Towards the regulation of aerosol emissions by their potential health impact: Assessing adverse effects of aerosols from wood combustion and ship diesel engine emissions by combining comprehensive data on the chemical composition and their toxicological effects on human lung cells

Ralf Zimmermann1, Thorsten Streibel2, Gunnar Dittmar3,4, Tamara Kanashova3,4, Jeroen Buters5,6, Sebastian Öder5,6, Hanns Rudolf Paur4, Marco Dilger4,7, Carsten Weiss4,7, Horst Harndorf2,4, Benjamin Stengel2,4, Maija-Riita Hirvonen4,8, Jorma Jokiniemi4,8, Karsten Hiller4,9, Sean Sapcariu4,9, Olli Sippula4,8, Jürgen Orasche1, Laarnie Müller1,10, Ahmed Rheda6,10, Johannes Passig1,2, Christian Radischat2,6, Hendryk Czech2,6, Petri Tiita8, Pasi I. Jalava8, Stefanie Kasurinen8, Theo Schwemer2, Pasi Yli-Prilä8, Jarkko Tissari8, Heikki Lamberg8, Jürgen Schnelle-Kreis2 and Further Members of the HICE Scientific Team , (1)Joint Mass Spectrometry Centre, Rostock University (Analyt. Chem.) & Helmholtz Zentrum München (HMGU/ CMA), Rostock/ Munich, Germany, (2)University of Rostock, Rostock, Germany, (3)Max-Delbrück-Centrum, Berlin, Germany, (4)HICE - Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health, Www.Hice-Vi.Eu, Germany, (5)Technical University Munich, Center of Allergy and Environment (ZAUM), Munich, Germany, (6)HICE - Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health, Munich, Germany, (7)Karlsruhe Institute of Technology, Karlsruhe, Germany, (8)University of Eastern Finland, Kuopio, Finland, (9)University of Luxembourg, Luxembourg, Luxembourg, (10)Helmholtz Center Munich, Oberschleissheim, Germany
Abstract:
Ship engine emissions are important regarding lung and cardiovascular diseases in coastal regions worldwide. Bio mass burning is made responsible for adverse health effects in many cities and rural regions. The Virtual Helmholtz Institute-HICE (www.hice-vi.eu) addresses chemical & physical properties and health effects of anthropogenic combustion emissions. Typical lung cell responses to combustion aerosols include inflammation and apoptosis, but a molecular link with the specific chemical composition in particular of ship emissions has not been established. Through an air-liquid interface exposure system (ALI), we exposed human lung cells at-site to exhaust fumes from a ship engine running on common heavy fuel oil (HFO) and cleaner-burning diesel fuel (DF) as well as to emissions of wood combustion compliances. A special field deployable ALI-exposition system and a mobile S2-biological laboratory were developed for this study. Human alveolar basal epithelial cells (A549 etc.) are ALI-exposed to fresh, diluted (1:40-1:100) combustion aerosols and subsequently were toxicologically and molecular-biologically characterized. Advanced chemical analyses of the exhaust aerosols were combined with transcriptional, proteomic and metabolomic profiling to characterise the cellular responses. The HFO ship emissions contained high concentrations of toxic compounds (transition metals, organic toxicants) and particle masses. The cellular responses included inflammation and oxidative stress. Surprisingly, the DF ship emissions, which predominantly contain rather “pure” carbonaceous soot and much less known toxicants, induced significantly broader biological effects, affecting essential cellular pathways (e.g., mitochondrial function and intracellular transport). Therefore the use of distillate fuels for shipping (this is the current emission reduction strategy of the IMO) appears insufficient for diminishing health effects. The study suggests rather reducing the particle emissions by secondary measures (filters) than shifting the fuel. In the case of wood combustion the reduction of soot and carcinogenic aromatic compounds is suggested. However, for both sources (wood and ship diesel) we found that effects of the gaseous pollutants (e.g. aldehydes) are potentially problematic.