‘Pollen potency’: the relationship between atmospheric pollen counts and allergen exposure
暂无分享,去创建一个
J. Dickinson | F. Johnston | L. Tegart | B. Green | P. Jones | N. Borchers Arriagada | Annabelle Workman
[1] M. Fernández-González,et al. Tree Allergen Pollen-Related Content as Pollution Source in the City of Ourense (NW Spain) , 2020, Forests.
[2] J. Davies,et al. Tracking seasonal changes in diversity of pollen allergen exposure: Targeted metabarcoding of a subtropical aerobiome. , 2020, The Science of the total environment.
[3] J. Ščevková,et al. Relationship between Poaceae pollen and Phl p 5 allergen concentrations and the impact of weather variables and air pollutants on their levels in the atmosphere , 2020, Heliyon.
[4] L. Ziska. An Overview of Rising CO2 and Climatic Change on Aeroallergens and Allergic Diseases , 2020, Allergy, asthma & immunology research.
[5] D. Bowman,et al. Can smartphone data identify the local environmental drivers of respiratory disease? , 2020, Environmental research.
[6] M. Fernández-González,et al. Cross-reactivity between the Betulaceae family and fallout in the real atmospheric aeroallergen load. , 2020, The Science of the total environment.
[7] A. Kaplan,et al. An assessment of ragweed pollen and allergen loads in an uninvaded area in the Western Black Sea region of Turkey , 2019, Aerobiologia.
[8] M. Fernández-González,et al. Assessment between Platanus pollen and Pla a 1 allergen in two cities of North-western Iberian Peninsula , 2019, Aerobiologia.
[9] C. Galán,et al. Parietaria major allergens vs pollen in the air we breathe. , 2019, Environmental research.
[10] S. Çelenk. Detection of reactive allergens in long-distance transported pollen grains: Evidence from Ambrosia , 2019, Atmospheric Environment.
[11] M. Fernández-González,et al. Assessment of the potential real pollen related allergenic load on the atmosphere of Porto city. , 2019, The Science of the total environment.
[12] A. Crimmins,et al. Temperature-related changes in airborne allergenic pollen abundance and seasonality across the northern hemisphere: a retrospective data analysis. , 2019, The Lancet. Planetary health.
[13] Zachary Munn,et al. Systematic review or scoping review? Guidance for authors when choosing between a systematic or scoping review approach , 2018, BMC Medical Research Methodology.
[14] M. Durie,et al. The Melbourne epidemic thunderstorm asthma event 2016: an investigation of environmental triggers, effect on health services, and patient risk factors. , 2018, The Lancet. Planetary health.
[15] Yun Am Seo,et al. Does the increase in ambient CO2 concentration elevate allergy risks posed by oak pollen? , 2018, International Journal of Biometeorology.
[16] T. Zuberbier,et al. Economic Burden of the Inadequate Management of Allergic Rhinitis and Urticaria in Asian Countries Based on the GA2LEN Model , 2018, Allergy, asthma & immunology research.
[17] K. Bergmann,et al. Pollen and spore monitoring in the world , 2018, Clinical and Translational Allergy.
[18] F. Johnston,et al. AirRater Tasmania: Using Smartphone Technology to Understand Local Environmental Drivers of Symptoms in People with Asthma and Allergic Rhinitis , 2018 .
[19] H. Müller-Schärer,et al. Defoliation of common ragweed by Ophraella communa beetle does not affect pollen allergenicity in controlled conditions , 2017 .
[20] Rob J Hyndman,et al. Associations between outdoor fungal spores and childhood and adolescent asthma hospitalizations , 2017, The Journal of allergy and clinical immunology.
[21] Qingyue Wang,et al. Size distribution of allergenic Cry j 2 released from airborne Cryptomeria japonica pollen grains during the pollen scattering seasons , 2017, Aerobiologia.
[22] C. Höflich,et al. Flow Cytometric Analysis of Particle-bound Bet v 1 Allergen in PM10 , 2016, Journal of visualized experiments : JoVE.
[23] J. Davies,et al. EAACI Molecular Allergology User's Guide , 2016, Pediatric allergy and immunology : official publication of the European Society of Pediatric Allergy and Immunology.
[24] C. Galán,et al. Correlation between airborne Olea europaea pollen concentrations and levels of the major allergen Ole e 1 in Córdoba, Spain, 2012–2014 , 2016, International Journal of Biometeorology.
[25] A. Obersteiner,et al. Pollen-Associated Microbiome Correlates with Pollution Parameters and the Allergenicity of Pollen , 2016, PloS one.
[26] M. Fernández-González,et al. Oleaceae cross-reactions as potential pollinosis cause in urban areas. , 2016, The Science of the total environment.
[27] P. Poncet,et al. A Review of the Effects of Major Atmospheric Pollutants on Pollen Grains, Pollen Content, and Allergenicity , 2015, TheScientificWorldJournal.
[28] A. Menzel,et al. Seasonal variation of birch and grass pollen loads and allergen release at two sites in the German Alps , 2015 .
[29] F. Alessandrini,et al. Pollen‐derived nonallergenic substances enhance Th2‐induced IgE production in B cells , 2015, Allergy.
[30] J. Ring,et al. Pollen‐derived adenosine is a necessary cofactor for ragweed allergy , 2015, Allergy.
[31] M. Sofiev,et al. Variation of the group 5 grass pollen allergen content of airborne pollen in relation to geographic location and time in season. , 2015, The Journal of allergy and clinical immunology.
[32] C. Galán,et al. Detection of airborne allergen (Pla a 1) in relation to Platanus pollen in Córdoba, South Spain. , 2015, Annals of agricultural and environmental medicine : AAEM.
[33] S. Simoens,et al. Economic burden of inadequate management of allergic diseases in the European Union: a GA2LEN review , 2014, Allergy.
[34] A. Huete,et al. The Macroecology of Airborne Pollen in Australian and New Zealand Urban Areas , 2014, PloS one.
[35] M. Sofiev,et al. The European project HIALINE (Health Impacts of Airborne Allergen Information Network): results of pollen and allergen of Betula monitoring in Parma (2009) , 2014 .
[36] Daisuke Nakajima,et al. Size-segregated Allergenic Particles Released from Airborne Cryptomeria japonica Pollen Grains during the Yellow Sand Events within the Pollen Scattering Seasons , 2013 .
[37] J. Ring,et al. High Environmental Ozone Levels Lead to Enhanced Allergenicity of Birch Pollen , 2013, PloS one.
[38] M. Fernández-González,et al. Pla a_1 aeroallergen immunodetection related to the airborne Platanus pollen content. , 2013, The Science of the total environment.
[39] L. Cecchi. From pollen count to pollen potency: the molecular era of aerobiology , 2013, European Respiratory Journal.
[40] Qingyue Wang,et al. Diurnal and Nocturnal Behaviour of Airborne Cryptomeria japonica Pollen Grains and the Allergenic Species in Urban Atmosphere of Saitama, Japan , 2013 .
[41] M. Sofiev,et al. Airborne olive pollen counts are not representative of exposure to the major olive allergen Ole e 1 , 2013, Allergy.
[42] M. Sofiev,et al. Release of Bet v 1 from birch pollen from 5 European countries. Results from the HIALINE study , 2012 .
[43] J. Ring,et al. The pollen enigma: modulation of the allergic immune response by non-allergenic, pollen-derived compounds. , 2012, Current pharmaceutical design.
[44] Qingyue Wang,et al. Release behavior of small sized daughter allergens from Cryptomeria japonica pollen grains during urban rainfall event , 2012, Aerobiologia.
[45] C. Cingi,et al. Prevalence and diversity of allergic rhinitis in regions of the world beyond Europe and North America , 2012, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[46] B. Green,et al. London Plane Tree bioaerosol exposure and allergic sensitization in Sydney, Australia. , 2011, Annals of allergy, asthma & immunology : official publication of the American College of Allergy, Asthma, & Immunology.
[47] F. Rodríguez-Rajo,et al. The combination of airborne pollen and allergen quantification to reliably assess the real pollinosis risk in different bioclimatic areas , 2011 .
[48] J. López–Fidalgo,et al. Olea europaea pollen counts and aeroallergen levels predict clinical symptoms in patients allergic to olive pollen. , 2011, Annals of allergy, asthma & immunology : official publication of the American College of Allergy, Asthma, & Immunology.
[49] P. De Nuntiis,et al. Platanus pollen allergen, Pla a 1: quantification in the atmosphere and influence on a sensitizing population , 2010, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[50] W. Kreyling,et al. The allergen Bet v 1 in fractions of ambient air deviates from birch pollen counts , 2010, Allergy.
[51] C. Díaz de la Guardia,et al. Airborne Study of Grass Allergen (Lol p 1) in Different-Sized Particles , 2009, International Archives of Allergy and Immunology.
[52] Martin J. Mueller,et al. Pollen-Derived E1-Phytoprostanes Signal via PPAR-γ and NF-κB-Dependent Mechanisms1 , 2009, The Journal of Immunology.
[53] A. Menzel,et al. Year-to-Year Variation in Release of Bet v 1 Allergen from Birch Pollen: Evidence for Geographical Differences between West and South Germany , 2007, International Archives of Allergy and Immunology.
[54] C. Galán,et al. Detection of airborne allergen (Ole e 1) in relation to Olea europaea pollen in S Spain , 2007, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[55] L. Ziska,et al. Research note: Increasing Amb a 1 content in common ragweed (Ambrosia artemisiifolia) pollen as a function of rising atmospheric CO2 concentration. , 2005, Functional plant biology : FPB.
[56] S. Akimcheva,et al. A Model System to Study the Environment-Dependent Expression of the Bet v 1a Gene Encoding the Major Birch Pollen Allergen , 2004, International Archives of Allergy and Immunology.
[57] Michael Riediker,et al. Determination of birch pollen allergens in different aerosol sizes , 2000 .
[58] Taylor,et al. Concentrations of major grass group 5 allergens in pollen grains and atmospheric particles: implications for hay fever and allergic asthma sufferers sensitized to grass pollen allergens , 1999, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[59] J. Ring,et al. Timothy Grass (Phleum pratense L.) Pollen as Allergen Carriers and Initiators of an Allergic Response , 1999, International Archives of Allergy and Immunology.
[60] P. Taylor,et al. Source of Bet v 1 loaded inhalable particles from birch revealed , 1997, Sexual Plant Reproduction.
[61] P. Taylor,et al. Concentrations of the major birch tree allergen Bet v 1 in pollen and respirable fine particles in the atmosphere. , 1997, The Journal of allergy and clinical immunology.
[62] D. Ownby,et al. Increased concentrations of airborne grass allergen during lawn mowing. , 1992, The Journal of allergy and clinical immunology.
[63] J. M. Hirst. AN AUTOMATIC VOLUMETRIC SPORE TRAP , 1952 .
[64] F. Alessandrini,et al. Artemisia pollen is the main vector for airborne endotoxin , 2019, The Journal of allergy and clinical immunology.
[65] A. Damialis,et al. Climate Change and Pollen Allergies , 2019, Biodiversity and Health in the Face of Climate Change.
[66] B. Cases,et al. Immunochemical and physical quantitation of grass and olive pollen allergens and correlation with asthma admitions in Cáceres, Spain. , 2019, Journal of investigational allergology & clinical immunology.
[67] C. Höflich,et al. Flow Cytometric Analysis of Particle-bound Bet v 1 Allergen in PM 10 , 2017 .
[68] P. Beggs. Impacts of Climate Change on Allergens and Allergic Diseases , 2016 .
[69] K. Bergmann,et al. Impact of pollen. , 2013 .
[70] 国際結核肺疾患予防連合,et al. The global asthma report 2011 , 2011 .
[71] R. Flagan,et al. Release of allergens as respirable aerosols: A link between grass pollen and asthma. , 2002, The Journal of allergy and clinical immunology.