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Engineering Multiplexed Synthetic Breath Biomarkers as Diagnostic Probes
Biorxiv : the Preprint Server for Biology
|January 13, 2025
Summary
This study introduces multiplexed breath biomarkers that detect disease-specific protease activity. This novel approach enables rapid, non-invasive diagnostics for conditions like lung cancer using exhaled breath.
Area of Science:
- Biomarker Discovery
- Chemical Biology
- Non-invasive Diagnostics
Background:
- Breath biopsy offers rapid, non-invasive disease detection via exhaled chemical signatures.
- Clinical translation is hindered by challenges in detecting endogenous biomarkers in breath.
- Synthetic biomarkers can amplify disease signals but require suitable volatile reporters for breath analysis.
Purpose of the Study:
- To engineer multiplexed breath biomarkers coupling aberrant protease activities to exogenous volatile reporters.
- To develop a platform for sensitive and specific detection of disease-specific biomarkers in exhaled breath.
- To enable rapid, point-of-care diagnostics for various medical conditions.
Main Methods:
- Designed novel intramolecular reactions utilizing protease-mediated aminolysis to release unique volatile reporters.
- Validated the approach in mouse models for influenza and lung cancer.
- Combined multiplexed reporter signals with machine learning algorithms for data analysis.
Main Results:
- Demonstrated successful coupling of protease activity to unique volatile reporters detectable in breath.
- Achieved sensitive and specific detection in controlled inflammatory (influenza) and disease (lung cancer) models.
- Showcased the ability to track tumor progression, monitor treatment response, and detect relapse within 30 minutes.
Conclusions:
- Engineered multiplexed breath biomarkers represent a significant advancement for breath biopsy.
- This platform enables the detection of diverse disease states through protease activity.
- The technology holds promise for rapid, point-of-care diagnostics across a spectrum of diseases.

