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Published on: December 22, 2014
An Innovative Protocol for Metaproteomic Analyses of Microbial Pathogens in Cystic Fibrosis Sputum
Alexander C Graf1, Johanna Striesow2, Jan Pané-Farré3
1Institute of Microbiology, Department of Microbial Physiology & Molecular Biology, University of Greifswald, Greifswald, Germany.
Abstract:
Hallmarks of cystic fibrosis (CF) are increased viscosity of mucus and impaired mucociliary clearance within the airways due to mutations of the cystic fibrosis conductance regulator gene. This facilitates the colonization of the lung by microbial pathogens and the concomitant establishment of chronic infections leading to tissue damage, reduced lung function, and decreased life expectancy. Although the interplay between key CF pathogens plays a major role during disease progression, the pathophysiology of the microbial community in CF lungs remains poorly understood. Particular challenges in the analysis of the microbial population present in CF sputum is (I) the inhomogeneous, viscous, and slimy consistence of CF sputum, and (II) the high number of human proteins masking comparably low abundant microbial proteins. To address these challenges, we used 21 CF sputum samples to develop a reliable, reproducible and widely applicable protocol for sputum processing, microbial enrichment, cell disruption, protein extraction and subsequent metaproteomic analyses. As a proof of concept, we selected three sputum samples for detailed metaproteome analyses and complemented and validated metaproteome data by 16S sequencing, metabolomic as well as microscopic analyses. Applying our protocol, the number of bacterial proteins/protein groups increased from 199-425 to 392-868 in enriched samples compared to nonenriched controls. These early microbial metaproteome data suggest that the arginine deiminase pathway and multiple proteases and peptidases identified from various bacterial genera could so far be underappreciated in their contribution to the CF pathophysiology. By providing a standardized and effective protocol for sputum processing and microbial enrichment, our study represents an important basis for future studies investigating the physiology of microbial pathogens in CF in vivo - an important prerequisite for the development of novel antimicrobial therapies to combat chronic recurrent airway infection in CF.
Insights
Researchers developed a new protocol to analyze microbial proteins in cystic fibrosis (CF) sputum, revealing potential roles for specific bacterial pathways in CF lung disease and paving the way for new therapies.
Area of Science:
- Microbiology
- Proteomics
- Medical Science
Background:
- Cystic fibrosis (CF) is characterized by viscous mucus and impaired airway clearance, leading to chronic infections.
- The microbial community's role in CF lung pathophysiology is poorly understood due to challenges in sputum analysis.
- High viscosity and abundant human proteins in CF sputum hinder the detection of microbial components.
Purpose of the Study:
- To develop a standardized and effective protocol for processing CF sputum for microbial metaproteomic analysis.
- To improve the detection and characterization of microbial communities within CF sputum.
- To identify microbial factors contributing to CF pathophysiology.
Main Methods:
- Development and validation of a protocol for sputum processing, microbial enrichment, cell disruption, and protein extraction.
- Metaproteomic analysis of 21 CF sputum samples.
- Validation using 16S sequencing, metabolomics, and microscopy.
Main Results:
- The developed protocol significantly increased the number of identified bacterial proteins/protein groups in enriched samples.
- Metaproteomic data suggested the arginine deiminase pathway and proteases/peptidases may be underappreciated in CF pathophysiology.
- The study provides a foundation for in vivo studies of microbial pathogens in CF.
Conclusions:
- A standardized protocol for CF sputum processing enhances microbial protein detection.
- Specific bacterial metabolic pathways and enzymes may play significant roles in CF disease progression.
- This work is crucial for developing novel antimicrobial therapies for chronic CF lung infections.
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