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Original Articles

Six open questions about the migration of engineered nano-objects from polymer-based food-contact materials: a review

, &
Pages 434-450 | Received 30 Sep 2016, Accepted 07 Dec 2016, Published online: 22 Dec 2016

References

  • Abdelbary A. 2014. 8 – Prediction of wear in polymers and their composites. In: Wear of polymers and composites. Oxford: Woodhead; p. 185–217.
  • Artiaga G, Ramos K, Ramos L, Cámara C, Gómez-Gómez M. 2015. Migration and characterisation of nanosilver from food containers by AF4-ICP-MS. Food Chem. 166:76–85.
  • Arvanitoyannis IS, Bosnea L. 2004. Migration of substances from food packaging materials to foods. Crit Rev Food Sci Nutr. 44:63–76.
  • Begley T, Castle L, Feigenbaum A, Franz R, Hinrichs K, Lickly T, Mercea P, Milana M, O’Brien A, Rebre S, et al. 2005. Evaluation of migration models that might be used in support of regulations for food-contact plastics. Food Addit Contam. 22:73–90.
  • Belli B. 2012. Eating nano: processed foods and food packaging already contain nanoparticles—some of which could be harmful to our health. E – Environ Mag. [Internet]. [ cited 2016 May 26]. Available from: http://www.emagazine.com/magazine/eating-nano
  • Bhunia K, Sablani SS, Tang J, Rasco B. 2013. Migration of chemical compounds from packaging polymers during microwave, conventional heat treatment, and storage. Compr Rev Food Sci Food Saf. 12:523–545.
  • Binderup M-L, Bredsdorff L, Beltoft VM, Mortensen A, Loeschner K, Larsen EH, Eriksen FD. 2013. Systemic absorption of nanomaterials by oral exposure (Report to the Danish Environmental Protection Agency, Environmental Project No. 1505). Copenhagen: The Danish Environmental Protection Agency.
  • Bott J, Störmer A, Franz R. 2014a. A model study into the migration potential of nanoparticles from plastics nanocomposites for food contact. Food Packag Shelf Life. 2:73–80.
  • Bott J, Störmer A, Franz R. 2014b. A comprehensive study into the migration potential of nano silver particles from food contact polyolefins. In: Benvenuto M, editor. Chemistry of food, food supplements, and food contact materials: from production to plate. Vol. 1159. Washington, DC: American Chemical Society; p. 5–51.
  • Bott J, Störmer A, Franz R. 2014c. Migration of nanoparticles from plastic packaging materials containing carbon black into foodstuffs. Food Addit Contam Part A. 31:1769–1782.
  • Bumbudsanpharoke N, Ko S. 2015. Nano-food packaging: an overview of market, migration research, and safety regulations. J Food Sci. 80:R910–R923.
  • BUND – Friends of the Earth Germany. 2016. Nanoproduktdatenbank (in German). [Internet]. [ cited 2016 Jun 3]. Available from: http://www.bund.net/nanodatenbank/
  • Burcza A, Gräf V, Walz E, Greiner R. 2015. Impact of surface coating and food-mimicking media on nanosilver-protein interaction. J Nanoparticle Res. 17:1–15.
  • Busolo MA, Fernandez P, Ocio MJ, Lagaron JM. 2010. Novel silver-based nanoclay as an antimicrobial in polylactic acid food packaging coatings. Food Addit Contam Part A. 27:1617–1626.
  • Calzolai L, Gilliland D, Rossi F. 2012. Measuring nanoparticles size distribution in food and consumer products: a review. Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 29:1183–1193.
  • Center for Food Safety (USA). 2016. Nanotechnology in our food – an interactive database of consumer food products containing nanomaterials. [Internet]. [ cited 2016 Jun 3]. Available from: http://salsa3.salsalabs.com/o/1881/p/salsa/web/common/public/content?content_item_KEY=14112
  • Chaudhry Q, Scotter M, Blackburn J, Ross B, Boxall A, Castle L, Aitken R, Watkins R. 2008. Applications and implications of nanotechnologies for the food sector. Food Addit Contam Part A. 25:241–258.
  • Chen Z, Meng H, Xing G, Chen C, Zhao Y, Jia G, Wang T, Yuan H, Ye C, Zhao F, et al. 2006. Acute toxicological effects of copper nanoparticles in vivo. Toxicol Lett. 163:109–120.
  • Cushen M, Kerry J, Morris M, Cruz-Romero M, Cummins E. 2013. Migration and exposure assessment of silver from a PVC nanocomposite. Food Chem. 139:389–397.
  • Cushen M, Kerry J, Morris M, Cruz-Romero M, Cummins E. 2014. Evaluation and simulation of silver and copper nanoparticle migration from polyethylene nanocomposites to food and an associated exposure assessment. J Agric Food Chem. 62:1403–1411.
  • De Jong WH, Hagens WI, Krystek P, Burger MC, Sips AJAM, Geertsma RE. 2008. Particle size-dependent organ distribution of gold nanoparticles after intravenous administration. Biomaterials. 29:1912–1919.
  • Degueldre C, Favarger P-Y. 2003. Colloid analysis by single particle inductively coupled plasma-mass spectroscopy: a feasibility study. Colloids Surfaces A Physicochem Eng Asp. 217:137–142.
  • DTU Environment and the Danish Ecological Council and Danish Consumer Council. 2016. The nanodatabase. [Internet]. [ cited 2016 Jun 3]. Available from: http://nanodb.dk/en/
  • Dudkiewicz A, Tiede K, Loeschner K, Jensen LHS, Jensen E, Wierzbicki R, Boxall AB, Molhave K. 2011. Characterization of nanomaterials in food by electron microscopy. Trac Trends Anal Chem. 30:28–43.
  • Dutta D, Sundaram SK, Teeguarden JG, Riley BJ, Fifield LS, Jacobs JM, Addleman SR, Kaysen GA, Moudgil BM, Weber TJ. 2007. Adsorbed proteins influence the biological activity and molecular targeting of nanomaterials. Toxicol Sci. 100:303–315.
  • Echegoyen Y, Nerín C. 2013. Nanoparticle release from nano-silver antimicrobial food containers. Food Chem Toxicol. 62:16–22.
  • Echegoyen Y, Rodríguez S, Nerín C. 2016. Nanoclay migration from food packaging materials. Food Addit Contam Part A. 33:530–539.
  • EFSA. 2009. Scientific opinion of the scientific committee on a request from the European commission on the potential risks arising from nanoscience and nanotechnologies on food and feed safety. EFSA J. 958:1–39.
  • EFSA. 2011. Scientific opinion on guidance on the risk assessment of the application of nanoscience and nanotechnologies in the food and feed chain (EFSA scientific committee). EFSA J. 9:36.
  • EFSA. 2016. Scientific opinion on recent developments in the risk assessment of chemicals in food and their potential impact on the safety assessment of substances used in food contact materials. EFSA J. 14:1–28.
  • Elzey S, Grassian VH. 2010. Agglomeration, isolation and dissolution of commercially manufactured silver nanoparticles in aqueous environments. J Nanoparticle Res. 12:1945–1958.
  • Emamifar A, Kadivar M, Shahedi M, Soleimanian-Zad S. 2010. Evaluation of nanocomposite packaging containing Ag and ZnO on shelf life of fresh orange juice. Innov Food Sci Emerg Technol. 11:742–748.
  • European Commission. 2011a. Commission recommendation of 18 October 2011 on the definition of nanomaterial (2011/696/EU). Off J Eur Union. L275:38–40.
  • European Commission. 2011b. Commission Regulation (EU) No. 10/2011 of 14 January 2011 on plastic materials and articles intended to come into contact with food. Off J Eur Union. 15:12–88.
  • European Commission. 2016. Food contact materials. [Internet]. [ cited 2016 Jun 3]. Available from: http://ec.europa.eu/food/safety/chemical_safety/food_contact_materials/index_en.htm
  • Franz R, Störmer A. 2008. Migration of plastic constituents. In: Piringer OG, Baner AL, editors. Plastic packaging. Weinheim: Wiley-VCH Verlag GmbH & Co. KGaA; p. 349–415.
  • Froggett SJ, Clancy SF, Boverhof DR, Canady RA. 2014. A review and perspective of existing research on the release of nanomaterials from solid nanocomposites. Part Fibre Toxicol. 11:17.
  • Gallocchio F, Cibin V, Biancotto G, Roccato A, Muzzolon O, Carmen L, Simone B, Manodori L, Fabrizi A, Patuzzi I, et al. 2016. Testing nano-silver food packaging to evaluate silver migration and food spoilage bacteria on chicken meat. Food Addit Contam Part A. 33:1063–1071.
  • Gebauer JS, Malissek M, Simon S, Knauer SK, Maskos M, Stauber RH, Peukert W, Treuel L. 2012. Impact of the nanoparticle – protein corona on colloidal stability and protein structure. Langmuir. 28:9673–9679.
  • Hannon JC, Cummins E, Kerry J, Cruz-Romero M, Morris M. 2015a. Advances and challenges for the use of engineered nanoparticles in food contact materials. Trends Food Sci Technol. 43:43–62.
  • Hannon JC, Kerry JP, Cruz-Romero M, Azlin-Hasim S, Morris M, Cummins E. 2015b. Assessment of the migration potential of nanosilver from nanoparticle coated low density polyethylene food packaging into food simulants. Food Addit Contam Part A. 33:167–178.
  • Hassellöv M, Readman JW, Ranville JF, Tiede K. 2008. Nanoparticle analysis and characterization methodologies in environmental risk assessment of engineered nanoparticles. Ecotoxicology. 17:344–361.
  • Howlett J. 2012. Practical guidance for the safety assessment of nanomaterials in food – summary report of a workshop held in April 2011 in Cascais, Portugal. Brussels: ILSI Europe; p. 1–15.
  • Huang J-Y-Y, Li X, Zhou W. 2015. Safety assessment of nanocomposite for food packaging application. Trends Food Sci Technol. 45:187–199.
  • Huang Y, Chen S, Bing X, Gao C, Wang T, Yuan B. 2011. Nanosilver migrated into food-simulating solutions from commercially available food fresh containers. Packag Technol Sci. 24:291–297.
  • International Organization for Standardization (ISO). 2015. Nanotechnologies – vocabulary – part 2: nano-objects. (ISO/TS 80004-2:2015). Geneva: International Organization for Standardization (ISO).
  • John TA, Vogel SM, Tiruppathi C, Malik AB, Minshall RD. 2003. Quantitative analysis of albumin uptake and transport in the rat microvessel endothelial monolayer. Am J Physiol Lung Cell Mol Physiol. 284:L187–L196.
  • Jokar M, Abdul Rahman R. 2014. Study of silver ion migration from melt-blended and layered-deposited silver polyethylene nanocomposite into food simulants and apple juice. Food Addit Contam Part A. 31:734–742.
  • Katan LL. 1996. Migration from food contact materials. [place unknown]: Blackie Academic & Professional.
  • Krug HF, Wick P. 2011. Nanotoxicology: an interdisciplinary challenge. Angew Chem Int Ed Engl. 50:1260–1278.
  • Kumar R, Howdle S, Münstedt H. 2005. Polyamide/silver antimicrobials: effect of filler types on the silver ion release. J Biomed Mater Res Part B Appl Biomater. 75B:311–319.
  • Kwak H-S. 2014. Nano- and microencapsulation for foodstle. [place unknown]: John Wiley & Sons.
  • Laborda F, Bolea E, Jiménez-Lamana J. 2014. Single particle inductively coupled plasma mass spectrometry: a powerful tool for nanoanalysis. Anal Chem. 86:2270–2278.
  • Laborda F, Jiménez-Lamana J, Bolea E, Castillo JR. 2011. Selective identification, characterization and determination of dissolved silver(i) and silver nanoparticles based on single particle detection by inductively coupled plasma mass spectrometry. J Anal At Spectrom. 26:1362.
  • Lao LL, Venkatraman SS, Peppas NA. 2008. Modeling of drug release from biodegradable polymer blends. Eur J Pharm Biopharm. 70:796–803.
  • Lee S, Bi X, Reed RB, Ranville JF, Herckes P, Westerhoff P. 2014. Nanoparticle size detection limits by single particle ICP-MS for 40 elements. Environ Sci Technol. 48:10291–11030.
  • Lichtenstein D, Ebmeyer J, Knappe P, Juling S, Böhmert L, Selve S, Niemann B, Braeuning A, Thünemann AF, Lampen A. 2015. Impact of food components during in vitro digestion of silver nanoparticles on cellular uptake and cytotoxicity in intestinal cells. Biol Chem. 396:1255–1264.
  • Linsinger TPJ, Chaudhry Q, Dehalu V, Delahaut P, Dudkiewicz A, Grombe R, von der Kammer F, Larsen EH, Legros S, Loeschner K, et al. 2013. Validation of methods for the detection and quantification of engineered nanoparticles in food. Food Chem. 138:1959–1966.
  • Linsinger TPJ, Peters R, Weigel S. 2014. International interlaboratory study for sizing and quantification of Ag nanoparticles in food simulants by single-particle ICPMS. Anal Bioanal Chem. 406:3835–3843.
  • Liu J, Sonshine DA, Shervani S, Hurt RH. 2010. Controlled release of biologically active silver from nanosilver surfaces. ACS Nano. 4:6903–6913.
  • Loeschner K, Navratilova J, Grombe R, Linsinger TPJ, Købler C, Mølhave K, Larsen EH. 2015. In-house validation of a method for determination of silver nanoparticles in chicken meat based on asymmetric flow field-flow fractionation and inductively coupled plasma mass spectrometric detection. Food Chem. 181:78–84.
  • Loeschner K, Navratilova J, Købler C, Mølhave K, Wagner S, von der Kammer F, Larsen EH. 2013a. Detection and characterization of silver nanoparticles in chicken meat by asymmetric flow field flow fractionation with detection by conventional or single particle ICP-MS. Anal Bioanal Chem. 405:8185–8195.
  • Loeschner K, Navratilova J, Legros S, Wagner S, Grombe R, Snell J, von der Kammer F, Larsen EH. 2013b. Optimization and evaluation of asymmetric flow field-flow fractionation of silver nanoparticles. J Chromatogr A. 1272:116–125.
  • Mackevica A, Olsson ME, Hansen SF. 2016. Silver nanoparticle release from commercially available plastic food containers into food simulants. J Nanoparticle Res. 18:1–11.
  • McMeekin TA, Gibbs PA, Patterson JT. 1978. Detection of volatile sulfide-producing bacteria isolated from poultry-processing plants. Appl Envir Microbiol. 35:1216–1218.
  • Meder F, Thomas SS, Fitzpatrick LW, Alahmari A, Wang S, Beirne JG, Vaz G, Redmond G, Dawson KA. 2016. Labeling the structural integrity of nanoparticles for advanced in situ tracking in bionanotechnology. ACS Nano. 10:4660–4671.
  • Mercea P. 2008. Models for diffusion in polymers. In: Piringer OG, Baner AL, editors. Plastic packaging – interactions with food and pharmaceuticals. 2nd ed. Weinheim: Wiley-VCH Verlag GmbH & Co. KGaA; p. 123–162.
  • Merrifield RC, Lead JR. 2016. Preparation and characterization of three-layer, isotopically labelled core-shell nanoparticles; a tool for understanding mechanisms of bioavailability. NanoImpact. 2:54–60.
  • Meulenaer BD. 2009. Migration from packaging materials. In: Costa R, Kristbergsson K, editors. Predictive modeling and riskassessment. Vol. 4. Boston, MA: Springer US; p. 139–151.
  • Miltz J. 1987. Migration of low molecular weight species from packaging materials: theoretical and practical considerations. In: Gray JI, Harte BR, Miltz J, editors. Food Prod Compat Proc. Lancaster (PA): Technomic Publishing Company, Inc.; p. 30–37.
  • Mitrano DM, Lesher EK, Bednar A, Monserud J, Higgins CP, Ranville JF. 2012. Detecting nanoparticulate silver using single-particle inductively coupled plasma-mass spectrometry. Environ Toxicol Chem. 31:115–121.
  • Noonan GO, Whelton AJ, Carlander D, Duncan TV. 2014. Measurement methods to evaluate engineered nanomaterial release from food contact materials. Compr Rev Food Sci Food Saf. 13:679–692.
  • Nowack B, Ranville JF, Diamond S, Gallego-Urrea JA, Metcalfe C, Rose J, Horne N, Koelmans AA, Klaine SJ. 2012. Potential scenarios for nanomaterial release and subsequent alteration in the environment. Environ Toxicol Chem. 31:50–59.
  • Ntim SA, Thomas TA, Begley TH, Noonan GO. 2015. Characterisation and potential migration of silver nanoparticles from commercially available polymeric food contact materials. Food Addit Contam Part A. 32:1003–1011.
  • Ntim SA, Thomas TA, Noonan GO. 2016. Influence of aqueous food simulants on potential nanoparticle detection in migration studies involving nanoenabled food-contact substances. Food Addit Contam Part A. 33:905–912.
  • Pace HE, Rogers NJ, Jarolimek C, Coleman VA, Gray EP, Higgins CP, Ranville JF. 2012. Single particle inductively coupled plasma-mass spectrometry: a performance evaluation and method comparison in the determination of nanoparticle size. Environ Sci Technol. 46:12272–12280.
  • Panté N, Kann M. 2002. Nuclear Pore Complex Is Able to Transport Macromolecules with Diameters of ~39 nm. Mol Biol Cell. 13:425–434.
  • Persistence Market Research. 2014. Global study on nano-enabled packaging for food and beverages: intelligent packaging to witness highest growth by 2020. [Internet]. [ cited 2016 Sep 12]. Available from: http://www.persistencemarketresearch.com/market-research/nano-enabled-packaging-market.asp
  • Peters RJB, Rivera ZH, Van Bemmel G, Marvin HJP, Weigel S, Bouwmeester H. 2014. Development and validation of single particle ICP-MS for sizing and quantitative determination of nano-silver in chicken meat characterisation of nanomaterials in biological samples. Anal Bioanal Chem. 406:3875–3885.
  • Pillai KV, Hunt PR, Duncan TV. 2014. Nanoparticles in polymer nanocomposite food contact materials: uses, potential release, and emerging toxicological concerns. In: Snedeker SM, editor. Toxicants in food packaging and household plastics. London: Springer; p. 95–123.
  • Piringer O. 2007. Mathematical modelling of chemical migration from food contact materials. In: Barnes KA, Sinclar RC, Watson DH, editors. Chemical migration and food contact materials. Cambridge: Woodhead; p. 180–202.
  • Piringer O. 2008. A uniform model for prediction of diffusion coefficients with emphasis on plastic materials. In: Piringer OG, Baner AL, editors. Plastic packaging: interactions with food and pharmaceuticals. 2nd ed. Weinheim: Wiley-VCH Verlag GmbH & Co. KGaA; p. 163–193.
  • Poças MF, Oliveira JC, Oliveira FAR, Hogg T. 2008. A critical survey of predictive mathematical models for migration from packaging. Crit Rev Food Sci Nutr. 48:913–928.
  • Ramos K, Gómez-Gómez MM, Cámara C, Ramos L. 2016. Silver speciation and characterization of nanoparticles released from plastic food containers by single particle ICPMS. Talanta. 151:83–90.
  • Research and Markets. 2015. Global food packaging market 2015–2019. [Internet]. [ cited 2016 Sep 12]; p. 74. Available from: http://www.researchandmarkets.com/research/dnz2z7/global_food
  • [SCENIHR] Scientific Committee on Emerging and Newly Identified Health Risks. 2009. Risk assessment of products of nanotechnologies. Brussels: European Commission.
  • Schmidt B, Katiyar V, Plackett D, Larsen EH, Gerds N, Bender Koch C, Petersen JH. 2011. Migration of nanosized layered double hydroxide platelets from polylactide nanocomposite films. Food Addit Contam Part A. 28:956–966.
  • Schmidt B, Petersen JH, Bender Koch C, Plackett D, Johansen NR, Katiyar V, Larsen EH. 2009. Combining asymmetrical flow field-flow fractionation with light-scattering and inductively coupled plasma mass spectrometric detection for characterization of nanoclay used in biopolymer nanocomposites. Food Addit Contam Part A. 26:1619–1627.
  • Simon P, Chaudhry Q, Bakoš D. 2008. Migration of engineered nanoparticles from polymer packaging to food – a physicochemical view. J Food Nutr Res. 47:105–113.
  • Sinha SK, Chong WLM, Lim S-C. 2007. Scratching of polymers—modeling abrasive wear. Wear. 262:1038–1047.
  • Song H, Li B, Lin Q-B, Wu H-J, Chen Y. 2011. Migration of silver from nanosilver–polyethylene composite packaging into food simulants. Food Addit Contam Part A. 49:1–5.
  • Tiede K, Boxall ABA, Tear SP, Lewis J, David H, Hassellöv M. 2008. Detection and characterization of engineered nanoparticles in food and the environment. Food Addit Contam Part A. 25:795–821.
  • Vieira AC, Guedes RM, Tita V. 2014. Constitutive modeling of biodegradable polymers: hydrolytic degradation and time-dependent behavior. Int J Solids Struct. 51:1164–1174.
  • von der Kammer F, Legros S, Hofmann T, Larsen EH, Loeschner K. 2011. Separation and characterization of nanoparticles in complex food and environmental samples by field-flow fractionation. Trac Trends Anal Chem. 30:425–436.
  • von Goetz N, Fabricius L, Glaus R, Weitbrecht V, Günther D, Hungerbühler K. 2013. Migration of silver from commercial plastic food containers and implications for consumer exposure assessment. Food Addit Contam Part A. 30:612–620.
  • Witzler M, Küllmer F, Hirtz A, Günther K. 2016. Validation of Gold and Silver Nanoparticle Analysis in Fruit Juices by Single-Particle ICP-MS without Sample Pretreatment. J Agric Food Chem. 64:4165–4170.
  • Wyser Y, Adams M, Avella M, Carlander D, Garcia L, Pieper G, Rennen M, Schuermans J, Weiss J. 2016. Outlook and challenges of nanotechnologies for food packaging. Packag Technol Sci. 29:615–648.
  • Yohannes G, Wiedmer SK, Elomaa M, Jussila M, Aseyev V, Riekkola M-L. 2010. Thermal aggregation of bovine serum albumin studied by asymmetrical flow field-flow fractionation. Anal Chim Acta. 675:191–198.