Al-Sid-CheikhM., RowlandS. J., StevensonK., RouleauC., HenryT. B., et al. (2018). Uptake, whole-body distribution, and depuration of nanoplastics by the scallop pecten maximus at environmentally realistic concentrations. Environ Sci Technol, 52(24), 14480-14486. doi: https://10.1021/acs.est.8b05266
2.
AlvesJ., SargisonF. A., StawarzH., FoxW. B., HueteS. G., et al. (2021). A case report: Insights into reducing plastic waste in a microbiology laboratory. Access Microbiology, 3(3). doi: https://doi.org/10.1099/acmi.0.000173
3.
BarbozaL. G. A., Dick VethaakA., LavoranteB. R. B. O., LundebyeA.-K., & GuilherminoL. (2018). Marine microplastic debris: An emerging issue for food security, food safety and human health. Mar Pollut Bull, 133, 336-348. doi: https://doi.org/10.1016/j.marpolbul.2018.05.047
4.
BeaumontN. J., AanesenM., AustenM. C., BörgerT., ClarkJ. R., et al. (2019). Global ecological, social and economic impacts of marine plastic. Mar Pollut Bull, 142, 189-195. doi: https://10.1016/j.marpolbul.2019.03.022
BombelliP., HoweC. J., & BertocchiniF. (2017). Polyethylene bio-degradation by caterpillars of the wax moth Galleria mellonella. Curr Biol, 27(8), R292-R293. doi: https://10.1016/j.cub.2017.02.060
7.
BrentA. C., & RogersD. E. (2002). Establishing the propensity for dioxin formation using a plume temperature model for medical waste incinerator emissions in developing countries. Journal of the Air Waste Management Association, 52(7), 811-821. doi: https://10.1080/10473289.2002.10470826
8.
BurnsE. E., & BoxallA. B. A. (2018). Microplastics in the aquatic environment: Evidence for or against adverse impacts and major knowledge gaps. Environ Toxicol Chem, 37(11), 2776-2796. doi: https://10.1002/etc.4268
9.
CassoneB. J., GroveH. C., ElebuteO., VillanuevaS. M. P., & LeMoineC. M. R. (2020). Role of the intestinal microbiome in low-density polyethylene degradation by caterpillar larvae of the greater wax moth, Galleria mellonella. Proc Biol Sci, 287(1922), 20200112. doi: https://10.1098/rspb.2020.0112
10.
ChenH., BlanchaertB., ShindeA. B., AdamsE., RozenskiJ., et al. (2016). Abl1 inhibitory contaminants leach from plastic tubes. J Enzyme Inhib Med Chem, 31(2), 340-343. doi: 10.3109/14756366.2015.1022171
11.
EkvallM. T., LundqvistM., KelpsieneE., ŠileikisE., GunnarssonS. B., et al. (2019). Nanoplastics formed during the mechanical breakdown of daily-use polystyrene products. Nanoscale Adv, 1(3), 1055-1061. doi: https://10.1039/C8NA00210J
GallowayT. S., ColeM., & LewisC. (2017). Interactions of microplastic debris throughout the marine ecosystem. Nat Ecol Evol, 1(5), 0116. doi: https://10.1038/s41559-017-0116
14.
GeyerR., JambeckJ. R., & LawK. L. (2017). Production, use, and fate of all plastics ever made. Science Advances, 3(7), e1700782. doi: https://10.1126/sciadv.1700782
15.
HahladakisJ. N., VelisC. A., WeberR., IacovidouE., & PurnellP. (2018). An overview of chemical additives present in plastics: Migration, release, fate and environmental impact during their use, disposal and recycling. Journal of Hazardous Materials, 344, 179-199. doi: https://doi.org/10.1016/j.jhazmat.2017.10.014
16.
HowesL. (2019, Nov 3). Can laboratories move away from single-use plastics? Chemical and Engineering News, 97.
17.
JambeckJ. R., GeyerR., WilcoxC., SieglerT. R., PerrymanM., et al. (2015). Plastic waste inputs from land into the ocean. Science, 347(6223), 768. doi: https://10.1126/science.1260352
18.
JangY. C., LeeC., YoonO. S., & KimH. (2006). Medical waste management in Korea. Journal of Environmental Management, 80(2), 107-115. doi: https://10.1016/j.jenvman.2005.08.018
19.
KuntinD. (2018). How to reduce your lab's plastic waste. The Biologist, 4,28-31.
20.
LeeB. K., EllenbeckerM. J., & Moure-ErasoR. (2002). Analyses of the recycling potential of medical plastic wastes. Waste Management, 22(5), 461-470. doi: https://10.1016/s0956-053x(02)00006-5
21.
LeeB. K., EllenbeckerM. J., & Moure-ErsasoR. (2004). Alternatives for treatment and disposal cost reduction of regulated medical wastes. Waste Management, 24(2), 143-151. doi: https://10.1016/j.wasman.2003.10.008
22.
LevendisY. A., AtalA., CarlsonJ. B., & QuintanaM. D. (2001). PAH and soot emissions from burning components of medical waste: Examination/surgical gloves and cotton pads. Chemosphere, 42(5-7), 775-783. doi: https://10.1016/s0045-6535(00)00251-4
23.
LewisL. K., RobsonM., VecherkinaY., JiC., & BeallG. (2010). Interference with spectrophotometric analysis of nucleic acids and proteins by leaching of chemicals from plastic tubes. Biotechniques, 48(4), 297-302. doi: 10.2144/000113387
24.
LusherA. L., Hernandez-MilianG., BerrowS., RoganE., & O'ConnorI. (2018). Incidence of marine debris in cetaceans stranded and bycaught in Ireland: Recent findings and a review of historical knowledge. Environ Pollut, 232, 467-476. doi: https://10.1016/j.envpol.2017.09.070
25.
LyonsB. P., CowieW. J., MaesT., & Le QuesneW. J. F. (2020). Marine plastic litter in the ROPME Sea Area: Current knowledge and recommendations. Ecotoxicol Environ Saf, 187, 109839. doi: https://doi.org/10.1016/j.ecoenv.2019.109839
McDonaldG. R., HudsonA. L., DunnS. M. J., YouH., BakerG. B., et al. (2008). Bioactive contaminants leach from disposable laboratory plasticware. Science, 322(5903), 917-917. doi: 10.1126/science.1162395
29.
MurrayF., & CowieP. R. (2011). Plastic contamination in the decapod crustacean Nephrops norvegicus (Linnaeus, 1758). Mar Pollut Bull, 62(6), 1207-1217. doi: https://10.1016/j.marpolbul.2011.03.032
30.
NakaoT., AozasaO., OhtaS., & MiyataH. (2006). Formation of toxic chemicals including dioxin-related compounds by combustion from a small home waste incinerator. Chemosphere, 62(3), 459-468. doi: https://10.1016/j.chemosphere.2005.04.060
31.
NelmsS. E., DuncanE. M., BroderickA. C., GallowayT. S., GodfreyM. H., et al. (2016). Plastic and marine turtles: A review and call for research. ICES Journal of Marine Science, 73(2), 165-181. doi: https://10.1093/icesjms/fsv165
32.
ContiG. O., FerranteM., BanniM., FavaraC., NicolosiI., et al. (2020). Micro- and nano-plastics in edible fruit and vegetables. The first diet risks assessment for the general population. Environ Res, 187, 109677. doi: https://doi.org/10.1016/j.envres.2020.109677
RhodesC. J. (2019). Solving the plastic problem: From cradle to grave, to reincarnation. Sci Prog, 102(3), 218-248. doi: https://10.1177/0036850419867204
37.
RomanL., HardestyB. D., HindellM. A., & WilcoxC. (2019). A quantitative analysis linking seabird mortality and marine debris ingestion. Sci Rep, 9(1), 3202. doi: https://10.1038/s41598-018-36585-9
Segura-MuñozS. I., TakayanaguiA. M., TrevilatoT. M., SantosC. B., & HeringS. E. (2004). Trace metal distribution in surface soil in the area of a municipal solid waste landfill and a medical waste incinerator. Bull Environ Contam Toxicol, 72(1), 157-164. doi: https://10.1007/s00128-003-0254-3
40.
ShibamotoT., YasuharaA., & KatamiT. (2007). Dioxin formation from waste incineration. Rev Environ Contam Toxicol, 190, 1-41. doi: https://10.1007/978-0-387-36903-7_1
41.
StelfoxM., HudginsJ., & SweetM. (2016). A review of ghost gear entanglement amongst marine mammals, reptiles and elasmobranchs. Mar Pollut Bull, 111(1), 6-17. doi: https://doi.org/10.1016/j.marpolbul.2016.06.034
UrbinaM. A., WattsA. J. R., & ReardonE. E. (2015). Labs should cut plastic waste too. Nature, 528(7583), 479-479. doi: https://10.1038/528479c
46.
VermaR., VinodaK. S., PapireddyM., & GowdaA. N. S. (2016). Toxic pollutants from plastic waste—A review. Procedia Environ Sci, 35, 701-708. doi: https://doi.org/10.1016/j.proenv.2016.07.069
47.
WangZ., WangJ., RichterH., HowardJ. B., CarlsonJ., et al. (2003). Comparative study on polycyclic aromatic hydrocarbons, light hydrocarbons, carbon monoxide, and particulate emissions from the combustion of polyethylene, polystyrene, and poly(vinyl chloride). Energy & Fuels, 17(4), 999-1013. doi: https://10.1021/ef020269z
48.
WatsonJ., GreenoughE. B., LeetJ. E., FordM. J., DrexlerD. M., et al. (2009). Extraction, identification, and functional characterization of a bioactive substance from automated compound-handling plastic tips. J Biomol Screen, 14(5), 566-572. doi: 10.1177/1087057109336594
49.
WattsA. J., LewisC., GoodheadR. M., BeckettS. J., MogerJ., et al. (2014). Uptake and retention of microplastics by the shore crab Carcinus maenas. Environ Sci Technol, 48(15), 8823-8830. doi: https://10.1021/es501090e
50.
YangZ., LüF., ZhangH., WangW., ShaoL., et al. (2021). Is incineration the terminator of plastics and microplastics? Journal of Hazardous Materials, 401, 123429. doi: https://10.1016/j.jhazmat.2020.123429
ZimmermannL., BartosovaZ., BraunK., OehlmannJ., VölkerC., et al. (2021). Plastic products leach chemicals that induce in vitro toxicity under realistic use conditions. Environ Sci Technol, 55(17), 11814-11823. doi: 10.1021/acs.est.1c01103