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Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study

Differential phenotypic characteristics using data mining approaches were defined in a large cohort of patients from the Spanish Online Bronchiectasis Registry (RIBRON). Three differential phenotypic clusters (hierarchical clustering, scikit-learn library for Python, and agglomerative methods) accor...

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Autores principales: Wang, Xuejie, Villa, Carmen, Dobarganes, Yadira, Olveira, Casilda, Girón, Rosa, García-Clemente, Marta, Máiz, Luis, Sibila, Oriol, Golpe, Rafael, Menéndez, Rosario, Rodríguez-López, Juan, Prados, Concepción, Martinez-García, Miguel Angel, Rodriguez, Juan Luis, de la Rosa, David, Duran, Xavier, Garcia-Ojalvo, Jordi, Barreiro, Esther
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8869143/
https://www.ncbi.nlm.nih.gov/pubmed/35203435
http://dx.doi.org/10.3390/biomedicines10020225
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author Wang, Xuejie
Villa, Carmen
Dobarganes, Yadira
Olveira, Casilda
Girón, Rosa
García-Clemente, Marta
Máiz, Luis
Sibila, Oriol
Golpe, Rafael
Menéndez, Rosario
Rodríguez-López, Juan
Prados, Concepción
Martinez-García, Miguel Angel
Rodriguez, Juan Luis
de la Rosa, David
Duran, Xavier
Garcia-Ojalvo, Jordi
Barreiro, Esther
author_facet Wang, Xuejie
Villa, Carmen
Dobarganes, Yadira
Olveira, Casilda
Girón, Rosa
García-Clemente, Marta
Máiz, Luis
Sibila, Oriol
Golpe, Rafael
Menéndez, Rosario
Rodríguez-López, Juan
Prados, Concepción
Martinez-García, Miguel Angel
Rodriguez, Juan Luis
de la Rosa, David
Duran, Xavier
Garcia-Ojalvo, Jordi
Barreiro, Esther
author_sort Wang, Xuejie
collection PubMed
description Differential phenotypic characteristics using data mining approaches were defined in a large cohort of patients from the Spanish Online Bronchiectasis Registry (RIBRON). Three differential phenotypic clusters (hierarchical clustering, scikit-learn library for Python, and agglomerative methods) according to systemic biomarkers: neutrophil, eosinophil, and lymphocyte counts, C reactive protein, and hemoglobin were obtained in a patient large-cohort (n = 1092). Clusters #1–3 were named as mild, moderate, and severe on the basis of disease severity scores. Patients in cluster #3 were significantly more severe (FEV(1), age, colonization, extension, dyspnea (FACED), exacerbation (EFACED), and bronchiectasis severity index (BSI) scores) than patients in clusters #1 and #2. Exacerbation and hospitalization numbers, Charlson index, and blood inflammatory markers were significantly greater in cluster #3 than in clusters #1 and #2. Chronic colonization by Pseudomonas aeruginosa and COPD prevalence were higher in cluster # 3 than in cluster #1. Airflow limitation and diffusion capacity were reduced in cluster #3 compared to clusters #1 and #2. Multivariate ordinal logistic regression analysis further confirmed these results. Similar results were obtained after excluding COPD patients. Clustering analysis offers a powerful tool to better characterize patients with bronchiectasis. These results have clinical implications in the management of the complexity and heterogeneity of bronchiectasis patients.
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spelling pubmed-88691432022-02-25 Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study Wang, Xuejie Villa, Carmen Dobarganes, Yadira Olveira, Casilda Girón, Rosa García-Clemente, Marta Máiz, Luis Sibila, Oriol Golpe, Rafael Menéndez, Rosario Rodríguez-López, Juan Prados, Concepción Martinez-García, Miguel Angel Rodriguez, Juan Luis de la Rosa, David Duran, Xavier Garcia-Ojalvo, Jordi Barreiro, Esther Biomedicines Article Differential phenotypic characteristics using data mining approaches were defined in a large cohort of patients from the Spanish Online Bronchiectasis Registry (RIBRON). Three differential phenotypic clusters (hierarchical clustering, scikit-learn library for Python, and agglomerative methods) according to systemic biomarkers: neutrophil, eosinophil, and lymphocyte counts, C reactive protein, and hemoglobin were obtained in a patient large-cohort (n = 1092). Clusters #1–3 were named as mild, moderate, and severe on the basis of disease severity scores. Patients in cluster #3 were significantly more severe (FEV(1), age, colonization, extension, dyspnea (FACED), exacerbation (EFACED), and bronchiectasis severity index (BSI) scores) than patients in clusters #1 and #2. Exacerbation and hospitalization numbers, Charlson index, and blood inflammatory markers were significantly greater in cluster #3 than in clusters #1 and #2. Chronic colonization by Pseudomonas aeruginosa and COPD prevalence were higher in cluster # 3 than in cluster #1. Airflow limitation and diffusion capacity were reduced in cluster #3 compared to clusters #1 and #2. Multivariate ordinal logistic regression analysis further confirmed these results. Similar results were obtained after excluding COPD patients. Clustering analysis offers a powerful tool to better characterize patients with bronchiectasis. These results have clinical implications in the management of the complexity and heterogeneity of bronchiectasis patients. MDPI 2022-01-21 /pmc/articles/PMC8869143/ /pubmed/35203435 http://dx.doi.org/10.3390/biomedicines10020225 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Xuejie
Villa, Carmen
Dobarganes, Yadira
Olveira, Casilda
Girón, Rosa
García-Clemente, Marta
Máiz, Luis
Sibila, Oriol
Golpe, Rafael
Menéndez, Rosario
Rodríguez-López, Juan
Prados, Concepción
Martinez-García, Miguel Angel
Rodriguez, Juan Luis
de la Rosa, David
Duran, Xavier
Garcia-Ojalvo, Jordi
Barreiro, Esther
Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title_full Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title_fullStr Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title_full_unstemmed Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title_short Systemic Inflammatory Biomarkers Define Specific Clusters in Patients with Bronchiectasis: A Large-Cohort Study
title_sort systemic inflammatory biomarkers define specific clusters in patients with bronchiectasis: a large-cohort study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8869143/
https://www.ncbi.nlm.nih.gov/pubmed/35203435
http://dx.doi.org/10.3390/biomedicines10020225
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