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The development and validation of a rapid genetic method for species identification and genotyping of medically important fungal pathogens using high‐resolution melting curve analysis
Authors:AD Alnuaimi  D Wiesenfeld  NM O'Brien‐Simpson  EC Reynolds  B Peng  MJ McCullough
Institution:1. Melbourne Dental School, Oral Health CRC, The University of Melbourne, , Melbourne, Vic., Australia;2. Head and Neck Oncology, The Royal Melbourne Hospital, , Melbourne, Vic., Australia
Abstract:Accurate, rapid and economical fungal species identification has been a major aim in mycology. In this study, our goal was to examine the feasibility of a high‐resolution melting curve analysis (HRMA) of internal transcribed regions ITS1 and ITS2 in ribosomal DNA (rDNA) for a rapid, simple and inexpensive differentiation of eight clinically relevant Candida species (Candida albicans, Candida glabrata, Candida parapsilosis, Candida krusei, Candida tropicalis, Candida guilliermondii, Candida dubliniensis and Candida lusitaniae). In addition, for the first time, we tested the applicability of HRMA to classify C. albicans strains into four previously described genotypes (A, B, C and D) using a primer set that spans the transposable intron region of 25S of rDNA. Type and unknown clinical oral isolates were used in this study and the melting curve analysis was compared with both amplicons' sequencing and agarose gel electrophoresis analysis. Real‐time PCR and subsequent HRMA of the two described rDNA regions generated distinct melting curve profiles that were in accord with sequencing and gel electrophoresis analysis, highly reproducible, and characteristic of each of the eight Candida species and C. albicans genotypes. Moreover, results were obtained in 4 h and without the need for any post‐amplification handling, so reducing time and cost. Owing to its simplicity and speed, this technique is a good fit for genotypic analysis of hundreds of clinical strains in large epidemiological settings.
Keywords:   Candida albicans     Candida genotyping  high‐resolution melting curve analysis  rapid identification
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