Novel Approach Methodologies in Modeling Complex Bioaerosol Exposure in Asthma and Allergic Rhinitis Under Climate Change
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Date
2025
Authors
Esra Atalay-Sahar
Ece Yildiz-Ozturk
Su Ozgur
Arzu Aral
Emre Dayanc
Tuncay Goksel
Ralph Meuwissen
Ozlem Yesil-Celiktas
Ozlem Goksel
Journal Title
Journal ISSN
Volume Title
Publisher
CAMBRIDGE UNIV PRESS
Open Access Color
GOLD
Green Open Access
Yes
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Publicly Funded
No
Abstract
The undeniable impact of climate change and air pollution on respiratory health has led to increasing cases of asthma allergic rhinitis and other chronic non-communicable immune-mediated upper and lower airway diseases. Natural bioaerosols such as pollen and fungi are essential atmospheric components undergoing significant structural and functional changes due to industrial pollution and atmospheric warming. Pollutants like particulate matter(PMx) polycyclic aromatic hydrocarbons(PAHs) nitrogen dioxide(NO2) sulfur dioxide(SO2) and carbon monoxide(CO) modify the surface and biological properties of atmospheric bioaerosols such as pollen and fungi enhancing their allergenic potentials. As a result sensitized individuals face heightened risks of asthma exacerbation and these alterations likely contribute to the rise in frequency and severity of allergic diseases. NAMs such as precision-cut lung slices(PCLS) air-liquid interface(ALI) cultures and lung-on-a-chip models along with the integration of data from these innovative models with computational models provide better insights into how environmental factors influence asthma and allergic diseases compared to traditional models. These systems simulate the interaction between pollutants and the respiratory system with higher precision helping to better understand the health implications of bioaerosol exposure. Additionally NAMs improve preclinical study outcomes by offering higher throughput reduced costs and greater reproducibility enhancing the translation of data into clinical applications. This review critically evaluates the potential of NAMs in researching airway diseases with a focus on allergy and asthma. It highlights their advantages in studying the increasingly complex structures of bioaerosols under conditions of environmental pollution and climate change while also addressing the existing gaps challenges and limitations of these models.
Description
Keywords
airway diseases, air pollution, allergy, asthma, climate change, fungus, NAMs, pollen, AIR-POLLUTION, POLLEN ALLERGEN, LIQUID, CELLS, NITRATION, IMPACT, Airway Diseases, Fungus, Pollen, Allergy, Air Pollution, Asthma, NAMS, Climate Change, Aerosols, Air Pollutants, Climate Change, Humans, Animals, Review, Environmental Exposure, Rhinitis, Allergic, Models, Biological, Asthma
Fields of Science
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
N/A
Source
Expert Reviews in Molecular Medicine
Volume
27
Issue
Start Page
End Page
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Citations
Scopus : 3
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Mendeley Readers : 13
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