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Free orbicules of Cupressaceae detected in daily aerobiological samples by optical and confocal microscopy

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Abstract

Members of Cupressaceae and Taxaceae are known to release large amounts of highly allergenic pollen grains into the atmosphere, which are responsible for the onset of pollinosis in many countries throughout the world. In addition to pollen grains, their pollen sacs produce orbicules, which are submicron particles reported to carry allergens and which are potentially able to reach much further down the respiratory tract than pollen grains. Previous research has postulated the presence of orbicules in the atmosphere; however, direct observations have not yet been reported. The aim of this research was to provide the first direct evidence that Cupressaceae orbicules are released into the atmosphere by detecting them in daily aerobiological samples. We observed pollen sacs, pollen grains, and orbicules of nine species of Cupressaceae using scanning electron microscope (SEM). We then used a light and confocal microscope, to examine daily aerobiological samples. Under SEM, we measured the orbicule size (0.494–0.777 µm) and detected unknown nanometric particles (130–200 nm). Under the light microscope, aerobiological samples showed clusters of stained dots surrounding the pollen grains of Cupressaceae. Under the confocal microscope, the same clusters were resolved into submicron particles with the same autofluorescence as the pollen grains. These features enabled us to identify them as orbicules. We believe that our findings help to explain the onset of pollinosis and allergic asthma related to Cupressaceae pollen grains in many countries, even before pollen grains are actually detected or after they are no longer observed in aerobiological monitoring samples.

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References

  • Ariano, R., Antico, A., Di Lorenz, G., Artesani, M. C., Bagnato, G., Bonadonna, P., et al. (2002). An epidemiological survey of Cupressaceae pollenosis in Italy. Journal of investigational allergology & clinical immunology: official organ of the International Association of Asthmology (INTERASMA) and Sociedad Latinoamericana de Alergia e Inmunología, 12(4), 287–292.

    Google Scholar 

  • Arrigoni, P. V., Benesperi, R., Benucci, S., Di Tommaso, P. L., Ferretti, G., Foggi, B., et al. (1999). Carta della vegetazione forestale toscana. Scala 1:25.000. Regione toscana, Dipart. Sviluppo Econ., S.EL.CA., Firenze.

  • Banks, H., Feist-Burkhart, S., & Klitgaard, B. (2006). The unique pollen morphology of Duparquetia (Leguminosae: Caesalpinioideae): Developmental evidence of aperture orientation using confocal microscopy. Annals of Botany, 98, 107–115.

    Article  Google Scholar 

  • Bass, D. J., Delpech, V., Beard, J., Bass, P., & Walls, R. S. (2000). Late summer and fall (March–May) pollen allergy and respiratory disease in Northern New South Wales, Australia. Annals of Allergy, Asthma & Immunology, 85, 374–381.

    Article  CAS  Google Scholar 

  • Bedini, G., & Ruggiero, F. (2016). First aerobiological monitoring data in Pisa (Italy) within AIS-LIFE project. In: Book of abstracts of the 111° congress of the Italian Botanical Society, p. 143.

  • Bortenschlager, S. (1990). Aspects of pollen morphology in the Cupressaceae. Grana, 29, 129–138.

    Article  Google Scholar 

  • Caiaffa, M. F., Macchia, L., Strada, S., Bariletto, G., Scarpelli, F., & Tursi, A. (1993). Airborne Cupressaceae pollen in southern Italy. Annals of allergy, 71, 45–50.

    CAS  Google Scholar 

  • Canini, A., Giovinazzi, J., Iacovacci, P., Pini, C., & Caiola, M. G. (2004). Localisation of a carbohydrate epitope recognised by human IgE in pollen of Cupressaceae. Journal of Plant Research, 117, 147–153.

    Article  CAS  Google Scholar 

  • Charpin, D., Calleja, M., Lahoz, C., Pichot, C., & Waisel, Y. (2005). Allergy to cypress pollen. Allergy, 60, 293–301.

    Article  CAS  Google Scholar 

  • Choi, J., Jeon, W. P., & Choi, H. (2006). Mechanism of drag reduction by dimples on a sphere. Physics of Fluids (1994-present), 18, 041702.

    Article  Google Scholar 

  • Clauser, F. H. (1956). The turbulent boundary layer. Advances in Applied Mechanics, 4, 1–51.

    Article  Google Scholar 

  • Conti, F., Abbate, G., Alessandrini, A., & Blasi, C. (2005). An annotated Checklist of the Italian Vascular Flora. Min. Ambiente e Tutela Territ., Dip. Biol. Veg. Univ. «La Sapienza». Palombi Ed., Roma.

  • Conti, F., Alessandrini, A., Bacchetta, G., Banfi, E., Barberis, G., Bartolucci, F., et al. (2007). Integrazioni alla checklist della flora vascolare italiana. Natura Vicentina, 10, 5–74.

    Google Scholar 

  • D’Amato, G., Cecchi, L., Bonini, S., Nunes, C., Annesi, M. I., Behrendt, H., et al. (2007). Allergenic pollen and pollen allergy in Europe. Allergy, 62, 976–990.

    Article  Google Scholar 

  • Danti, R., Della, R. G., Calamassi, R., Mori, B., & Lippi, M. M. (2011). Insights into a hydration regulating system in Cupressus pollen grains. Annals of Botany, 108, 299–306.

    Article  CAS  Google Scholar 

  • Earle C. J. (2017). The gymnosperm database. http://www.conifers.org/cu/Cupressaceae.php. Accessed 02 June 2017.

  • Farjon, A. (2010). A handbook of the world’s conifers. Leiden/Boston: E.J. Brill.

    Book  Google Scholar 

  • Fujimura, T., & Kawamoto, S. (2015). Spectrum of allergens for Japanese cedar pollinosis and impact of component-resolved diagnosis on allergen-specific immunotherapy. Allergology International, 64, 312–320.

    Article  CAS  Google Scholar 

  • Huysmans, S., El-Ghazaly, G., & Smets, E. (1998). Orbicules in angiosperms: Morphology, function, distribution, and relation with tapetum types. The Botanical Review, 64, 240–272.

    Article  Google Scholar 

  • Huysmans, S., Smets, E., El-Ghazaly, G., & Nilsson, S. (1997). Systematic value of tapetal orbicules: A preliminary survey of the Cinchonoideae (Rubiaceae). Canadian Journal of Botany, 75, 815–826.

    Article  Google Scholar 

  • Kurmann, M. H. (1994). Pollen morphology and ultrastructure in the Cupressaceae. Acta botanica gallica, 141, 141–147.

    Article  Google Scholar 

  • Mari, A., Felice, G., Afferni, C., Barletta, B., Tinghino, R., & Pini, C. (1997). Cypress allergy: An underestimated pollinosis. Allergy, 52, 355–356.

    Article  CAS  Google Scholar 

  • Mugnaini, S., Nepi, M., Guarnieri, M., Piotto, B., & Pacini, E. (2007). Pollination drop in Juniperus communis: response to deposited material. Annals of Botany, 100, 1475–1481.

    Article  Google Scholar 

  • Ruggiero, F., & Bedini, G. (2016). First year of aerobiological monitoring in Pisa (Italy) for the most allergenic plant families—Fungal spores and their allergenic potential—AIS LIFE—LIFE13ENV/IT/001107. In: Book of abstracts of the 6th European symposium on aerobiology of the European Aerobiology Society, pp. 252–253.

  • Ruggiero, F., Orlandini, S., Natali, F., Cecchi, L., Baldacci, S., Maio, S., et al. (2015). Aerobiological information system and allergic respiratory disease management—LIFE13ENV/IT/001107. In: Book of abstracts 110° congress of the Italian Botanical Society, p. 155.

  • Schwietz, L. A., Goetz, D. W., Whisman, B. A., & Reid, M. J. (2000). Cross-reactivity among conifer pollens. Annals of Allergy, Asthma & Immunology, 84, 87–93.

    Article  CAS  Google Scholar 

  • Sénéchal, H., Visez, N., Charpin, D., Shahali, Y., Peltre, G., Biolley, J. P., et al. (2015). A review of the effects of major atmospheric pollutants on pollen grains, pollen content, and allergenicity. The Scientific World Journal, 2015, 29. doi:10.1155/2015/940243.

    Article  Google Scholar 

  • Shahali, Y., Pourpak, Z., Moin, M., Mari, A., & Majd, A. (2009). Instability of the structure and allergenic protein content in Arizona cypress pollen. Allergy, 64, 1773–1779.

    Article  CAS  Google Scholar 

  • Southworth, D., Singh, M. B., Hough, T., Smart, I. J., Taylor, P., & Knox, R. B. (1988). Antibodies to pollen exines. Planta, 176, 482–487.

    Article  CAS  Google Scholar 

  • Takahashi, Y., Sasaki, K., Nakamura, S., Miki-Hirosige, H., & Nitta, H. (1995). Aerodynamic size distribution of the particles emitted from the flowers of allergologically important plants. Grana, 34, 45–49.

    Article  Google Scholar 

  • UNI 11108:2004. Air quality. Method for sampling and counting of airborne pollen grains and fungal spores. Ed. UNI Ente Nazionale Italiano di Unificazione. Milan, p. 8.

  • Verstraete, B., Moon, H. K., Smets, E., & Huysmans, S. (2014). Orbicules in flowering plants: A phylogenetic perspective on their form and function. The Botanical Review, 80, 107–134.

    Article  Google Scholar 

  • Vinckier, S., Huysmans, S., & Smets, E. (2000). Morphology and ultrastructure of orbicules in the subfamily Ixoroideae (Rubiaceae). Review of Palaeobotany and Palynology, 108, 151–174.

    Article  CAS  Google Scholar 

  • Vinckier, S., & Smets, E. (2001). The potential role of orbicules as a vector of allergens. Allergy, 56, 1129–1136.

    Article  CAS  Google Scholar 

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Acknowledgements

We are grateful to Dr. Simone Gabrielli for his excellent technical assistance with the SEM and to Dr. Sara Migliarini for her expert help with the confocal microscope.

Funding

This research was financially supported by the AIS LIFE Project—Aerobiological Information System and allergic respiratory disease management—LIFE13ENV/IT/001107 project (http://www.ais-life.eu/).

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Correspondence to Franco Ruggiero.

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Ruggiero, F., Bedini, G. Free orbicules of Cupressaceae detected in daily aerobiological samples by optical and confocal microscopy. Aerobiologia 34, 55–62 (2018). https://doi.org/10.1007/s10453-017-9495-1

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