ArticleThe Journal of asthma : official journal of the Association for the Care of Asthma2023
Pediatric and adult asthma clinical phenotypes: a real world, big data study based on acute exacerbations.
Article in The Journal of asthma : official journal of the Association for the Care of Asthma, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Decoding the Sphingolipid Landscape of Clear Cell Renal Cell Carcinoma: A Single-Cell-Guided Prognostic Model Built With 101 Machine Learning.Human mutation · 2026Article
- The Causal Relationship Between Asthma and Hippocampal Volume: A Study Based on Bidirectional Mendelian Randomization Analysis.Brain and behavior · 2025Article
- LACE-UP: An ensemble machine-learning method for health subtype classification on multidimensional binary data.Proceedings of the National Academy of Sciences of the United States of America · 2025Article
- Artificial intelligence in pediatric allergy research.European journal of pediatrics · 2024Review
- A scoping review of fair machine learning techniques when using real-world data.Journal of biomedical informatics · 2024Article
- Associations of Matrix Metalloproteinase-7 Promoter Genotypes With Asthma Risk in Taiwan.In vivo (Athens, Greece)Article
Corrections and comments
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Authors and funding
3 authors.
Funding
Abstract
introductionAsthma is a heterogeneous disease with a range of observable phenotypes. To date, the characterization of asthma phenotypes is mostly limited to allergic versus non-allergic disease. Therefore, the aim of this big data study was to computationally derive asthma subtypes from the OneFlorida Clinical Research Consortium.
methodsWe obtained data from 2012-2020 from the OneFlorida Clinical Research Consortium. Longitudinal data for patients greater than two years of age who met inclusion criteria for an asthma exacerbation based on International Classification of Diseases codes. We used matrix factorization to extract information and K-means clustering to derive subtypes. The distributions of demographics, comorbidities, and medications were compared using Chi-square statistics.
resultsA total of 39,807 pediatric patients and 23,883 adult patients met inclusion criteria. We identified five distinct pediatric subtypes and four distinct adult subtypes. Pediatric subtype P1 had the highest proportion of black patients, but the lowest use of inhaled corticosteroids and allergy medications. Subtype P2 had a predominance of patients with gastroesophageal reflux disease, whereas P3 had a predominance of patients with allergic disorders. Adult subtype A2 was the most severe and all patients were on biologic agents. Most of subtype A3 patients were not taking controller medications, whereas most patients (>90%) in subtypes A2 and A4 were taking corticosteroids and allergy medications.
conclusionWe found five distinct pediatric asthma subtypes and four distinct adult asthma subtypes. Future work should externally validate these subtypes and characterize response to treatment by subtype to better guide clinical treatment of asthma.
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