Abstract
The pollen grains of Ambrosia spp. are considered to be important aeroallergens in parts of southern and central Europe. Back-trajectories have been analysed with the aim of finding the likely sources of Ambrosia pollen grains that arrived at Poznań (Poland). Temporal variations in Ambrosia pollen at Poznań from 1995–2005 were examined in order to identify Ambrosia pollen episodes suitable for further investigation using back-trajectory analysis. The trajectories were calculated using the transport model within the Lagrangian air pollution model, ACDEP (Atmospheric Chemistry and Deposition). Analysis identified two separate populations in Ambrosia pollen episodes, those that peaked in the early morning between 4 a.m. and 8 a.m., and those that peaked in the afternoon between 2 p.m. and 6 p.m.. Six Ambrosia pollen episodes between 2001 and 2005 were examined using back-trajectory analysis. The results showed that Ambrosia pollen episodes that peaked in the early morning usually arrived at Poznań from a southerly direction after passing over southern Poland, the Czech Republic, Slovakia and Hungary, whereas air masses that brought Ambrosia pollen to Poznań during the afternoon arrived from a more easterly direction and predominantly stayed within the borders of Poland. Back-trajectory analysis has shown that there is a possibility that long-range transport brings Ambrosia pollen to Poznań from southern Poland, the Czech Republic, Slovakia and Hungary. There is also a likelihood that Ambrosia is present in Poland, as shown by the arrival of pollen during the afternoon that originated primarily from within the country.
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References
Belmonte J, Vendrell M, Roure JM, Vidal J, Botey J, Cadahía A (2000) Levels of Ambrosia pollen in the atmospheric spectra of Catalan aerobiological stations. Aerobiologia 16(1):93–99
Brandt J, Christensen JH, Frohn LM, Berkowicz R, Palmgren F (2000) The DMU-ATMI THOR air pollution forecast system - system description, NERI Technical Report No. 321, National Environmental Research Institute, P.O. Box 358, Frederiksborgvej 399, DK-4000 Roskilde, Denmark: p 60
Brandt J, Christensen JH, Frohn LM, Berkowicz R (2001a) Operational air pollution forecasts from regional scale to urban street scale. Part 1: system description. Phys Chem Earth Pt B 26(10):781–786
Brandt J, Christensen JH, Frohn LM, Berkowicz R (2001b) Operational air pollution forecasts from regional scale to urban street scale. Part 2: performance evaluation. Phys Chem Earth Pt B 26(10):825–830
Brandt J, Christensen JH, Frohn LM, Palmgren F, Berkowicz R, Zlatev Z (2001c) Operational air pollution forecasts from european to local scale. Atmospheric Environment 35(Suppl 1):S91–S98
Cecchi L, Morabito M, Domeneghetti MP, Crisci A, Onorari M, Orlandini S (2006) Long distance transport of ragweed pollen as a potential cause of allergy in central Italy. Ann Allergy Asthma Immunol 96(1):86–91
Comtois P (1998) Ragweed (Ambrosia sp.): the Phoenix of allergophytes. 6th International Congress on Aerobiology. Satellite Symposium Proceedings: Ragweed in Europe, Perugia, Italy, ALK Abelló
Corden J, Stach A, Millington W (2002) A comparison of Betula pollen seasons at two European sites; Derby, United Kingdom and Poznan, Poland (1995–1999). Aerobiologia 18:45–53
Dahl A, Strandhede S-O, Wihl J-A (1999) Ragweed-An allergy risk in Sweden? Aerobiologia 15(4):293–297
Ellermann T, Hertel O, Munies C, Kemp K (2002) Atmospheric Deposition 2001, NOVA 2003 (In Danish: Atmosfærisk deposition. NOVA 2003), NERI Technical Report, no. 418, National Environmental Research Institute, P.O. Box 358, Frederiksborgvej 399, DK-4000 Roskilde, Denmark, p 82
Faegri K, Iversen J (1992) Textbook of Pollen Analysis. John Wiley and Sons, Chichester
GUS Glówny Urzad Statystyczny (2001) Rocznik Statystyczny Poznania. http://www.stat.gov.pl/urzedy/poznan/publikacje/rocznik_stolicy_woj/ludnosc/03m05_01.pdf
Hart ML, Wentworth JE, Bailey JP (1994) The effects of trap height and weather variables on recorded pollen concentration at Leicester. Grana 33:100–103
Hertel O, Christensen J, Runge EH, Asman WAH, Berkowicz R, Hovmand MF, Hov Ø (1995) Development and testing of a new variable scale air pollution model-ACDEP. Atmospheric Environment 29(11):1267–1290
Hirst JM (1952) An automatic volumetric spore trap. Ann Appl Biol 39(2):257–265
Hjelmroos M (1991) Evidence of long distance transport of Betula pollen. Grana 30:215–228
Hjelmroos M (1992) Long-distance transport of Betula pollen grains and allergic symptoms. Aerobiologia 8:231–236
Jackowiak B (1993) Atlas of distribution of vascular plants in Poznan. Publications of the Department of Plant Taxonomy of Adam Mickiewicz University, No 2, Poznan
Jäger S (1998) Global aspects of ragweed in Europe. 6th International Congress on Aerobiology. Satellite Symposium Proceedings: Ragweed in Europe, Perugia, Italy, ALK Abelló
Jäger S (2000) Ragweed (Ambrosia) sensitisation rates correlate with the amount of inhaled airborne pollen. A 14-year study in Vienna, Austria. Aerobiologia 16(1):149–153
Járai-Komlódi M (2000) Some details about ragweed airborne pollen in Hungary. Aerobiologia 16(2):291–294
Jones B, Barnes C, Portnoy JM, Hu F (2006) Diurnal variation of airborne ragweed pollen in a metropolitan area-an 8 year perspective. J Allergy Clin Immunol 117(2):S29, Supp
Laaidi K, Laaidi M (1999) Airborne pollen of Ambrosia in Burgundy (France) 1996–1997. Aerobiologia 15(1):65–69
Laaidi M, Thibaudon M, Besancenot J-P (2003) Two statistical approaches to forecasting the start and duration of the pollen season of Ambrosia in the area of Lyon (France). Int J Biometeorol 48(2):65–73
Makovcová S, Zlinská J, Mikolás V, Salát D, Krio M (1998) Ragweed in Slovak Republic. 6th International Congress on Aerobiology. Satellite Symposium Proceedings: Ragweed in Europe, Perugia, Italy, ALK Abelló
Makra L, Juhász M, Borsos E, Béczi R (2004) Meteorological variables connected with airborne ragweed pollen in Southern Hungary. Int J Biometeorol 29(1):37–47
Mesinger F, Janiæ ZI, Nickoviæ S, Gavrilov D, Deaven DG (1988) The step-mountain coordinate: model description and performance for cases of alpine lee cyclogenesis and for case of an appalachian redevelopment. Mon Weather Rev 116(7):1493–1518
Nickovic S, Michailovic D, Rajkovic B, Papdopulus A (1998) The weather forecasting system SKIRON II, description of the model. University of Athens, Athens. ISBN VOL II: 960-8468-16-7 p 228
Peternel R, Culig J, Srnec L, Mitic B, Vukusic I, Hrga I (2005) Variation in ragweed (Ambrosia artemisiifolia L.) pollen concentration in Central Croatia. Ann Agric Environ Med 12(1):11–16
Puc M (2004) Ragweed pollen in the air of Szczecin. Ann Agric Environ Med 11(1):53–57
Rich TCG (1994) Ragweeds (Ambrosia L.) in Britain. Grana 33:38–43
Rybnícek O, Novotná B, Rybníckova E, Rybnícek K (2000) Ragweed in the Czech Republic. Aerobiologia 16(2):287–290
Saar M, Gudžinskas Z, Plompuu T, Linno E, Minkiene Z, Motiekaityte V (2000) Ragweed plants and airborne pollen in the Baltic States. Aerobiologia 16(1):101–106
Skjøth AC, Hertel O, Ellermann T (2002) Use of the ACDEP trajectory model in the Danish nation-wide Background Monitoring Programme. Phys Chem Earth Pt B 27(35):1469–1477
Smith M, Emberlin J, Kress A (2005) Examining high magnitude grass pollen episodes at Worcester, United Kingdom, using back-trajectory analysis. Aerobiologia 21(2):85–94
Stach A (2000) Variation in pollen concentration of the most allergenic taxa in Poznan (Poland), 1995–1996. Aerobiologia 16:63–68
Stach A (2005) Is pollen of ragweed (Ambrosia spp.) a threat to people with allergies in the Wielkopolska region? Biodiversity: Research and Conservation 1(16):Accepted and awaiting publication
Stepalska D, Szczepanek K, Myszkowska D (2002) Variation in Ambrosia pollen concentration in Southern and Central Poland in 1982–1999. Aerobiologia 18(1):13–22
Taramaracaz P, Lambelet C, Clot B, Keimer C, Hauser C (2005) Ragweed (Ambrosia) progression and its health risks: will Switzerland resist this invasion? Swiss Med Weekly 135:538–548
White JF, Bernstein DI (2003) Key pollen allergens in North America. Ann Allergy Asthma Immunol 91(5):425–435
Wos A (1994) Klimat Niziny Wielkopolskiej. Adam Mickiewicz University, Poznan
Zukowski W (1960) Kilka interesujacych gatunków synantropijnych z miasta Poznania. Przyr Polski Zach 4:141–145
Acknowledgements
This work was partly funded by the European Union’s Sixth Framework Programme through the Marie Curie Actions Transfer of Knowledge Development Scheme. European project MTKD-CT-2004-003170. Polish Ministry of Education and Science grant 128/E-366/6 PR UE/DIE265.
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Stach, A., Smith, M., Skjøth, C.A. et al. Examining Ambrosia pollen episodes at Poznań (Poland) using back-trajectory analysis. Int J Biometeorol 51, 275–286 (2007). https://doi.org/10.1007/s00484-006-0068-1
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DOI: https://doi.org/10.1007/s00484-006-0068-1
Keywords
- Aerobiology
- Ragweed
- Ambrosia
- Poznań
- Back-trajectory analysis