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Development of Models for the Estimation of Mouth Level Exposure to Aerosol Constituents from a Heat-Not-Burn Tobacco Product Using Mouthpiece Analysis


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1. Ashton, H. and D.W. Watson: Puffing Frequency and Nicotine Intake in Cigarette Smokers; Brit. Med. J. 3 (1970) 679–681. Search in Google Scholar

2. Forbes, W.F., J.C. Robinson, J.A. Hanley, and H.N. Colburn: Studies on the Nicotine Exposure of Individual Smokers. I. Changes in Mouth Level Exposure to Nicotine on Switching to Lower Nicotine Cigarettes; Int. J. Addict. 11 (1976) 933–950. Search in Google Scholar

3. Schulz, W. and F. Seehofer: Smoking Behaviour in Germany – The Analysis of Cigarette Butts (KIPA); in: Smoking Behaviour, edited by R.E. Thornton, Churchill-Livingstone, Edinburgh, United Kingdom, 1978, pp. 259–276. Search in Google Scholar

4. Hyodo, T., K. Minagawa, T. Inoue, J. Fujimoto, N. Minami, R. Bito, and A. Mikita: Estimation of Mouth Level Exposure to Smoke Constituents of Cigarettes with Different “Tar” Levels Using Filter Analysis; Regul. Toxicol. Pharmacol. 67 (2013) 486–498. DOI: 10.1016/j.yrtph.2013.09.009 Search in Google Scholar

5. Ding YS, J. Ward, D. Hammond, and C.H. Watson: Mouth-Level Intake of Benzo[a]pyrene from Reduced Nicotine Cigarettes; Int. J. Environ. Res. Public. Health 11 (2014) 11898–11914. DOI: 10.3390/ijerph111111898 Search in Google Scholar

6. Pauly, J.L., R.J. O’Connor, G.M. Paszkiewicz, K.M. Cummings, M.V. Djordjevic, and P.G. Shields: Cigarette Filter-Based Assays as Proxies for Toxicant Exposure and Smoking Behavior – A Literature Review; Cancer. Epidemiol. Biomarkers Prev. 18 (2009) 3321–3333. DOI: 10.1158/1055-9965.EPI-09-0925 Search in Google Scholar

7. Clayton, P.M., K. Prasad, and A. Sisodiya:The Development and Application of a Method for the Estimation of Mouth Level Exposure (MLE) to Four Tobacco Specific Nitrosamines; CORESTA Congress, Edinburgh, 2010, SS 10. Available at: https://www.coresta.org/abstracts/development-and-application-method-estimation-mouth-level-exposure-mle-four-tobacco (accessed November 2016) Search in Google Scholar

8. Moldoveanu, S., W. Coleman III, and J. Wilkins: Determination of Carbonyl Compounds in Exhaled Cigarette Smoke; Beitr. Tabakforsch. Int. 22 (2007) 346–357. DOI: 10.2478/cttr-2013-0841 Search in Google Scholar

9. Moldoveanu, S., W. Coleman III, and J. Wilkins: Determination of Hydroxybenzenes in Exhaled Cigarette Smoke; Beitr. Tabakforsch. Int. 23 (2008) 97–105. DOI: 10.2478/cttr-2013-0852 Search in Google Scholar

10. Moldoveanu, S., W. Coleman III, and J. Wilkins: Determination of Polycyclic Aromatic Hydrocarbons in Exhaled Cigarette Smoke; Beitr. Tabakforsch. Int. 23 (2008) 85–97. DOI: 10.2478/cttr-2013-0851 Search in Google Scholar

11. Moldoveanu, S., W. Coleman III, and J. Wilkins: Determination of Benzene and Toluene in Exhaled Cigarette Smoke; Beitr. Tabakforsch. Int. 23 (2008) 107–114. DOI: 10.2478/cttr-2013-0853 Search in Google Scholar

12. Urban, H.J., A.R. Tricker, D.E. Leyden, N. Forte, V. Zenzen, A. Feuersenger, M. Assink, G. Kallischnigg, and M.K. Schorp: Reduced Exposure Evaluation of an Electrically Heated Cigarette Smoking System – Part 8: Nicotine Bridging - Estimating Smoke Constituent Exposure by their Relationships to Both Nicotine Levels in Mainstream Cigarette Smoke and in Smokers; Regul. Toxicol. Pharmacol. 64 Suppl. (2012) S85–S97. DOI:10.1016/j.yrtph.2012.08.005 Search in Google Scholar

13. Zenzen, V., J. Diekmann, B. Gerstenberg, S. Weber, S. Wittke, and M.K. Schorp: Reduced Exposure Evaluation of an Electrically Heated Cigarette Smoking System – Part 2: Smoke Chemistry and In Vitro Toxicological Evaluation Using Smoking Regimens Reflecting Human Puffing Behavior; Regul. Toxicol. Pharmacol. 64 Suppl. 2 (2012) S11–S34. DOI: 10.1016/j.yrtph.2012.08.004 Search in Google Scholar

14. De La Bourdonnaye, G., T. Bachmann, C. Haziza, P. Picavet, G. Baker, D. Skiada, K. Jarus-Dziedzic, and F. Lüdicke: Investigation on Puffing Topography Parameters and Product Evaluation Recorded During Five Days of Use of the Tobacco Heating System 2.2. A Comparison With Continued Combustible Cigarette Use. Available at: https://www.pmiscience.com/library/investigation-puffing-topography-parameters-and-product-evaluation-recorded-during-five-days (accessed November, 2016) Search in Google Scholar

15. International Organization of Standardization (ISO): ISO 3402:1999 Tobacco and Tobacco Products – Atmosphere for Conditioning and Testing; ISO, Geneva, Switzerland, 1999. Available at: http://www.iso.org/iso/home/store/catalogue_tc/catalogue_detail.htm?csnumber=28324 (accessed November, 2016) Search in Google Scholar

16. International Organization of Standardization (ISO): ISO 4387: 2000 Cigarettes – Determination of Total and Nicotine Free Dry Particulate Matter Using a Routine Analytical Smoking Machine; ISO, Geneva, Switzerland, 2000. Available at: http://www.iso.org/iso/iso_catalogue/catalogue_tc/catalogue_detail.htm?csnumber=28323 (accessed November, 2016) Search in Google Scholar

17. Health Canada: Official Method T-115 – Determination of “Tar”, Nicotine and Carbon Monoxide in Mainstream Tobacco; 1999. Search in Google Scholar

18. International Organization of Standardization (ISO): ISO 8454:2007 Cigarettes – Determination of Carbon Monoxide in the Vapour Phase of Cigarette Smoke – NDIR Method; ISO, Geneva, Switzerland, 2007. Available at: http://www.iso.org/iso/home/store/catalogue_tc/catalogue_detail.htm?csnumber=41168 (accessed November, 2016) Search in Google Scholar

19. International Organization of Standardization (ISO): ISO 10315:2013 Cigarettes – Determination of Nicotine in Smoke Condensates – Gas-Chromatographic Method; ISO, Geneva, Switzerland, 2013. Available at: http://www.iso.org/iso/home/store/catalogue_tc/catalogue_detail.htm?csnumber=56744 (accessed November, 2016) Search in Google Scholar

20. Cooperation Centre for Scientific Research Relative to Tobacco (CORESTA): CORESTA Recommended Method CRM No 70 – Determination of Selected Volatile Organic Compounds in Mainstream Cigarette Smoke by GC-MS; CORESTA, Paris, France, 2014. Available at https://www.coresta.org/sites/default/files/technical_documents/main/CRM_70-update%28July14%29.pdf (accessed November, 2016) Search in Google Scholar

21. Health Canada: Official Method T-112 – Determination of Pyridine, Quinoline and Styrene in Mainstream Tobacco Smoke; 1999. Search in Google Scholar

22. Cooperation Centre for Scientific Research Relative to Tobacco (CORESTA): CORESTA Recommended Method CRM No 74 – Determination of Selected Carbonyls in Mainstream Cigarette Smoke by HPLC; CORESTA, Paris, France, 2014. Available at https://www.coresta.org/sites/default/files/technical_documents/main/CRM_74-update%28July14%29.pdf (accessed November, 2016) Search in Google Scholar

23. Health Canada: Official Method T-102 – Determination of 1- and 2-Aminonapthalene and 3- and 4-Aminobiphenyl in Mainstream Tobacco Smoke, 1999. Search in Google Scholar

24. Health Canada: Official Method T-110 – Determination of Oxides of Nitrogen in Mainstream Tobacco Smoke, 1999. Search in Google Scholar

25. Cooperation Centre for Scientific Research Relative to Tobacco (CORESTA): CORESTA Recommended Method CRM 79 – Determination of Ammonia in Tobacco by Ion Chromatographic Analysis; CORESTA, Paris, France, 2015. Available at: https://www.coresta.org/sites/default/files/technical_documents/main/CRM_79.pdf (accessed November 2016) Search in Google Scholar

26. Cooperation Centre for Scientific Research Relative to Tobacco (CORESTA): CORESTA Recommended Method CRM No 75 – Determination of Tobacco Specific Nitrosamines in Mainstream Cigarette Smoke by LC-MS/MS; CORESTA, Paris, France, 2014. Available at: https://www.coresta.org/sites/default/files/technical_documents/main/CRM_75-updateJuly14.pdf (accessed November, 2016) Search in Google Scholar

27. International Organization of Standardization (ISO): ISO 22634:2008 Determination of Benzo[a]pyrene in Cigarette Mainstream Smoke – Method Using Gas Chromatography/Mass Spectrometry; ISO, Geneva, Switzerland, 2000. Available at: http://www.iso.org/iso/home/store/catalogue_tc/catalogue_detail.htm?csnumber=41040 (accessed November, 2016) Search in Google Scholar

28. Cooperation Centre for Scientific Research Relative to Tobacco (CORESTA): CORESTA Recommended Method CRM No 9 – Determination of Nicotine in Cigarette Filters by Gas Chromatographic Analysis; CORESTA, Paris, France, 2009. Available at https://www.coresta.org/sites/default/files/technical_documents/main/CRM_09-update2.pdf (accessed November, 2016) Search in Google Scholar

29. Overton, J.R.: Filtration of Cigarette Smoke: Relative Contributions of Inertial Impaction, Diffusional Deposition, and Direct Impaction; Beitr. Tabakforsch. 7 (1973) 117–120. DOI: 10.2478/cttr-2013-0319 Search in Google Scholar

30. Dwyer, R.W. and S.G. Abel: The Efficiencies of Cellulose Acetate Filters; Beitr. Tabakforsch. Int. 13 (1986) 243–253. DOI: 10.2478/cttr-2013-0574 Search in Google Scholar

31. Norman, V., A.M. Ihrig, R.A. Shoffner, and M.S. Ireland: The Effect of Tip Dilution on the Filtration Efficiency of Upstream and Downstream Segments of Cigarette Filters; Beitr. Tabforsch. Int. 12 (1984) 178–185. DOI: 10.2478/cttr-2013-0539 Search in Google Scholar

32. Shepperd, C.J., F.K. St. Charles, M. Lien, and M. Dixon: Validation of Methods for Determining Consumer Smoked Cigarette Yields from Cigarette Filter Analysis; Beitr. Tabforsch. Int. 22 (2006) 176–184. DOI: 10.2478/cttr-2013-0826 Search in Google Scholar

eISSN:
1612-9237
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
General Interest, Life Sciences, other, Physics