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Whole Genome Sequencing of Candida glabrata for Detection of Markers of Antifungal Drug Resistance
Published on: December 28, 2017
Whole genome sequencing analysis demonstrates therapy-induced echinocandin resistance in Candida auris isolates
Bram Spruijtenburg1,2, Suhail Ahmad3, Mohammad Asadzadeh3
1Department of Medical Microbiology and Infectious Diseases, Canisius-Wilhelmina Hospital, Nijmegen, The Netherlands.
Abstract:
Candida auris is an emerging, multidrug-resistant yeast, causing outbreaks in healthcare facilities. Echinocandins are the antifungal drugs of choice to treat candidiasis, as they cause few side effects and resistance is rarely found. Previously, immunocompromised patients from Kuwait with C. auris colonisation or infection were treated with echinocandins, and within days to months, resistance was reported in urine isolates. To determine whether the development of echinocandin resistance was due to independent introductions of resistant strains or resulted from intra-patient resistance development, whole genome sequencing (WGS) single-nucleotide polymorphism (SNP) analysis was performed on susceptible (n = 26) and echinocandin-resistant (n = 6) isolates from seven patients. WGS SNP analysis identified three distinct clusters differing 17-127 SNPs from two patients, and the remaining isolates from five patients, respectively. Sequential isolates within patients had a maximum of 11 SNP differences over a time period of 1-10 months. The majority of isolates with reduced susceptibility displayed unique FKS1 substitutions including a novel FKS1M690V substitution, and nearly all were genetically related, ranging from only three to six SNP differences compared to susceptible isolates from the same patient. Resistant isolates from three patients shared the common FKS1S639F substitution; however, WGS analysis did not suggest a common source. These findings strongly indicate that echinocandin resistance is induced during antifungal treatment. Future studies should determine whether such echinocandin-resistant strains are capable of long-term colonisation, cause subsequent breakthrough candidiasis, have a propensity to cross-infect other patients, or remain viable for longer time periods in the hospital environment.
Insights
Multidrug-resistant Candida auris can develop echinocandin resistance during antifungal treatment in immunocompromised patients. Whole genome sequencing suggests resistance arises within patients, not from external resistant strains.
Area of Science:
- Medical Mycology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Candida auris is a multidrug-resistant yeast causing healthcare-associated outbreaks.
- Echinocandins are primary antifungals for candidiasis due to efficacy and safety.
- Rapid echinocandin resistance development in C. auris has been observed in immunocompromised patients.
Purpose of the Study:
- To investigate the origin of echinocandin resistance in Candida auris.
- To differentiate between de novo resistance development and strain importation.
- To analyze genetic relatedness between susceptible and resistant C. auris isolates.
Main Methods:
- Whole genome sequencing (WGS) single-nucleotide polymorphism (SNP) analysis.
- Comparison of susceptible (n=26) and resistant (n=6) isolates from seven patients.
- Identification of FKS1 gene substitutions associated with resistance.
Main Results:
- WGS identified three distinct genetic clusters, indicating limited strain importation.
- Sequential isolates within patients showed minimal SNP differences (max 11), suggesting intra-patient evolution.
- Novel FKS1 substitutions (e.g., M690V) and common substitutions (S639F) were linked to reduced susceptibility.
- Resistant isolates were genetically similar to susceptible isolates from the same patient.
Conclusions:
- Echinocandin resistance in Candida auris is strongly induced by antifungal treatment within patients.
- Further research is needed on the long-term implications of resistant strains, including colonization and transmission.
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