Multi-scale computational models of the airways to unravel the pathophysiological mechanisms in asthma and chronic obstructive pulmonary disease (AirPROM)

Author:

Burrowes K. S.1,De Backer J.2,Smallwood R.3,Sterk P. J.4,Gut I.5,Wirix-Speetjens R.6,Siddiqui S.7,Owers-Bradley J.8,Wild J.9,Maier D.10,Brightling C.7

Affiliation:

1. Department of Computer Science, University of Oxford, Parks Road, Oxford OX1 3QD, UK

2. FluidDA N.V., Kontich, Belgium

3. Kroto Research Institute, University of Sheffield, Sheffield, UK

4. Academic Medical Centre, University of Amsterdam, Amsterdam, The Netherlands

5. Centro Nacional de Analysis Genómica, Fundacio Privada Parc Cientific de Barcelona, Barcelona, Spain

6. Materialise N.V., Leuven, Belgium

7. Institute for Lung Health, University of Leicester, Leicester, UK

8. School of Physics and Astronomy, University of Nottingham, Nottingham, UK

9. Unit of Academic Radiology, University of Sheffield, Sheffield, UK

10. Biomax Informatics AG, Munich, Germany

Abstract

The respiratory system comprises several scales of biological complexity: the genes, cells and tissues that work in concert to generate resultant function. Malfunctions of the structure or function of components at any spatial scale can result in diseases, to the detriment of gas exchange, right heart function and patient quality of life. Vast amounts of data emerge from studies across each of the biological scales; however, the question remains: how can we integrate and interpret these data in a meaningful way? Respiratory disease presents a huge health and economic burden, with the diseases asthma and chronic obstructive pulmonary disease (COPD) affecting over 500 million people worldwide. Current therapies are inadequate owing to our incomplete understanding of the disease pathophysiology and our lack of recognition of the enormous disease heterogeneity: we need to characterize this heterogeneity on a patient-specific basis to advance healthcare. In an effort to achieve this goal, the AirPROM consortium ( Air way disease Pr edicting O utcomes through patient-specific computational M odelling) brings together a multi-disciplinary team and a wealth of clinical data. Together we are developing an integrated multi-scale model of the airways in order to unravel the complex pathophysiological mechanisms occurring in the diseases asthma and COPD.

Publisher

The Royal Society

Subject

Biomedical Engineering,Biomaterials,Biochemistry,Bioengineering,Biophysics,Biotechnology

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