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Published on: June 2, 2011
Universal digital high-resolution melting for the detection of pulmonary mold infections
Tyler Goshia1, April Aralar1, Nathan Wiederhold2
1Department of Bioengineering, University of California San Diego, San Diego, California, USA.
Abstract:
Invasive mold infections (IMIs) are associated with high morbidity, particularly in immunocompromised patients, with mortality rates between 40% and 80%. Early initiation of appropriate antifungal therapy can substantially improve outcomes, yet early diagnosis remains difficult to establish and often requires multidisciplinary teams evaluating clinical and radiological findings plus supportive mycological findings. Universal digital high-resolution melting (U-dHRM) analysis may enable rapid and robust diagnoses of IMI. A universal fungal assay was developed for U-dHRM and used to generate a database of melt curve signatures for 19 clinically relevant fungal pathogens. A machine learning algorithm (ML) was trained to automatically classify these pathogen curves and detect novel melt curves. Performance was assessed on 73 clinical bronchoalveolar lavage samples from patients suspected of IMI. Novel curves were identified by micropipetting U-dHRM reactions and Sanger sequencing amplicons. U-dHRM achieved 97% overall fungal organism identification accuracy and a turnaround time of ~4 hrs. U-dHRM detected pathogenic molds (Aspergillus, Mucorales, Lomentospora, and Fusarium) in 73% of 30 samples classified as IMI, including mixed infections. Specificity was optimized by requiring the number of pathogenic mold curves detected in a sample to be >8 and a sample volume to be 1 mL, which resulted in 100% specificity in 21 at-risk patients without IMI. U-dHRM showed promise as a separate or combination diagnostic approach to standard mycological tests. U-dHRM's speed, ability to simultaneously identify and quantify clinically relevant mold pathogens in polymicrobial samples, and detect emerging opportunistic pathogens may aid treatment decisions, improving patient outcomes.
Importance:
Improvements in diagnostics for invasive mold infections are urgently needed. This work presents a new molecular detection approach that addresses technical and workflow challenges to provide fast pathogen detection, identification, and quantification that could inform treatment to improve patient outcomes.
Insights
Universal digital high-resolution melting (U-dHRM) offers rapid diagnosis of invasive mold infections (IMIs). This molecular method accurately identifies fungal pathogens in ~4 hours, improving patient treatment and outcomes.
Area of Science:
- Molecular diagnostics
- Mycology
- Infectious diseases
Background:
- Invasive mold infections (IMIs) have high mortality rates, especially in immunocompromised patients.
- Early diagnosis of IMIs is challenging, requiring multidisciplinary evaluation.
- Timely antifungal therapy is crucial for improving patient outcomes.
Purpose of the Study:
- To develop and validate a rapid molecular diagnostic approach for IMIs.
- To address technical and workflow challenges in current IMI diagnostics.
- To enable fast pathogen detection, identification, and quantification to inform treatment.
Main Methods:
- Development of a universal fungal assay for universal digital high-resolution melting (U-dHRM).
- Creation of a database of melt curve signatures for 19 fungal pathogens.
- Training a machine learning algorithm for automated classification and detection of novel curves.
- Performance assessment on 73 clinical bronchoalveolar lavage samples.
Main Results:
- U-dHRM achieved 97% overall fungal organism identification accuracy with a ~4-hour turnaround time.
- Detected pathogenic molds in 73% of samples classified as IMI, including mixed infections.
- Optimized specificity to 100% in at-risk patients without IMI.
Conclusions:
- U-dHRM shows promise as a rapid diagnostic tool for IMIs, alone or in combination with standard tests.
- The method's speed and ability to identify/quantify pathogens can aid treatment decisions.
- U-dHRM can help improve patient outcomes by enabling faster and more accurate diagnoses.

