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Lung Pathologies in a Chronic Inflammation Mouse Model Are Independent of Eosinophil Degranulation
Elizabeth A Jacobsen1, Sergei I Ochkur1, Alfred D Doyle1
11 Division of Pulmonary Medicine and.
Rationale:
The release of eosinophil granule proteins in the lungs of patients with asthma has been dogmatically linked with lung remodeling and airway hyperresponsiveness. However, the demonstrated inability of established mouse models to display the eosinophil degranulation occurring in human subjects has prevented a definitive in vivo test of this hypothesis.
Objectives:
To demonstrate in vivo causative links between induced pulmonary histopathologies/lung dysfunction and eosinophil degranulation.
Methods:
A transgenic mouse model of chronic T-helper cell type 2-driven inflammation overexpressing IL-5 from T cells and human eotaxin 2 in the lung (I5/hE2) was used to test the hypothesis that chronic histopathologies and the development of airway hyperresponsiveness occur as a consequence of extensive eosinophil degranulation in the lung parenchyma.
Measurement And Main Results:
Studies targeting specific inflammatory pathways in I5/hE2 mice surprisingly showed that eosinophil-dependent immunoregulative events and not the release of individual secondary granule proteins are the central contributors to T-helper cell type 2-induced pulmonary remodeling and lung dysfunction. Specifically, our studies highlighted a significant role for eosinophil-dependent IL-13 expression. In contrast, extensive degranulation leading to the release of major basic protein-1 or eosinophil peroxidase was not causatively linked to many of the induced pulmonary histopathologies. However, these studies did define a previously unappreciated link between the release of eosinophil peroxidase (but not major basic protein-1) and observed levels of induced airway mucin.
Conclusions:
These data suggest that improvements observed in patients with asthma responding to therapeutic strategies ablating eosinophils may occur as a consequence of targeting immunoregulatory mechanisms and not by simply eliminating the destructive activities of these purportedly end-stage effector cells.
Insights
Eosinophil immunoregulatory events, not granule release, drive asthma-like lung remodeling and dysfunction in a mouse model. Therapeutic strategies targeting eosinophils may work by modulating these immune responses, not just cell destruction.
Area of Science:
- Immunology
- Pulmonology
- Cell Biology
Background:
- Eosinophil granule proteins are linked to asthma's lung remodeling and airway hyperresponsiveness.
- Existing mouse models fail to replicate human eosinophil degranulation, hindering in vivo hypothesis testing.
Purpose of the Study:
- To establish in vivo causative links between pulmonary histopathology/dysfunction and eosinophil degranulation.
- To investigate the role of eosinophil degranulation in T-helper cell type 2-driven lung remodeling and airway hyperresponsiveness.
Main Methods:
- Utilized a transgenic mouse model (I5/hE2) with chronic T-helper cell type 2 inflammation, overexpressing IL-5 and eotaxin 2.
- Tested the hypothesis that lung remodeling and airway hyperresponsiveness result from extensive eosinophil degranulation.
Main Results:
- Eosinophil-dependent immunoregulatory events, particularly IL-13 expression, are key drivers of lung remodeling and dysfunction, not individual granule proteins.
- Extensive degranulation releasing major basic protein-1 or eosinophil peroxidase was not causally linked to most histopathologies.
- Eosinophil peroxidase release correlated with induced airway mucin levels, but major basic protein-1 did not.
Conclusions:
- Therapeutic strategies targeting eosinophils in asthma may be effective by modulating immunoregulatory mechanisms, rather than solely eliminating eosinophil cytotoxic functions.
- Findings suggest a shift in understanding eosinophil roles in asthma pathogenesis, emphasizing immunomodulation over direct tissue damage.
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