Impact of ultrafine particles and total particle number concentration on five cause-specific hospital admission endpoints in three German cities.
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A. Schneider | S. Breitner | J. Cyrys | S. Bastian | M. Schwarz | A. Peters
[1] A. Schneider,et al. Impact of Ambient Ultrafine Particles on Cause-Specific Mortality in Three German Cities , 2023, American journal of respiratory and critical care medicine.
[2] Wangjian Zhang,et al. Particle surface area, ultrafine particle number concentration, and cardiovascular hospitalizations. , 2022, Environmental pollution.
[3] J. Schwartz,et al. Quantifying the short-term effects of air pollution on health in the presence of exposure measurement error: a simulation study of multi-pollutant model results , 2021, Environmental Health.
[4] A. Peters,et al. Meta-analysis on short-term exposure to ambient ultrafine particles and respiratory morbidity , 2020, European Respiratory Review.
[5] G. Hoek,et al. Long-term exposure to PM and all-cause and cause-specific mortality: A systematic review and meta-analysis. , 2020, Environment international.
[6] A. Ciapponi,et al. Short-term exposure to particulate matter (PM10 and PM2.5), nitrogen dioxide (NO2), and ozone (O3) and all-cause and cause-specific mortality: Systematic review and meta-analysis. , 2020, Environment international.
[7] M. Ryu,et al. Ultrafine particles: unique physicochemical properties relevant to health and disease , 2020, Experimental & Molecular Medicine.
[8] Timothy L Lash,et al. Reflection on modern methods: five myths about measurement error in epidemiological research , 2019, International journal of epidemiology.
[9] Antonio Gasparrini,et al. An extended mixed‐effects framework for meta‐analysis , 2019, Statistics in medicine.
[10] Antonio Gasparrini,et al. Extended two-stage designs for environmental research , 2019, Environmental Health.
[11] Li Li,et al. Ultrafine particles and PM2.5 in the air of cities around the world: Are they representative of each other? , 2019, Environment international.
[12] Lidia Morawska,et al. Ultrafine particles and children's health: Literature review. , 2019, Paediatric respiratory reviews.
[13] T. Tuch,et al. Variability of black carbon mass concentrations, sub-micrometer particle number concentrations and size distributions: results of the German Ultrafine Aerosol Network ranging from city street to High Alpine locations , 2019, Atmospheric Environment.
[14] L. Tang,et al. Influence of Ultrafine Particles Exposure on Asthma Exacerbation in Children: A Meta-Analysis. , 2019, Current drug targets.
[15] B. Hoffmann,et al. Health effects of ultrafine particles: a systematic literature review update of epidemiological evidence , 2019, International Journal of Public Health.
[16] T. Tuch,et al. Mobility particle size spectrometers: Calibration procedures and measurement uncertainties , 2018 .
[17] João Paulo Teixeira,et al. Nanomaterials Versus Ambient Ultrafine Particles: An Opportunity to Exchange Toxicology Knowledge , 2017, Environmental health perspectives.
[18] H. R. Anderson,et al. Differential health effects of short-term exposure to source-specific particles in London, U.K. , 2016, Environment international.
[19] A. Peters,et al. Ultrafine and Fine Particles and Hospital Admissions in Central Europe. Results from the UFIREG Study. , 2016, American journal of respiratory and critical care medicine.
[20] Otmar Schmid,et al. Surface area is the biologically most effective dose metric for acute nanoparticle toxicity in the lung , 2016 .
[21] A. Tobías,et al. Exposure to ultrafine particles and respiratory hospitalisations in five European cities , 2016, European Respiratory Journal.
[22] R. Harrison,et al. Review: Particle number size distributions from seven major sources and implications for source apportionment studies , 2015 .
[23] J. Cyrys,et al. Long-term observations of tropospheric particle number size distributions and equivalent black carbon mass concentrations in the German Ultrafine Aerosol Network (GUAN). , 2015 .
[24] A. Wiedensohler,et al. A concept of an automated function control for ambient aerosol measurements using mobility particle size spectrometers , 2014 .
[25] H. R. Anderson,et al. Epidemiological time series studies of PM2.5 and daily mortality and hospital admissions: a systematic review and meta-analysis , 2014, Thorax.
[26] T. Müller,et al. A fast and easy-to-implement inversion algorithm for mobility particle size spectrometers considering particle number size distribution information outside of the detection range , 2014 .
[27] Giovanna Berti,et al. Short-term Associations between Fine and Coarse Particulate Matter and Hospitalizations in Southern Europe: Results from the MED-PARTICLES Project , 2013, Environmental health perspectives.
[28] A. Peters,et al. Size-fractioned particulate air pollution and cardiovascular emergency room visits in Beijing, China. , 2013, Environmental research.
[29] Alexandra Schneider,et al. Health effects of particulate air pollution: A review of epidemiological evidence , 2011, Inhalation toxicology.
[30] Chunsheng Zhao,et al. Mobility particle size spectrometers: harmonization of technical standards and data structure to facilitate high quality long-term observations of atmospheric particle number size distributions , 2010 .
[31] M. Braniš,et al. Association of size-resolved number concentrations of particulate matter with cardiovascular and respiratory hospital admissions and mortality in Prague, Czech Republic , 2010, Inhalation toxicology.
[32] A. Peters,et al. Size-Segregated Particle Number Concentrations and Respiratory Emergency Room Visits in Beijing, China , 2010, Environmental health perspectives.
[33] A. Peters,et al. Particulate Matter Air Pollution and Cardiovascular Disease: An Update to the Scientific Statement From the American Heart Association , 2010, Circulation.
[34] A. Faustini,et al. Impact of Fine and Ultrafine Particles on Emergency Hospital Admissions for Cardiac and Respiratory Diseases , 2010, Epidemiology.
[35] A. Peters,et al. Air Temperature and the Occurrence of Myocardial Infarction in Augsburg, Germany , 2009, Circulation.
[36] A. Peters,et al. Ambient Air Pollution and Daily Mortality Among Survivors of Myocardial Infarction , 2009, Epidemiology.
[37] Zoran Ristovski,et al. Ambient nano and ultrafine particles from motor vehicle emissions: Characteristics, ambient processing and implications on human exposure , 2008 .
[38] Annette Peters,et al. Spatial and temporal variation of particle number concentration in Augsburg, Germany. , 2008, The Science of the total environment.
[39] Thomas F Bateson,et al. Children's Response to Air Pollutants , 2007, Journal of toxicology and environmental health. Part A.
[40] G. Oberdörster,et al. Nanotoxicology: An Emerging Discipline Evolving from Studies of Ultrafine Particles , 2005, Environmental health perspectives.
[41] J. Schwartz,et al. Modifiers of the temperature and mortality association in seven US cities. , 2003, American journal of epidemiology.
[42] A. Farraj,et al. Role of Autonomic Reflex Arcs in Cardiovascular Responses to Air Pollution Exposure , 2014, Cardiovascular Toxicology.