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Published on: November 10, 2023
Development and validation of a real-time multiplex PCR assay for the detection of dermatophytes and Fusarium spp
Seok Hwee Koo1, Yee Leng Teoh2, Wei Liang Koh2
1Clinical Trials and Research Unit, Changi General Hospital, 2 Simei Street 3, Singapore 529889, Singapore.
Abstract:
Introduction: Onychomycosis is a debilitating, difficult-to-treat nail fungal infection with increasing prevalence worldwide. The main etiological agents are dermatophytes, which are common causative pathogens in superficial fungal mycoses. Conventional detection methods such as fungal culture have low sensitivity and specificity and are time-consuming.Aim: The main objective of this study was to design, develop and validate a real-time probe-based multiplex qPCR assay for the detection of dermatophytes and Fusarium species.Methodology: The performance characteristics of the qPCR assays were evaluated. The multiplex qPCR assays targeted four genes (assay 1: pan-dermatophytes/Fusarium spp.; assay 2: Trichophyton rubrum/Microsporum spp.). Analytical validation was accomplished using 150 fungal isolates and clinical validation was done on 204 nail specimens. The performance parameters were compared against the gold standard (fungal culture) and expanded gold standard (culture in conjunction with sequencing).Results: Both the single-plex and multiplex qPCR assays performed well especially when compared against the expanded gold standard. Among the 204 tested nail specimens, the culture method showed that 125 (61.3 %) were infected with at least one organism, of which 40 yielded positive results for dermatophytes and Fusarium spp. These target organisms detected include 20 dermatophytes and 22 Fusarium spp. The developed qPCR assays demonstrated excellent limit of detection, efficiency, coefficient of determination, analytical and clinical sensitivity and specificity.Conclusion: The multiplex qPCR assays were reliable for the diagnosis of onychomycosis, with shorter turn-around time as compared to culture method. This aids in the planning of treatment strategies to achieve optimal therapeutic outcome.
Insights
This study developed a rapid multiplex qPCR assay for detecting fungal nail infections (onychomycosis). The new method offers a faster and more reliable diagnosis compared to traditional fungal cultures.
Area of Science:
- Medical Mycology
- Molecular Diagnostics
- Infectious Diseases
Background:
- Onychomycosis is a prevalent, challenging fungal nail infection.
- Dermatophytes are primary causative agents.
- Current detection methods (e.g., fungal culture) are slow and often inaccurate.
Purpose of the Study:
- To design, develop, and validate a real-time probe-based multiplex qPCR assay.
- To detect dermatophytes and Fusarium species in nail specimens.
- To improve diagnostic speed and accuracy for onychomycosis.
Main Methods:
- Developed multiplex qPCR assays targeting specific fungal genes.
- Validated assays analytically using 150 fungal isolates.
- Validated assays clinically on 204 nail specimens, comparing to fungal culture and sequencing.
Main Results:
- Multiplex qPCR assays demonstrated high performance, comparable to the expanded gold standard.
- Identified dermatophytes and Fusarium species in clinical samples with excellent sensitivity and specificity.
- Achieved a significantly shorter turnaround time compared to conventional fungal culture.
Conclusions:
- The developed multiplex qPCR assays are reliable for diagnosing onychomycosis.
- This molecular method facilitates timely treatment planning for better outcomes.
- Offers a faster, more accurate diagnostic alternative to traditional methods.
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