Effects of New and Aged Polyethylenterephthalat and Polylactic Acid on <i>Gammarus fossarum</i> (Crustacea: Amphipoda) during Long-Term Exposures — Oak Academic Publishing
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Effects of New and Aged Polyethylenterephthalat and Polylactic Acid on <i>Gammarus fossarum</i> (Crustacea: Amphipoda) during Long-Term Exposures
Beier, W. (2009) Biologisch Abbaubare Kunststoffe. Umweltbundesamt (ED), Berlin, 12 p.
Thompson, R.C., Moore, C.J., vom Saal, F.S. and Swan, S.H. (2009) Plastics, the Environment and Human Health: Current Consensus and Future Trends. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 364, 2153-2166. https://doi.org/10.1098/rstb.2009.0053
Derraik, J.G.B. (2002) The Pollution of the Marine Environment by Plastic Debris: A Review. Marine Pollution Bulletin, 4, 842-852. https://doi.org/10.1016/S0025-326X(02)00220-5
Wright, S.L., Thompson, R.C. and Galloway, T. (2013) The Physical Impacts of Microplastics on Marine Organisms: A Review. Environmental Pollution, 178, 483-492. https://doi.org/10.1016/j.envpol.2013.02.031
Eriksen, M., Leberton, L.C.M., Carson, H.S., Thiel, M., Moore, C.J. and Borerro, J.C. (2014) Plastic Pollution in the World’s Oceans: More than 5 Trillion Plastic Pieces Weighing over 250000 Tons Afloat at Sea. PLoS ONE, 9, e11113. https://doi.org/10.1371/journal.pone.0111913
Singh, B. and Sharma, N. (2008) Mechanistic Implications of Plastic Degradation. Polymer Degradation and Stability, 93, 561-584. https://doi.org/10.1016/j.polymdegradstab.2007.11.008
Stoven, K., Jacobs, F. and Schnug, E. (2015) Microplastic: A Self-Made Environmental Problem in the Plastic Age. Journal für Kulturpflanzen, 67, 241-250.
Auta, H.S., Emenike, C.U. and Fauziah, S.H. (2017) Distribution and Importance of Microplastics in the Marine Environment: A Review of the Sources, Fate, Effects and Potential Solutions. Environment International, 102, 165-176. https://doi.org/10.1016/j.envint.2017.02.013
Kirbach, R. (2015) Im Plastik gefangen. Die Zeit 25.06.2015. http://www.diezeit.de/2015/26
Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H. and Maeda, Y. (2016) A Bacterium That Degrades and Assimilates Poly(ethylene terephthalate). Science (New York, N.Y.), 351, 1196-1199. https://doi.org/10.1126/science.aad6359
Austin, H.P., Allen, M.D., Donohoe, B.S., Rorrer, N.A., Kearns, F.L. and Silveira, R.L. (2018) Characterization and Engineering of a Plastic-Degrading Aromatic Polyesterase. Proceedings of the National Academy of Sciences of the USA, 115, E4350-E4357. https://doi.org/10.1073/pnas.1718804115
Siracusa, V., Rocculi, P., Romani, S. and Rosa, M.D. (2008) Biodegradable Polymers for Food Packaging: A Review. Trends in Food Science & Technology, 19, 634-643. https://doi.org/10.1016/j.tifs.2008.07.003
Soroudi, A. and Jakubowicz, I. (2013) Recycling of Bioplastics, Their Blends and Biocomposites: A Review. European Polymer Journal, 49, 2839-2858. https://doi.org/10.1016/j.eurpolymj.2013.07.025
Jamshidian, M., Tehrany, E.A., Imran, M., Jacquot, M. and Desobry, S. (2010) Poly-Lactid Acid: production, Applications, Nanocomposites and Release Studies. Comprehensive Reviews in Food Science & Food Safety, 9, 552-571. https://doi.org/10.1111/j.1541-4337.2010.00126.x
Karamanlioglu, M., Preziosi, R. and de Robson, G. (2017) Abiotic and Biotic Environmental Degradation of the Bioplastic Polymer Poly(lactic acid): A Review. Polymer Degradation and Stability, 137, 122-130. https://doi.org/10.1016/j.polymdegradstab.2017.01.009
Elsawy, M.A., Kim, K.H., Park, J.W. and Deep, A. (2017) Hydrolytic Degradation of Polylactic Acid (PLA) and Its Composites. Renewable and Sustainable Energy Reviews, 79, 1346-1352. https://doi.org/10.1016/j.rser.2017.05.143
Nair, N.R., Sekhar, V.C. and Nampoohiri, K.M. (2016) Augmentation of a Microbial Consortium for Enhanced Polylactid (PLA) Degradation. Indian Journal of Microbiology, 56, 59-63. https://doi.org/10.1007/s12088-015-0559-z
Wu, C.S. (2009) Renewable Resource-Based Composites of Recycled Natural Fibers and Maleated Polylactide Bioplastic: Characterization and Biodegradability. Polymer Degradation and Stability, 94, 1076-1084. https://doi.org/10.1016/j.polymdegradstab.2009.04.002
Papong, S., Malakul, P., Trungkavashirakun, R., Wenunun, P., Chomin, T., Nithanakul, M. and Sarobol, E. (2014) Comparative Assessment of the Environmental Profile of PLA and PET Drinking Water Bottles from a Life-Cycle Perspective. Journal Cleaner Production, 65, 539-550. https://doi.org/10.1016/j.jclepro.2013.09.030
Kunz, P.Y., Kienle, C. and Gerhardt, A. (2010) Gammarus spp. in Aquatic Ecotoxicology and Water Quality Assessment: Toward Integrated Multilevel Tests. Reviews of Environmental Contamination and Toxicology, 205, 1-76. https://doi.org/10.1007/978-1-4419-5623-1_1
Gerhardt, A. (2011) GamTox: A Low Cost Multimetric Ecotoxicological Test with Gammarus spp. for in and ex Situ Application. International Journal of Zoology, 2011, Article ID: 574536. https://doi.org/10.1155/2011/574536
Gerhardt, A., Clostermann, M., Fridlund, B. and Svensson, E. (1994) Monitoring of Behavioural Patterns of Aquatic Organisms with an Impedance Conversion Technique. Environment International, 20, 209-219. https://doi.org/10.1016/0160-4120(94)90138-4
Gerhardt, A., Carlsson, C., Ressemann, C. and Stich, K.P. (1998) New Online Biomonitoring System for Gammarus pulex (L.) (Crustacea): In Situ Test below a Copper Effluent in South Sweden. Environmental Science & Technology, 32, 150-156. https://doi.org/10.1021/es970442j
Farrell, P. and Nelson, K. (2013) Trophic Level Transfer of Microplastic. Mytilus edulis (L.) to Carcinus maenas (L.). Environmental Pollution, 177, 1-3. https://doi.org/10.1016/j.envpol.2013.01.046
Wagner, M., Scherer, C., Alvarez-Munoz, D., Brennholt, N., Bourrain, X., Buchinger, S., Fries, E., Cécile Grosbois, C., Klasmeier, J., Marti, T., Rodriguez-Mozaz, S., Urbatzka, R., Vethaak, A.D., Winther-Nielsen, M. and Reiffferscheid, G. (2014) Microplastics in Freshwater Ecosystems: What We Know and What We Need to Know. Environmental Sciences Europe, 26, Article No. 12. https://doi.org/10.1186/s12302-014-0012-7
Weber, A., Scherer, C., Brennholt, N., Reifferscheid, G. and Wagner, M. (2017) PET Microplastics Do Not Negatively Affect the Survival, Development, Metabolism and Feeding Activity of the Freshwater Invertebrate Gammarus pulex. Environmental Pollution, 234, 181-189. https://doi.org/10.1016/j.envpol.2017.11.014
Mateos-Cardenas, A., Scott, D., Seitmaganbetova, G., van Pelt, F., O’Halloran, J. and Jansen, M. (2019) Polyethylene Microplastic Adehere to Lemna minor (L.), Yet Have No Effect on Plant Growth or Feeding by Gammarus duebeni (Lillj.). Science of the Total Environment, 689, 413-421. https://doi.org/10.1016/j.scitotenv.2019.06.359
Gerhardt, A., Schafer, M., Blum, T. and Honnen, W. (2019) Toxicity of Microplastics with and without Adsorbed Tributyltin (TBT) in Gammarus fossarum (Koch, 1835). Fundamental and Applied Limnology, Special Issue. https://doi.org/10.1127/fal/2019/1114
Gerhardt, A., Janssens de Bisthoven, L. and Soares, A.M.V.M. (2005) Evidence for the Stepwise Stress Model: Gambusia holbrooki and Daphnia magna under Acid Mine Drainage and Acidified Reference Water Stress. Environmental Science & Technology, 39, 4150-4158. https://doi.org/10.1021/es048589f
Conn, R.E., Kolstad, J.J., Borzelleca, J.F., Dixler, D.S., File, L.J., LaDu, B.N. and Paiza, M.W. (1995) Safety Assessment of Polylactide (PLA) for Use as Food-Contact Polymer. Food and Chemical Toxicology, 33, 273-283. https://doi.org/10.1016/0278-6915(94)00145-E
Maiza, M., Tahar Benaniba, M., Quintard, G. and Massadier-Nageotte, V. (2015) Biobased Additive Plasticizing Polylactid Acid (PLA). Polimeros, 25, 581-590. https://doi.org/10.1590/0104-1428.1986
Nawrocki, J., Dabrowska, A. and Borcz, A. (2002) Investigation of Carbonyl Compounds in Bottled Waters from Poland. Water Research, 36, 4893-4901. https://doi.org/10.1016/S0043-1354(02)00201-4
Mutsuga, M., Kawamura, Y., Sugita-Konishi, Y., Hara-Kudo, Y., Takatori, K. and Tanamoto, K. (2006) Migration of Formaldehyde and Acetaldehyde into Mineral Water in Polyethyleneterephthalate (PET) Bottles. Food Additives and Contaminants, 23, 212-218. https://doi.org/10.1080/02652030500398361
Wagner, M. and Ohlmann, J. (2009) Endocrine Disruptors in Bottled Mineral Water: Total Estrogenic Burden and Migration from Plastic Bottles. Environmental Science and Pollution Research, 16, 278-286. https://doi.org/10.1007/s11356-009-0107-7
Ergene, S., Celic, A., Cavas, T., Koleli, N. and Aymak, C. (2008) The Evaluation of Toxicity and Mutagenicity of Various Drinking Waters in the Human Blood Lymphocytes (HULYs) in Vitro. Food and Chemical Toxicology, 46, 2472-2475. https://doi.org/10.1016/j.fct.2008.04.003
Ceretti, E., Zani, C., Zerbini, I., Guzzella, L., Scaglia, M., Berna, V., Donato, F., Monarca, S. and Feretti, D. (2010) Comparative Assessment of Genotoxicity of Mineral Water Packed in PET and Glass Bottles. Water Research, 44, 1462-1470. https://doi.org/10.1016/j.watres.2009.10.030
Bach, C., Dauchy, X., Severin, I., Munoz, J.F., Etienne, S. and Chagnon, M.C. (2014) Effect of Sunlight Exposure on the Release of Intentionally and/or Non-Intentionally Added Substances from PET Bottles into Water: Chemical Analysis and In Vitro Toxicity. Food Chemistry, 162, 63-71. https://doi.org/10.1016/j.foodchem.2014.04.020
Ndazi, B.S. and Karlsson, S. (2011) Characterization of Hydrolytic Degradation of Polylactic Acid/Rice Hulls Composites in Water at Different Temperatures. Express Polymer Letters, 5, 119-131. https://doi.org/10.3144/expresspolymlett.2011.13
Ioakeimidis, C., Fotopoulou, K.N., Kanapanagioti, H.K., Geraga, M., Zeri, C., Papathanassiou, E. and Papatheororou, G. (2016) The Degradation Potential of PET Bottles in the Marine Environment. An ATR-FTIR Approach. Scientific Reports, 6, Article No. 23501. https://doi.org/10.1038/srep23501
Edge, M., Hayes, M., Mohammadian, M., Allen, N.S., Jewitt, T.S., Brems, K. and Jones, K. (1991) Aspects of Poly(ethylene terephthalate) Degradation for Archival Life and Environmental Degradation. Polymer Degradation and Stability, 32, 131-153. https://doi.org/10.1016/0141-3910(91)90047-U
Allen, N.S., Edge, M., Mohammadian, M. and Jones, K. (1994) Physiochemical Aspects of the Environmental Degradation of PET. Polymer Degradation & Stability, 43, 229-237. https://doi.org/10.1016/0141-3910(94)90074-4
Kawai, F., Nakadai, K., Nishioka, E., Nakajama, H., Masaki, K., Ohara, H. and Iefuji, H. (2011) Different Enantioselectivity of 2 Types of Poly(lactic acid) Depolymerases toward Poly(L-lactic acid) and Poly(D-lactic acid). Polymer Degradation and Stability, 96, 1342-1348. https://doi.org/10.1016/j.polymdegradstab.2011.03.022
Mutsuga, M., Kawamura, Y. and Tanamoto, K. (2008) Migration of Lactic Acid, Lactide and Oligomers from Polylactide Food-Contact Materials. Food Additives and Contamination: Part A, 25, 1283-1290. https://doi.org/10.1080/02652030802017529
Ghosh, S., Qureshi, A. and Purohit, H.P. (2019) Microbial Degradation of Plastics: Biofilms and Degradation Pathways. In: Kumar, V., Kumar, R., Singh, J. and Kumar, P., Eds., Contaminants in Agriculture and Environment: Health Risks and Remediation, Volume 1, Agro. Environ. Media, Haridwar, 184-199. https://doi.org/10.26832/AESA-2019-CAE-0153-014
Pinto, M., Langer, T.M., Hüffer, T., Hofmann, T. and Herndl, G.J. (2019) The Composition of Bacterial Communities Associated with Plastic Biofilms Differs between Different Polymers and Stages of Biofilm Succession. PLoS ONE, 14, e0217165. https://doi.org/10.1371/journal.pone.0217165
Kirstein, I.V., Wichels, A., Krohne, G. and Gerdts, G. (2018) Mature Biofilm Communities on Synthetic Polymers in Seawater: Specific or General? Marine Environmental Research, 142, 147-154. https://doi.org/10.1016/j.marenvres.2018.09.028