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Original Article

Analysis of nanoparticle–protein coronas formed in vitro between nanosized welding particles and nasal lavage proteins

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Pages 226-234 | Received 09 Oct 2014, Accepted 09 Apr 2015, Published online: 17 Jul 2015

References

  • Albanese A, Walkey CD, Olsen JB, Guo H, Emili A, Chan WCW. 2014. Secreted biomolecules alter the biological identity and cellular interactions of nanoparticles. Acs Nano 8:5515–26
  • Antonini JM. 2003. Health effects of welding. Crit Rev Toxicol 33:61–103
  • Bantscheff M, Lemeer S, Savitski MM, Kuster B. 2012. Quantitative mass spectrometry in proteomics: critical review update from 2007 to the present. Anal Bioanal Chem 404:939–65
  • Bartlett JA, Albertolle ME, Wohlford-Lenane C, Pezzulo AA, Zabner J, Niles RK, et al. 2013. Protein composition of bronchoalveolar lavage fluid and airway surface liquid from newborn pigs. Am J Physiol Lung Cell Mol Physiol 305:L256–66
  • Benson LM, Mason CJ, Friedman O, Kita H, Bergen Iii HR, Plager DA. 2009. Extensive fractionation and identification of proteins within nasal lavage fluids from allergic rhinitis and asthmatic chronic rhinosinusitis patients. J Sep Sci 32:44–56
  • Bewick V, Cheek L, Ball J. 2004. Statistics review 10: further nonparametric methods. Crit Care 8:196–200
  • Casado B. 2004. Proteomics for nasal secretion analysis. Curr Allergy Asthma Rep 4:224–9
  • Casado B, Pannell LK, Iadarola P, Baraniuk JN. 2005. Identification of human nasal mucous proteins using proteomics. Proteomics 5:2949–59
  • Cedervall T, Lynch I, Lindman S, Berggård T, Thulin E, Nilsson H, et al. 2007. Understanding the nanoparticle–protein corona using methods to quantify exchange rates and affinities of proteins for nanoparticles. Proc Natl Acad Sci USA 104:2050–5
  • Chen C-L, Zhang H, Ye Q, Hsieh W-Y, Hitchens TK, Shen H-H, et al. 2011. A new nano-sized iron oxide particle with high sensitivity for cellular magnetic resonance imaging. Mol Imaging Biol 13:825–39
  • Dell'orco D, Lundqvist M, Oslakovic C, Cedervall T, Linse S. 2010. Modeling the time evolution of the nanoparticle-protein corona in a body fluid. PLoS One 5:1–8
  • Demokritou P, Kavouras I, Ferguson S, Koutrakis P. 2002. Development of a high volume cascade impactor for toxicological and chemical characterization studies. Aerosol Sci Technol 36:925–33
  • Diz AP, Carvajal-Rodriguez A, Skibinski DO. 2011. Multiple hypothesis testing in proteomics: a strategy for experimental work. Mol Cell Proteomics 10:M110 004374
  • De Uña-Alvarez J, Carvajal-Rodriguez A. 2010. ‘SGoFicance Trace’: assessing significance in high dimensional testing problems. PLoS One 5:e15930
  • Ghafouri B, Karlsson H, Mörtstedt H, Lewander A, Tagesson C, Lindahl M. 2007. 2,5-Dihydroxybenzoic acid instead of alpha-cyano-4-hydroxycinnamic acid as matrix in matrix-assisted laser desorption/ionization time-of-flight mass spectrometry for analyses of in-gel digests of silver-stained proteins. Anal Biochem 371:121–3
  • Isaxon C, Dierschke K, Pagels J, Löndahl J, Gudmundsson A, Hagerman I, et al. 2013. A novel system for source characterization and controlled human exposure to nanoparticle aggregates generated during gas–metal arc welding. Aerosol Sci Technol 47:52–9
  • Jenkins NT, Eagar TW. 2005. Chemical analysis of welding fume particles – Airborne particle size is the most important factor in determining the accuracy of a method for chemical analysis. Weld J 84:87S–93
  • Jensen KA. 2011. WP 4: Physicochemical Characterisation of Manufactured Nanomaterials (MNs) and Exposure Media (EMs). Available from: http://www.nanogenotox.eu/files/PDF/web%20nanogenotox%20dispersion%20protocol.pdf. Accessed on 29 June 2015
  • Kosanam H, Sato M, Batruch I, Smith C, Keshavjee S, Liu M, Diamandis EP. 2012. Differential proteomic analysis of bronchoalveolar lavage fluid from lung transplant patients with and without chronic graft dysfunction. Clin Biochem 45:223–30
  • Lundqvist M, Stigler J, Cedervall T, Berggard T, Flanagan MB, Lynch I, et al. 2011. The evolution of the protein corona around nanoparticles: a test study. Acs Nano 5:7503–9
  • Maynard AD, Kuempel ED. 2005. Airborne nanostructured particles and occupational health. J Nanopart Res 7:587–614
  • Monopoli MP, Walczyk D, Campbell A, Elia G, Lynch I, Bombelli FB, Dawson KA. 2011. Physical–chemical aspects of protein corona: relevance to in vitro and in vivo biological impacts of nanoparticles. J Am Chem Soc 133:2525–34
  • Mygind N, Dahl R. 1998. Anatomy, physiology and function of the nasal cavities in health and disease. Adv Drug Deliv Rev 29:3–12
  • Mörtstedt H, Kåredal MH, Jönsson BAG, Lindh CH. 2013. Screening method using selected reaction monitoring for targeted proteomics studies of nasal lavage fluid. J Proteome Res 12:234–47
  • Nawrot T, Nemmar A, Nemery B. 2006. Update in environmental and occupational medicine 2005. Am J Respir Crit Care Med 173:948–52
  • Oberdorster G, Oberdorster E, Oberdorster J. 2005. Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles. Environ Health Perspect 113:823–39
  • Saptarshi SR, Duschl A, Lopata AL. 2013. Interaction of nanoparticles with proteins: relation to bio-reactivity of the nanoparticle. J Nanobiotechnol 11:26 doi: 10.1186/1477-3155-11-26
  • Shevchenko A, Wilm M, Vorm O, Mann M. 1996. Mass spectrometric sequencing of proteins silver-stained polyacrylamide gels. Anal Chem 68:850–8
  • Simpson DG, Margolin BH. 1986. Recursive nonparametric testing for dose-response relaflonships subject to downturns at high doses. Biometrika 73:589–96
  • Sjogren B, Langard S. 2004. RE: pulmonary effects of welding fumes: review of worker and experimental animal studies Antonini et al. 2003. Am J Ind Med 43:350–60 (Am J Ind Med 45:478–9)
  • Tenzer S, Docter D, Kuharev J, Musyanovych A, Fetz V, Hecht R, et al. 2013. Rapid formation of plasma protein corona critically affects nanoparticle pathophysiology. Nat Nano 8:772–81
  • Tenzer S, Docter D, Rosfa S, Wlodarski A, Kuharev J, Rekik A, et al. 2011. Nanoparticle size is a critical physicochemical determinant of the human blood plasma corona: a comprehensive quantitative proteomic analysis. Acs Nano 5:7155–67