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Bronchial Thermoplasty: A Novel Therapeutic Approach to Severe Asthma
Published on: November 4, 2010
From bedside to bench to clinic trials: identifying new treatments for severe asthma
Amarjit Mishra1, Xianglan Yao, Stewart J Levine
1Cardiovascular and Pulmonary Branch, National Heart, Lung and Blood Institute, National Institutes of Health, Bethesda, MD 20892-1590, USA.
Abstract:
Asthmatics with a severe form of the disease are frequently refractory to standard medications such as inhaled corticosteroids, underlining the need for new treatments to prevent the occurrence of potentially life-threatening episodes. A major obstacle in the development of new treatments for severe asthma is the heterogeneous pathogenesis of the disease, which involves multiple mechanisms and cell types. Furthermore, new therapies might need to be targeted to subgroups of patients whose disease pathogenesis is mediated by a specific pathway. One approach to solving the challenge of developing new treatments for severe asthma is to use experimental mouse models of asthma to address clinically relevant questions regarding disease pathogenesis. The mechanistic insights gained from mouse studies can be translated back to the clinic as potential treatment approaches that require evaluation in clinical trials to validate their effectiveness and safety in human subjects. Here, we will review how mouse models have advanced our understanding of severe asthma pathogenesis. Mouse studies have helped us to uncover the underlying inflammatory mechanisms (mediated by multiple immune cell types that produce Th1, Th2 or Th17 cytokines) and non-inflammatory pathways, in addition to shedding light on asthma that is associated with obesity or steroid unresponsiveness. We propose that the strategy of using mouse models to address clinically relevant questions remains an attractive and productive research approach for identifying mechanistic pathways that can be developed into novel treatments for severe asthma.
Insights
Mouse models are crucial for understanding severe asthma, revealing diverse inflammatory pathways and informing new treatment development for patients refractory to standard therapies.
Area of Science:
- Immunology
- Pulmonology
- Translational Medicine
Background:
- Severe asthma is often resistant to standard treatments like inhaled corticosteroids.
- Disease heterogeneity and multiple underlying mechanisms complicate the development of new therapies.
- Targeted treatments for specific patient subgroups are needed.
Purpose of the Study:
- To review the contribution of experimental mouse models to understanding severe asthma pathogenesis.
- To highlight how mouse studies inform the development of novel therapeutic strategies.
- To emphasize the translation of mechanistic insights from mice to clinical applications.
Main Methods:
- Utilizing experimental mouse models to investigate severe asthma.
- Analyzing underlying inflammatory mechanisms, including Th1, Th2, and Th17 cytokine pathways.
- Examining non-inflammatory pathways and asthma associated with obesity or steroid unresponsiveness.
Main Results:
- Mouse models have elucidated complex inflammatory pathways in severe asthma.
- Studies have identified key immune cell types and cytokine mediators involved.
- Insights into obesity-associated asthma and steroid resistance have been gained.
Conclusions:
- Experimental mouse models are invaluable for dissecting severe asthma pathogenesis.
- Mechanistic understanding from mouse studies facilitates the identification of novel therapeutic targets.
- This research approach holds promise for developing effective treatments for severe, refractory asthma.
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