PL EN
ARTYKUŁ ORYGINALNY
Nasze życie z plastikiem, przegląd aspektów nadużywania produktów z tworzyw sztucznych w dobie konsumpcjonizmu
,
 
 
 
Więcej
Ukryj
1
Regionalne Centrum Badań Środowiska, Rolnictwa i Technologii Innowacyjnych EKO-AGRO-TECH, Akademia Bialska, Polska
 
2
Zakład Zarządzania, Akademia Bialska
 
 
Data nadesłania: 13-02-2024
 
 
Data ostatniej rewizji: 02-10-2024
 
 
Data akceptacji: 03-10-2024
 
 
Data publikacji: 14-11-2024
 
 
Autor do korespondencji
Ewa Plażuk   

Regionalne Centrum Badań Środowiska, Rolnictwa i Technologii Innowacyjnych EKO-AGRO-TECH, Akademia Bialska, Sidorska 107C, 21-500, Biała Podlaska, Polska
 
 
Rozprawy Społeczne/Social Dissertations 2024;18(1):506-525
 
SŁOWA KLUCZOWE
DZIEDZINY
STRESZCZENIE
Streszczenie: Szacunkowo określa się, że co roku do oceanów trafia nawet do 9 milionów ton odpadów z plastikowych surowców. Jest coraz więcej badań na temat szkodliwości mikroplastiku na nasze zdrowie. O ile aspekty stosowania polimerowych opakowań do żywności, naczyń, czy mebli i ubrań z tworzyw sztucznych często podyktowane są względami ekonomicznymi, o tyle psychologiczne, socjologiczne i kulturowe aspekty mogą być kształtowane na poziomie funkcjonowania zdrowych i racjonalnych wyborów produktów na rynkach lokalnych. Wobec wzmożonej ekspozycji na plastik w otaczającym nas świecie celem nauk przyrodniczych jest rozwijanie narzędzi badawczych nad szkodliwością mikroplastiku. W ramach społecznej odpowiedzialności nauki socjologiczne powinny dawać zalecenia w dziedzinach życia społecznego i proponować praktyczne działania w celu uświadamiania ludzi skąd się bierze mikroplastik i jak ograniczyć jego stosowanie. Materiał i metody: Przegląd literaturowy - nie dotyczy Wyniki: Przegląd literaturowy - nie dotyczy Wnioski: Przegląd literaturowy - nie dotyczy
 
REFERENCJE (98)
1.
Agrawal, M., Vianello, A., Picker, M., Simon-Sánchez, L., Chen, R., Estevinho, M.M., Weinstein, K,, Lykkemark, J., Jess, T., Peter, I., Colombel, J.F., Allin, K.H., Vollertsen, J. (2024). Micro-and nano-plastics, intestinal inflammation, and inflammatory bowel disease: A review of the literature. Sci. Total Environ., 953:176228.
 
2.
Alimba, C.G., Faggio, C. (2019). Microplastics in the marine environment: Current trends in environmental pollution and mechanisms of toxicological profile, Environ. Toxicol. Pharmacol., 68, 61-74.
 
3.
Andrady, A.L., Neal, M.A. (2009). Applications and societal benefits of plastics, Philos. Trans. R. Soc. Lond. B Biol. Sci., 364, 1977-1984.
 
4.
Andrady, A.L. (2011). Microplastics in the marine environment. Marine pollution bulletin, 62 8, 1596-605.
 
5.
Ashton, K., Holmes, L., Turner A. (2010). Association of metals with plastic production pellets in the marine environment, Mar. Pollut. Bull., 60 (11), 2050.
 
6.
Barboza, L.G.A., Vethaak, A.D., Lavorante, B.R.B.O., Lundebye, A.K., Guilhermino, L. (2018). Marine microplastic debris: an emerging issue for food security, food safety and human health. Mar. Pollut. Bull., 133, 336-348.
 
7.
Bastante-Rabadán, M., Boltes K. (2024). Mixtures of Micro and Nanoplastics and Contaminants of Emerging Concern in Environment: What We Know about Their Toxicological Effects. Toxics, 12(8):589.
 
8.
Borgatta, M., Breider, F. (2024). Inhalation of Microplastics-A Toxicological Complexity. Toxics, 12(5):358.
 
9.
Bouwmeester, H., Hollman, P.C.H., Peters, R.J.B. (2015). Potential health impact of environmentally reConclusions leased micro- and nanoplastics in the human food production chain: experiences from nanotoxicology, Environ. Sci. Technol., 49, 8932-8947.
 
10.
Brown, D. M., Wilson, M. R., MacNee, W., Stone, V., Donaldson, K. (2001). Size-dependent proinflammatory effects of ultrafine polystyrene particles: a role for surface area and oxidative stress in the enhanced activity of ultrafines, Toxicol. Appl. Pharmacol., 175 (3),191-199.
 
11.
Calafat, A.M., Ye, X., Wong, L.Y., Reidy, J.A. (2008). Exposure of the U.S. Population to Bisphenol A and 4-tertiary-Octylphenol: 2003-2004. Environ. Health Perspect., 116, 39-44.
 
12.
Campanale, C., Massarelli, C., Savino, I., Locaputo, V., Uricchio, V.F. (2020). A detailed review study on potential effects of microplastics and additives of concern on human health. Int. J. Environ. Res. Public Health, 17(4), 1212.
 
13.
Castle, L. (2007). Chemical migration into food: An overview. In: Chemical migration and food contact materials, Editors: Barnes K.A. et al., Woodhead Publishing Limited, p. 1-13, ISBN 978-1-84569-029-8.
 
14.
Chen, Q., Gao, J., Yu, H., Su, H., Yang, Y., Ca,o Y., ... & Liu, H. (2022). An emerging role of microplastics in the etiology of lung ground glass nodules, Environmental Sciences Europe, 34(1), 1-15.
 
15.
Du, F., Cai, H., Zhang, Q., Chen, Q., Shi, H. (2020). Microplastics in take-out food containers, Journal of Hazardous Materials, 399, 1-9.
 
16.
Eagles-Smith, C.A., Silbergeld, E.K., Basu, N., Bustamante, P., Diaz-Barriga, F., Hopkins, W.A., Kidd, K.A., Nyland, J.F. (2018). Modulators of mercury risk to wildlife and humans in the context of rapid global change, Ambio, 47, 170-197.
 
17.
Ebner, I., Haberer, S., Sander, S., Kappenstein, O., Luch, A., Bruhn, T. (2020). Release of melamine and formaldehyde from melamine-formaldehyde plastic kitchenware, Molecules, 22, 1-18.
 
18.
Elsaesser, A., Howard, C.V. (2012). Toxicology of nanoparticles. Adv. Drug Deliv. Rev., 64, 129-137.
 
19.
Ferreira, I., Venancio, C., Lopes, I., Oliveira, M. (2019). Nanoplastics and marine organisms: What has been studied? Environ. Toxicol. Pharmacol., 67, 1-7.
 
20.
Forte, M., Iachetta, G., Tussellino, M., Carotenuto, R., Prisco, M., De Falco, M., Laforgia, V., Valiente, S. (2016). Polystyrene nanoparticles internalization in human gastric adenocarcinoma cells. Toxicol. In Vitro. 31, 126-136.
 
21.
Frohlich, E., Samberger, C., Kueznik, T., Absenger, M.,Roblegg, E. Zimmer, A., Pieber, T.R. (2009). Cytotoxicity of nanoparticles independent from oxidative stress, J. Toxicol. Sci., 34 (4), 363-375.
 
22.
Fuchs, A.K., Syrovets, T., Haas, K.A., Loos, C., Musyanovych, A., Maila¨nder, V., Landfester, K., Simmet, T. (2016). Carboxyl- and amino-functionalized polystyrene nanoparticles differentially affect the polarization profile of M1 and M2 macrophage subsets, Biomaterials, 85, 78-87.
 
23.
Gaillet, S., Rouanet, J. M. (2015). Silver Nanoparticles: Their Potential Toxic Effects after Oral Exposure and Underlying Mechanisms - A Review. Food Chem. Toxicol.,77, 58-63.
 
24.
Galloway, T.S. (2015). Micro and nanoplastics and human health, M. Bergmann (Ed.), Marine Anthropogenic LitterSpringer, New York, 343-366.
 
25.
Gasperi, J., Wright, S.L., Dris, R., Collard, F., Mandin, C., Guerrouache, M., Langlois, V., Kelly, F.J., Tassin, B. (2018). Microplastics in air: Are we breathing it in? Curr. Opin. Environ. Sci. Health, 1, 1-5.
 
26.
Ghosh, S.K., Pal, S., Ray, S. (2013). Study of microbes having potentiality for biodegradation of plastics, Environ. Sci. Pollut. Res. Int., 20, 4339-4355.
 
27.
Grbic, J., Nguyen, B., Guo, E., You, J.B., Sinton, D., Rochman C.M., (2019), Magnetic Extraction of Microplastics from Environmental Samples, Environmental Science & Technology Letters, 6(2), 68-72.
 
28.
Gündoğdu, S. (2018). Contamination of table salts from Turkey with microplastics, Food Addit Contam Part A Chem Anal Control Expo Risk Assess., 35(5), 1006-1014.
 
29.
Hahladakis, J.N., Velis, C.A., Weber, R., Iacovidou, E., Purnell, P. (2018). An overview of chemical additives present in plastics: Migration, release, fate and environmental impact during their use, disposal and recycling, J. Hazard. Mater., 344, 179-199.
 
30.
Halden, R.U. (2010). Plastics and health risks. Annu. Rev. Public Health, 31, 179-294.
 
31.
Héraud, F., Barraj, L.M., Moy G.G. (2013). GEMS/Food Consumption Cluster Diets. Total Diet Stud., 427-434.
 
32.
Hildebrandt, L. Nack, F.L., Zimmermann, T., Pröfrock, D. (2021). Microplastics as a Trojan horse for trace metals, Journal of Hazardous Materials Letters, 2, 100035.
 
33.
Hitchcock, J.N., Mitrovic, S.M. (2019). Microplastic pollution in estuaries across a gradient of human impact, Environ Pollut., 247, 457-466.
 
34.
Holmes, L.A., Turner A., Thompson, R.C. (2012). Adsorption of trace metals to plastic resin pellets in the marine environment, Environ. Pollut., 160, 42-48.
 
35.
Horvatits, T., Tamminga, M., Liu, B., Sebode, M., Carambia, A., Fischer, L., P€uschel, K., Huber, S., Fischer, E.K. (2022). Microplastics detected in cirrhotic liver tissue, eBioMedicine, 104147.
 
36.
Huang, J.T., Huang, V.I. (2007). Evaluation of the efficiency of medical masks and the creation of new medical masks, J. Int. Med. Res., 35, 213-223.
 
37.
Hussain N. (2001). Recent advances in the understanding of uptake of microparticulates across the gastrointestinal lymphatics. Adv Drug Deliv Rev., 50(1-2), 107-142.
 
38.
Ibrahim, Y.S., Tuan Anuar, S., Azmi, A.A. (2021). Detection of microplastics in human colectomy specimens, JGH Open, 5(1), 116-121.
 
39.
Issac, M.N., Kandasubramanian, B. (2021). Effect of microplastics in water and aquatic systems. Environ Sci Pollut Res 28, 19544-19562.
 
40.
Jastrzębska, E. (2020). Plastik jako wyzwanie dla gospodarki o obiegu zamkniętym, Paradoksy ekologiczne. Odpady miarą sukcesu i porażki cywilizowanej ludzkości, Red.: Sadowski R.F., Kosieradzka-Federczyk A. Warszawa, s. 183.
 
41.
Kankanige, D., Babel, S. (2020). Smaller-sized micro-plastics (MPs) contamination in single- use PET-bottled water in Thailand, Science of The Total Environment, 717, 1-9.
 
42.
Karami, A., Golieskardi, A., Choo, C.K., Larat, V., Karbalaei, S., Salamatinia, B. (2018). Microplastic and mesoplastic contamination in canned sardines and sprats, Sci Total Environ., 612, 1380-1386.
 
43.
Kedzierski, M., Lechat, B., Sire, O., Le Maguer, G., Le Tilly, V., Bruzaud, S. (2020). Microplastic contamination of packaged meat: Occurrence and associated risks, Food Packaging and Shelf Life, 24, 1-7.
 
44.
Khalid, N.; Aqeel, M.; Noman, A. (2020). MP could be a threat to plants in terrestrial systems directly or indirectly,.Environ. Pollut. 267, 115653.
 
45.
Koelmans, A.A., Mohamed Nor, N.H., Hermsen, E., Kooi, M., Mintenig, S.M., De France, J. (2019). Microplastics in freshwaters and drinking water: Critical review and assessment of data quality, Water Res., 155, 410-422.
 
46.
Kosuth, M., Mason, S.A., Wattenberg, E.V. (2018). Anthropogenic contamination of tap water, beer, and sea salt, PLoS One,13(4):e0194970.
 
47.
Kumar, M., Xiong, X., He, M., Tsang, D.C.W., Gupta, J., Khan, E., Harrad, S., Hou, D., Ok, Y.S., Bolan, N.S. (2020). Microplastics as pollutants in agricultural soils, Environ Pollut., 265(A), 114980.
 
48.
Kumar, R., Manna, C., Padha, S., Verma, A., Sharma, P., Dhar, A., Ghosh, A., Bhattacharya, P. (2022), Micro-(nano)plastics pollution and human health: How plastics can induce carcinogenesis to humans? Chemosphere, 298,134267.
 
49.
Lan, J., Malik, A., Lenzen, M., McBain, D., Kanemoto, K., Kanemoto, K. (2016). A structural decomposition analysis of global energy footprints. Applied Energy, 163, 436-451.
 
50.
Leslie, H.A., van Velzen, M.J.M., Brandsma, S.H., Vethaak, A.D., Garcia-Vallejo, J.J., Lamoree, M.H. (2022). Discovery and quantification of plastic particle pollution in human blood, Environ. Int., 163, 107199.
 
51.
Li, L., Zhou, Q., Yin, N., Tu, C.,Luo, Y. (2019). Uptake and accumulation of microplastics in an edible plant, Chin. Sci. Bull. 64, 928-934.
 
52.
Li, W.C., Tse, H.F., Fok, L. (2016). Plastic waste in the marine environment: A review of sources, occurrence and effects, Sci. Total Environ., 566-567, 333-349.
 
53.
Liebezeit, G., Liebezeit, E. (2013). Non-pollen particulates in honey and sugar, Food Addit Contam Part A Chem Anal Control Expo Risk Assess, 30, 2136-2140.
 
54.
Liu, Z., Cai, M., Yu, P., Chen, M., Wu, D., Zhang, M., Zhao, Y. (2018). Agedependent survival, stress defense, and AMPK in Daphnia pulex after short-term exposure to a polystyrene nanoplastic. Aquat. Toxicol., 204, 1-8.
 
55.
Lu, L., Wan, Z., Luo, T., Fu, Z., Jin, Y. (2018). Polystyrene MPs induce gut microbiota dysbiosis and hepatic lipid metabolism disorder in mice, Science of the Total Environment, 631, 449-458.
 
56.
Lusher, A.L., Hollman, P.C.H. , Mendoza-Hill, J.J. (2017). Microplastics in fisheries and aquaculture: status of knowledge on their occurrence and implications for aquatic organisms and food safety, FAO Fisheries and Aquaculture Technical Paper, 615, Rome, Italy.
 
57.
Mason, S.A., Welch, V.G., Neratko, J.,2018, Synthetic polymer contamination in bottled water, Frontiers in Chemistry, 6, 1-11.
 
58.
Meegoda, J.N.; Hettiarachchi, M.C. (2023). A Path to a Reduction in Micro and Nanoplastics Pollution. Int. J. Environ. Res. Public Health, 20, 5555.
 
59.
Michalowicz, J. (2014). Bisphenol A-sources, toxicity and biotransformation. Environ. Toxicol. Parmacol., 37, 738-758.
 
60.
Oliveri Conti, G., Ferrante, M., Banni, M., Favara, C., Nicolosi, I., Cristaldi, A., Fiore, M., Zuccarello, P. (2020). Micro- and Nano-Plastics in Edible Fruit and Vegetables. The First Diet Risks Assessment for the General Population, Environ. Res., 109677.
 
61.
Oßmann, B.E., Sarau G., Holtmannspötter H., Pischetsrieder M., Christiansen S.H., Dicke W., 2018, Small-sized microplastics and pigmented particles in bottled mineral water, Water Research, 141, 307-316.
 
62.
Piontek, W., (2019). The circular plastics economy and the instruments to implement it, Ekonomia i Środowisko, 3(70).
 
63.
Powell, J.J., Faria, N., Thomas-McKay, E., Pele, L.C. (2010). Origin and Fate of Dietary Nanoparticles and Microparticles in the Gastrointestinal Tract. J. Autoimmun., 34(3), J226-J233.
 
64.
Prata, J.C., (2018) Airborne microplastics: Consequences to human health? Environ. Pollut., 234, 115-126.
 
65.
Ragusa, A., Svelato, A., Santacroce, C., Catalano, P., Notarstefano, V., Carnevali, O., Giorgini, E. (2021). Plasticenta: First evidence of microplastics in human placenta, Environment International, 146, 106274.
 
66.
Ramage, S.J.F.F., Pagaling, E., Haghi, R.K., Dawson, L.A., Yates, K., Prabhu, R., Hillier, S., Devalla, S., (2022), Rapid extraction of high- and low-density microplastics from soil using high-gradient magnetic separation. Sci Total Environ., 831:154912.
 
67.
Renzi, M., Blasˇkovic, A. (2018). Litter & microplastics features in table salts from marine origin: Italian versus Croatian brands, Mar. Pollut. Bull., 135, 62-68.
 
68.
Rhodes, Ch.J. (2019). Solving the plastic problem: From cradle to grave, to reincarnation, Science Progress, 102(3).
 
69.
Rieux, A. D., Ragnarsson, E. G. E., Gullberg, E., Préat, V., Schneider, Y. J., Artursson, P. (2005). Transport of nanoparticles across an in vitro model of the human intestinal follicle associated epithelium. Eur. J. Pharm. Sci., 25 (4-5), 455-465.
 
70.
Rillig, M.C. (2012). Microplastic in terrestrial ecosystems and the soil? Environ. Sci. Technol., 46, 6453-6454.
 
71.
Rios Mendoza, L.M., Karapanagioti, H., Alvarez, N.R. (2018) Micro(nanoplastics) in the marine environment: Current knowledge and gaps, Curr. Opin. Environ. Sci. Health, 1, 47-51.
 
72.
Rist, S., Almroth, B.C., Hartmann, N.B., Karlsson, T.M (2018). A critical perspective on early communications concerning human health aspects of microplastics, Sci. Total Environ., 626, 720-726.
 
73.
Rochman, C.M., Browne, M.A., Halpern, B.S., Hentschel, B.T., Hoh, E., Karapanagioti, H.K., Rios-Mendoza, L.M., Takada, H., Teh S., Thompson, R.C. (2013). Policy: Classify plastic waste as hazardous, Nature, 494, 169-171.
 
74.
Schwabl, P., Köppel, S., Königshofer, P., Bucsics, T., Trauner, M., Reiberger, T., Liebmann, B. (2019). Detection of various microplastics in human stool: a prospective case series, Ann. Intern. Med., 171(7), 453-457.
 
75.
Schymanski D., Humpf, H.-U., Fürst, P. (2020). Determination of particle abrasion through milling with five different salt grinders – a preliminary study by micro-Raman spectroscopy with efforts towards improved quality control of the analytical methods, Food Additives & Contaminants: Part A, 37:8, 1238-1252.
 
76.
Schymanski, D., Goldbeck, C., Humpf, H.-U., Fürst, P. (2018). Analysis of microplastics in water by micro-Raman spectroscopy: Release of plastic particles from different packaging into mineral water, Water Research, 129, 154-162.
 
77.
Sherrington, C. (2016). Plastics in the marine environment, Eunomia, Bristol, UK.
 
78.
Shruti, V.C., Pérez-Guevara, F., Elizalde-Martínez, I., Kutralam-Muniasamy, G. (2020). First study of its kind on the microplastic contamination of soft drinks, cold tea and energy drinks future research and environmental consideration, Science of The Total Environment,726,1-10.
 
79.
Thompson, R.C., Swan, S.H., Moore, C.J., Vom Saal, F.S. (2009). Our plastic age, Philos. Trans. R. Soc. Lond. B Biol. Sci., 364, 1973-1976.
 
80.
Vedolin, M.C., Teophilo, C.Y.S., Turra, A., Figueira, R.C.L. (2018). Spatial variability in the concentrations of metals in beached microplastics, Mar. Pollut. Bull., 129, 487-493.
 
81.
Veerasingam S., Ranjani M., Venkatachalapathy R., Bagaev A., Mukhanov V., Litvinyuk D., Mugilarasan M.,Gurumoorthi K., Guganathan L., Aboobacker V. M., Vethamony. P. (2021), Contributions of Fourier transform infrared spectroscopy in microplastic pollution research: A review, Critical Reviews in Environmental Science and Technology, 51:22, 2681-2743.
 
82.
Walczak, A.P., Kramer, E., Hendriksen, P.J., Helsdingen, R., van der Zande, M., Rietjens, I.M., Bouwmeester, H. (2015). In vitro gastrointestinal digestion increases the translocation of polystyrene nanoparticles in an in vitro intestinal co-culture model. Nanotoxicology, 9, 886-894.
 
83.
Waller, C.L., Griffiths, H,J,, Waluda, C.M. et al. (2017). Microplastics in the Antarctic marine system: an emerging area of research. Sci Total Environ 598:220-227.
 
84.
Wiedmann, T., Lenzen, M., Keyßer, L.T. et al. (2020). Scientists’ warning on affluence. Nat Commun 11, 3107.
 
85.
Winkler A., Santo N., Ortenzi M.A., Bolzoni E., Bacchetta R., Tremolada P., 2019, Does mechanical stress cause microplastic release from plastic water bottles? Water Research, 166. 115082.
 
86.
Wright, S.L., Kelly, F.J. (2017). Plastic and human health: a micro issue? Environ. Sci. Technol., 51 (12), 6634-6647.
 
87.
Yang, D., Shi, H., Li, L., Li, J., Jabeen, K., Kolandhasamy, P. (2015). Microplastic Pollution in Table Salts from China. Environ Sci Technol., 49(22), 13622-13627.
 
88.
Zeng, G., Zhang, Q., Wang, X. Wu, K.-H. (2022). Low-level plasticizer exposure and all-cause and cardiova-scular disease mortality in the general population. Environ. Health, 21, 32.
 
89.
Zettler, E.R., Mincer, T.J., Amaral-Zettler, L.A. (2013). Life in the “plastisphere”: microbial communities on plastic marine debris, Environ. Sci. Technol., 47 (13), 7137-7146.
 
90.
Zhang, N., Li, Y.B., He, H.R., Zhang, J.F., Ma, G.S. (2021). You are what you eat: microplastics in the feces of young men living in Beijing, Sci Total Environ., 767, 144345.
 
91.
EFSA. (2016). Presence of Microplastics and Nanoplastics in Food, with Particular Focus on Seafood. EFSA J., 14(6), 4501.
 
92.
Food and Agriculture Organization of the United Nations. (2017). Microplastics in Fisheries and Aquaculture Status of Knowledge on Their Occurrence and Implications for Aquatic Organisms and Food Safety.
 
93.
World Health Organization. Microplastics in drinking-water. (2019). ISBN 978-92-4-151619-8.
 
94.
CIEL. Plastic & Health: The Hidden Costs of a Plastic Planet (February 2019) - Center for International Environmental Law (ciel.org)/ Accessed 12.09.2023.
 
95.
EC, 2020a, ‘A new Circular Economy Action Plan For a cleaner and more competitive Europe. COM(2020) 98 final’,Accessed 25.06.2024.
 
96.
Ellen MacArthur Foundation, (2017). Circular fashion – a new textiles economy: redesigning fashion’s future. Accessed 25.06.2024.
 
97.
Plastics, a growing environmental and climate concern: how can Europe revert that trend? – European Environment Agency (2024), https://www.eea.europa.eu/en/t... Accessed 25.06.2024.
 
98.
Tworzywa – Fakty (2021) – Plastics Europe/Plasctics – the Facts 2020 (plasticseurope.org)/. Accessed 25.06.2024.
 
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