Publication Cover
Inhalation Toxicology
International Forum for Respiratory Research
Volume 30, 2018 - Issue 4-5
3,747
Views
28
CrossRef citations to date
0
Altmetric
Research Article

Physicochemical studies of direct interactions between lung surfactant and components of electronic cigarettes liquid mixtures

, , , &
Pages 159-168 | Received 05 Jan 2018, Accepted 16 May 2018, Published online: 22 Jun 2018

References

  • Asgharian B, Price OT, Rostami AA, Pithawalla YB. (2018). Deposition of inhaled electronic cigarette aerosol in the human oral cavity. J Aerosol Sci 116:34–47.
  • Baldelli S, Schnitzer C, Shults MJ. (1997). Sum frequency generation investigation of glycerol/water surfaces. J Phys Chem B 101:4607–12.
  • Banerjee R, Bellare JR. (2001). Scoring of surface parameters of physiological relevance to surfactant therapy in respiratory distress syndrome. J Appl Physiol 90:1447–54.
  • Bastacky J, Lee CY, Goerke J, et al. (1995). Alveolar lining layer is thin and continuous: low-temperature scanning electron microscopy of rat lung. J Appl Physiol (1985) 79:1615–28.
  • Bernhard W, Mottaghian J, Gebert A, et al. (2000). Commercial versus native surfactants. Surface activity, molecular components, and the effect of calcium. Am J Respir Crit Care Med 162:1524–33.
  • Boonman A, Machiels FHJ, Snik AFM, Egberts J. (1987). Squeeze-out from mixed monolayers of dipalmitoylphosphatidylcholine and egg phosphatidylglycerol. J Coll Interface Sci 120:456–68.
  • Brandon TH, Goniewicz ML, Hanna NH, et al. (2015). Electronic nicotine delivery systems: a policy statement from the American Association for Cancer Research and the American Society of Clinical Oncology. J Clin Oncol 33:952–63.
  • Brown CJ, Cheng JM. (2014). Electronic cigarettes: product characterisation and design considerations. Tob Control 23:ii4–10.
  • Callahan-Lyon P. (2014). Electronic cigarettes: human health effects. Tob Control 23:ii36–40.
  • Cheng T. (2014). Chemical evaluation of electronic cigarettes. Tob Control 23:ii11–7.
  • Cho JH, Paik SY. (2016). Association between electronic cigarette use and asthma among high school students in South Korea. PLoS One 11:e0151022.
  • Davies MJ, Birkett JW, Kotwa M, et al. (2017). The impact of cigarette/e-cigarette vapour on simulated pulmonary surfactant monolayers under physiologically relevant conditions. Surf Interface Anal 49:654–65.
  • D'Errico G, Ciccarelli D, Ortona O. (2005). Effect of glycerol on micelle formation by ionic and nonionic surfactants at 25 degrees C. J Colloid Interface Sci 286:747–54.
  • Dow Chemicals. (2017). Available from: https://dowac.custhelp.com/app/answers/detail/a_id/7484/∼/propylene-glycols—surface-tension. [Last accessed: 1 May 2017].
  • Enhörning G. (1977). Pulsating bubble technique for evaluating pulmonary surfactant. J Appl Physiol Respir Environ Exerc Physiol 43:198–203.
  • Farsalinos KE, Le Houezec J. (2015). Regulation in the face of uncertainty: the evidence on electronic nicotine delivery systems (e-cigarettes). Risk Manag Healthc Policy 8:157–67.
  • Farsalinos KE, Polosa R. (2014). Safety evaluation and risk assessment of electronic cigarettes as tobacco cigarette substitutes: a systematic review. Ther Adv Drug Saf 5:67–86.
  • Farsalinos KE, Romagna G, Allifranchini E, et al. (2013). Comparison of the cytotoxic potential of cigarette smoke and electronic cigarette vapour extract on cultured myocardial cells. Int J Environ Res Public Health 10:5146–62.
  • Fuoco FC, Buonanno G, Stabile L, Vigo P. (2014). Influential parameters on particle concentration and size distribution in the mainstream of e-cigarettes. Environ Pollut 184:523–9.
  • Goniewicz ML, Knysak J, Gawron M, et al. (2014). Levels of selected carcinogens and toxicants in vapour from electronic cigarettes. Tob Control 23:133–9.
  • Gorguner M, Akdun M. (2010). Acute inhalation injury. Eurasian J Med 42:28–35.
  • Gradoń L, Podgórski A. (1989). Hydrodynamical model of pulmonary clearance. Chem Eng Sci 44:741–9.
  • Gradoń L, Podgórski A, Sosnowski TR. (1996). Experimental and theoretical investigations of transport properties of DPPC monolayer. J Aerosol Med 9:357–67.
  • Green FHY, Schürch S, Gehr P, Lee MM. 2000. The role of surfactant in disease associated particle exposure. In: Gehr P, Heyder J (eds.) Particle-lung interactions. New York-Basel: Marcel Dekker, Inc.; Chapter 14, 533–76.
  • Haagsman HP, Van Golde LMG. (1985). Lung surfactant and pulmonary toxicology. Lung 163:275–303.
  • Hajek P, Etter JF, Benowitz N, et al. (2014). Electronic cigarettes: review of use, content, safety, effects on smokers and potential for harm and benefit. Addiction 109:1801–10.
  • Herold R, Bünger H, Pison U. (1996). Assessment of pulmonary surfactant function using a captive-bubble surfactometer. Coll Surf A: Physicochem Eng Aspects 114:211–9.
  • Herting E, Rauprich P, Stichtenoth G, et al. (2001). Resistance of different surfactant preparations to inactivation by meconium. Pediatr Res 50:44–9.
  • Iskandar AR, Gonzales-Suarez I, Majeed S, et al. (2016). A framework for in vitro systems toxicology assessment of e-liquids. Toxicol Mech Methods 26:392–413.
  • Kodama AT, Kuo CC, Boatwright T, Denninin M. (2014). Investigating the effect of particle size on pulmonary surfactant phase behavior. Biophys J 107:1573–81.
  • Kondej D, Sosnowski TR. (2013). Alteration of biophysical activity of pulmonary surfactant by aluminosilicate nanoparticles. Inhal Toxicol 25:77–83.
  • Kondej D, Sosnowski TR. (2016). Effect of clay nanoparticles on model lung surfactant: a potential marker of hazard from nanoaerosol inhalation. Environ Sci Pollut Res 23:4660–9.
  • Lunkenheimer K, Winsel K, Fruhner H, et al. (1996). Dynamic surface tension and surface area elasticity of adsorbed pulmonary surfactant layers. Coll Surf A: Physicochem Eng Aspects 114:199–210.
  • Manigrasso M, Buonanno G, Fuoco FC, et al. (2015). Aerosol deposition doses in the human respiratory tree of electronic cigarette smokers. Environ Pollut 196:257–67.
  • Matalon S, DeMarco V, Haddad IY, et al. (1996). Inhaled nitric oxide injures the pulmonary surfactant system of lambs in vivo. Am J Physiol 270:L273–80.
  • McCauley L, Markin C, Hosmer D. (2012). An unexpected consequence of electronic cigarette use. Chest 141:1110–3.
  • McKay CA. Jr. (2014). Toxin-induced respiratory distress. Emerg Med Clin North Am 32:127–47.
  • McRobbie H, Bullen C, Hartmann-Boyce J, Hajek P. (2014). Electronic cigarettes for smoking cessation and reduction. Cochrane Database Syst Rev 12:CD010216.
  • Mercer RR, Russell ML, Crapo JD. (1994). Alveolar septal structure in different species. J Appl Physiol 77:1060–6.
  • MPPD. (2015). Multiple-path particle dosimetry model. Albuquerque, NM, USA: Applied Research Associates, Inc. Available from: http://www.ara.com/products/mppd.htm (Accessed on August 30, 2015).
  • Neumann AW, David R, Zuo Y. (2011). Applied surface thermodynamics, 2nd ed. Boca Raton-London-New York: CRC Press.
  • Notter RH. 2000. Lung surfactants: basic science and clinical applications. New York-Basel: Marcel Dekker, Inc.
  • Notter RH, Taubold R, Davis RD. (1982). Hysteresis in saturated phospholipid films and its potential relevance for lung surfactant function in vivo. Exp Lung Res 3:109–27.
  • Ochs M, Nyengaard JR, Jung A, et al. (2004). The number of alveoli in the human lung. Am J Respir Crit Care Med 169:120–4.
  • Orr MS. (2014). Electronic cigarettes in the USA: a summary of available toxicology data and suggestions for the future. Tob Control 23:ii18–22.
  • Pastrana-Rios B, Flach CR, Brauner JW, et al. (1994). A direct test of the “squeeze-out” hypothesis of lung surfactant function. External reflection FT-IR at the air/water interface. Biochemistry 33:5121–7.
  • Pocivavsek L, Gavrilov K, Cao KD, et al. (2011). Glycerol-induced membrane stiffening: the role of viscous fluid adlayers. Biophys J 101:118–27.
  • Polosa R, Campagna D, Sands MF. (2016). Counseling patients with asthma and allergy about electronic cigarettes: an evidence-based approach. Ann Allergy Asthma Immunol 116:106–11.
  • Przybyla RJ, Wright J, Parthiban R, et al. (2017). Electronic cigarette vapor alters the lateral structure but not tensiometric properties of calf lung surfactant. Respir Res 18:193.
  • Robinson RJ, Hensel EC, Morabito PN, Roundtree KA. (2015). Electronic cigarette topography in the natural environment. PLoS One 10:e0129296.
  • Rong Y-H, Liu W, Wang C, et al. (2011). Temperature distribution in the upper airway after inhalation injury. Burns 37:1187–91.
  • Rowell TR, Tarran R. (2015). Will chronic e-cigarette use cause lung disease? Am J Physiol Lung Cell Mol Physiol 309:L1398–409.
  • Rüdiger M, Tölle A, Meier W, Rüstow B. (2005). Naturally derived commercial surfactants differ in composition of surfactant lipids and in surface viscosity. Am J Physiol Lung Cell Mol Physiol 288:L379–83.
  • Schleh C, Kreyling WG, Lehr CM. (2013). Pulmonary surfactant is indispensable in order to simulate the in vivo situation. Part Fibre Toxicol 10:6.
  • Schraufnagel DE, Blasi F, Drummond MB; Forum of International Respiratory Societies, et al. (2014). Electronic cigarettes. A position statement of the forum of international respiratory societies. Am J Respir Crit Care Med 190:611–8.
  • Selladurai SL, Lamarche RM, Schmidt R, DeWolf CE. (2016). Model lung surfactant films: why composition matters. Langmuir 32:10767–75.
  • Sosnowski TR, Gradoń L, Podgórski A. (2000). Influence of insoluble aerosol deposits on the surface activity of the pulmonary surfactant: a possible mechanism of alveolar clearance retardation. Aerosol Sci Technol 32:52–60.
  • Sosnowski TR, Gradoń L, Skoczek M, Droździel H. (1998). Experimental evaluation of the importance of the pulmonary surfactant for oxygen transfer rate in human lungs. Int J Occup Saf Ergon 4:391–409.
  • Sosnowski TR, Koliński M, Gradoń L. (2011). Interactions of benzo[a]pyrene and diesel exhaust particulate matter with the lung surfactant system. Ann Occup Hyg 55:329–38.
  • Sosnowski TR, Kramek-Romanowska K. (2016). Predicted deposition of e-cigarette aerosol in the human lungs. J Aerosol Med Pulm Drug Deliv 29:299–309.
  • Stone KC, Mercer RR, Gehr P, et al. (1992). Allometric relationships of cell numbers and size in the mammalian lung. Am J Respir Cell Mol Biol 6:235–43.
  • Wallace WE, Keane MJ, Murray DK, et al. (2007). Phospholipid lung surfactant and nanoparticle surface toxicity: lessons from diesel soots and silicate dusts. J Nanopart Res 9:23–38.
  • Zhang H, Wang YE, Fan Q, Zuo YY. (2011). On the low surface tension of lung surfactant. Langmuir 27:8351–8.