Using Machine Learning to Detect Theranostic Biomarkers Predicting Respiratory Treatment Response
Vasilis Nikolaou1, Sebastiano Massaro1,2, Masoud Fakhimi1
1Business School, University of Surrey, Guildford GU2 7XH, UK.
Life (Basel, Switzerland)
|June 24, 2022
Summary
This study identifies key biomarkers, including alkaline phosphatase and C-reactive protein, linked to respiratory treatment response. These findings support using biomarkers for targeted respiratory disease management.
Area of Science:
- Biomarker discovery
- Precision medicine
- Respiratory medicine
Background:
- Theranostic approaches are emerging in precision medicine, primarily in oncology.
- Limited research exists on theranostics within respiratory medicine.
- This study addresses the gap by investigating theranostic biomarkers for respiratory treatments.
Purpose of the Study:
- To identify theranostic biomarkers associated with respiratory treatment responses.
- To advance the understanding and application of biomarkers in diagnosing respiratory diseases.
- To contribute to the development of targeted therapies for respiratory conditions.
Main Methods:
- Cross-sectional analysis of 13,102 adults from the UK Household Longitudinal Study.
- Recursive feature selection identified 16 key biomarkers.
- Machine learning algorithms predicted treatment response using biomarkers, age, sex, BMI, and lung function.
Main Results:
- Increased levels of alkaline phosphatase, glycated hemoglobin, HDL cholesterol, C-reactive protein, triglycerides, hemoglobin, and Clauss fibrinogen were associated with receiving respiratory treatments.
- These associations remained significant after adjusting for age, sex, body mass index, and lung function.
Conclusions:
- The identified biomarkers provide a diagnostic blueprint for respiratory diseases.
- Biomarker utilization can guide treatment management and personalize respiratory care.
- This research supports the integration of theranostics in respiratory medicine.
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