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Inhalation Toxicology
International Forum for Respiratory Research
Volume 35, 2023 - Issue 1-2
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Research Articles

Predicting the in vitro dissolution rate constant of mineral wool fibers from fiber composition

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Pages 40-47 | Received 26 May 2022, Accepted 20 Nov 2022, Published online: 17 Jan 2023

References

  • Barly SHQ, Okhrimenko DV, Solvang M, Yue Y, Stipp SLS. 2019. Dissolution of stone wool fibers with phenol-urea-formaldehyde binder in a synthetic lung fluid. Chem Res Toxicol. 32, 12:2398–2410.
  • Christensen KA, Myers JT, Swanson JA. 2002. pH-dependent regulation of lysosomal calcium in macrophages. J Cell Sci. 115(3):599–607.
  • Donaldson K, Lang Tran C. 2004. An introduction to the short-term toxicology of respirable industrial fibres. Fund Mol Mech Mutagen. 553(1-2) :5–9.
  • Eastes W, Baron PA, Baier RE, Guldberg M, Potter R. 2007. Do vitreous fibers break in the lung? Inhal Toxicol. 19(4) :311–315.
  • Eastes WL, Potter RM, Hadley JG. 2000a. Estimating in vitro glass fiber dissolution rate from composition. Inhal Toxicol. 12(4):269–280.
  • Eastes WL, Potter RM, Hadley JG. 2000b. Estimation of dissolution rate from in vivo studies of synthetic vitreous fibers. Inhal Toxicol. 12(11):1037–1054.
  • [EC] European Commission. European Commission directive 97/69/EC. Brussels: European Commission. Off J Eur Commun. 1997;L343/19:19–20.
  • Guldberg M, Christensen VR, Perander M, Zoitos B, Koenig AR, Sebastian K. 1998. Measurement of in-vitro fibre dissolution rate at acidic pH. Ann Occup Hyg. 42(4) :233–243.
  • Guldberg M, et al. 2003. In-vitro dissolution of vitreous silicate fibres according to EURIMA test guideline - results of two round robins. Glass Sci Technol. 76:199–205.
  • Hesterberg TW, Chase G, Axten C, Miller WC, Musselman RP, Kamstrup O, Hadley J, Morscheidt C, Bernstein DM, Thevenaz P. 1998. Biopersistence of synthetic vitreous fibers and amosite asbestos in the rat lung following inhalation. Toxicol Appl Pharmacol. 151(2) :262–275. Erratum in: Toxicol Appl Pharmacol 1999;155(3):292.
  • Innes E, Yiu HHP, McLean P, Brown W, Boyles M. 2021. Simulated biological fluids - a systematic review of their biological relevance and use in relation to inhalation toxicology of particles and fibres. Crit Rev Toxicol. 51(3) :217–248.
  • Kanapilly GM, Raabe OG, Goh CH, Chimenti RA. 1973. Measurement of in vitro dissolution of aerosol particles for comparison to in vivo dissolution in the lower respiratory tract after inhalation. Health Phys. 24(5):497–507.
  • Knudsen T, Guldberg M, Christensen V, Jensen SL. 1996. New type of stonewool (HT fibres) with a high dissolution rate at pH = 4.5. Glasstech Ber Glass Sci Technol. 69(10):331–337.
  • Mattson SM 1994a. Glass fibres in simulated lung fluid: dissolution behaviour and analytical requirements. Ann Occup Hyg. 38( 6):857–877.
  • Mattson SM 1994b. Glass fiber dissolution in simulated lung fluid and measures needed to improve consistency and correspondence to in vivo dissolution. Environ Health Perspect. 102(Suppl 5) :87–902.
  • Maxim LD, Hadley JG, Potter RM, Niebo R. 2006. The role of fiber durability/biopersistence of silica-based synthetic vitreous fibers and their influence on toxicology. Regul Toxicol Pharmacol. 46(1):42–62.
  • Mogensen G. 1984. The durability of mineral fibers in various buffer solutions. Rivista Della Staz. Sper Vetro. 5:135–138.
  • Nyberg K, Johansson A, Camner P. 1989a. Intraphagosomal pH in alveolar macrophages studied with fluorescein-labeled amorphous silica particles. Exp Lung Res. 15(1):49–62.
  • Nyberg K, Johansson U, Johansson A, Camner P. 1992. Phagolysosomal pH in alveolar macrophages. Environ Health Perspect. 97:149–152.
  • Nyberg K, Johansson U, Rundquist I, Camner P. 1989b. Estimation of pH in individual alveolar macrophage phagolysosomes. Exp Lung Res. 15(4) :499–510.
  • Okhrimenko DV, et al. February 2022. The dissolution of stone wool fibers with sugar-based binder and oil in different synthetic lung fluids. Toxicol In Vitro. 78.
  • Paul A. 1982. Chemistry of glasses. New York (NY): Chapman and Hall.
  • Potter R. 2000. Method for determination of in-vitro fiber dissolution rate by direct optical measurement of diameter decrease. Glass Sci Technol Glastechnische Berichte. 73( 2):46–55.
  • Potter RM, Hoffman JW, Hadley JG. 2017. An update of the equation for predicting the dissolution rate of glass fibers from their chemical compositions. Inhal Toxicol. 29(4):145–146.
  • Sauer WG, Werle K, Waindok H, Hirth S, Hachmoller O, Wohlleben W. 2021. Critical choices in predicting stone wool biodurability: lysosomal fluid compositions and binder effects. Chem Res Toxicol. 34(3) :780–792.
  • Sebastian K. 2002. EURIMA test guideline: in-vitro acellular dissolution of man-made vitreous silicate fibres. Glass Sci Technol Glastechnische Berichte. 75:263–270.
  • Silver IA, Murrills RJ, Etherington DJ. 1988. Microelectrode studies on the acid microenvironment beneath adherent macrophages and osteoclasts. Exp Cell Res. 175(2) :266–276.
  • Steenberg T, Hjenner HK, Jensen SL, Guldberg M, Knudsen T. 2001. Dissolution behaviour of biosoluble HT stone wool fibres. Glasstech Ber Glass Sci Technol. 74( 4):97–105.
  • Stefaniak AB, et al. 2005. Characterization of phagolysosomal simulant fluid for study of beryllium aerosol particle dissolution. Toxicol In Vitro. 19( 1):123–134.