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Updated: Apr 28, 2026

Matrix-based DNA Extraction for Targeted Next-Generation Sequencing on Decontaminated Sputum Samples
Published on: June 6, 2025
Enzymatic treatment of specimens before DNA extraction directly influences molecular detection of infectious agents
Pablo Goldschmidt1, Sandrine Degorge1, Lilia Merabet1
1Laboratoire du Centre Hospitalier National d'Ophtalmologie des Quinze-Vingts, Paris, France.
Introduction:
Biological samples, pharmaceuticals or food contain proteins, lipids, polymers, ammoniums and macromolecules that alter the detection of infectious agents by DNA amplification techniques (PCR). Moreover the targeted DNA has to be released from the complex cell walls and the compact nucleoprotein matrixes and cleared from potential inhibitors. The goal of the present work was to assess the efficiency of enzymatic pretreatments on infectious agents to make DNA available for further extraction and amplification.
Methods:
Staphylococcus epidermidis, Streptococcus mitis, Propionibacterium acnes, Escherichia coli, Pseudomonas aeruginosa, Candida albicans, Aspergillus niger and Fusarium solani were mixed with an internal control virus and treated with: 1) proteinase K; 2) lyticase and 3) lyticase followed by proteinase K. DNAs was manually extracted using the QIAmp DNA Mini kit or the MagNA Pure Compact automate. DNA extraction yields and the inhibitors were assessed with a phocid Herpesvirus. Bacterial detection was performed using TaqMan real-time PCR and yeasts and filamentous Fungi with HRM (real-time PCR followed by high-resolution melting analysis).
Results:
Viral DNA was released, extracted and detected using manual and automatic methods without pre enzymatic treatments. Either the manual or the automatic DNA extraction systems did not meet the sensitivity expectations if enzymatic treatments were not performed before: lyticase for Fungi and Proteinase K for Bacteria. The addition of lyticase and proteinase K did not improve results. For Fungi the detection after lyticase was higher than for Proteinase K, for which melting analysis did not allow fungal specification.
Discussion:
Columns and magnetic beads allowed collecting DNA and separate PCR inhibitors. Detection rates cannot be related to DNA-avidity of beads or to elution but to the lack of proteolysis.
Insights
Enzymatic pretreatment enhances DNA extraction for infectious agent detection. Proteinase K is crucial for bacteria, while lyticase improves fungal DNA detection, optimizing PCR sensitivity.
Area of Science:
- Microbiology
- Molecular Biology
- Biotechnology
Background:
- Biological samples contain inhibitors that hinder infectious agent detection via DNA amplification (PCR).
- Effective DNA extraction requires releasing genetic material from cellular structures and removing inhibitors.
- Enzymatic pretreatment is explored to improve DNA availability for downstream analysis.
Purpose of the Study:
- To evaluate the efficacy of enzymatic pretreatments for infectious agents.
- To enhance DNA accessibility for subsequent extraction and amplification.
- To optimize PCR-based detection of various microorganisms.
Main Methods:
- Microorganisms including bacteria (e.g., E. coli) and fungi (e.g., C. albicans) were treated with Proteinase K and/or lyticase.
- DNA was extracted manually (QIAmp DNA Mini kit) and automatically (MagNA Pure Compact).
- Detection utilized TaqMan real-time PCR for bacteria and HRM for fungi, with a control virus to assess inhibitors.
Main Results:
- Viral DNA was successfully extracted and detected without enzymatic treatment.
- Enzymatic pretreatment significantly improved DNA extraction sensitivity for both manual and automated methods.
- Lyticase was more effective for fungi, while Proteinase K was essential for bacteria; combined treatment offered no additional benefit.
Conclusions:
- Enzymatic pretreatment, specifically Proteinase K for bacteria and lyticase for fungi, is critical for sensitive DNA detection.
- The efficiency of DNA extraction and subsequent detection is primarily limited by the absence of adequate proteolysis, not by DNA-binding materials.
- Optimized enzymatic strategies are key to overcoming inhibitory substances in biological samples for accurate infectious agent identification.
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