin Toxicol [Internet]. 2021;28:32–7. Available from: https://doi.org/10.1016/j.cotox.2021.09.006
  60. Hwang J, Choi D, Han S, Jung SY, Choi J, Hong J. Potential toxicity of polystyrene microplastic particles. Sci Rep. 2020;10(1):1–12

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