What makes Candida auris pan-drug resistant? Integrative insights from genomic, transcriptomic, and phenomic analysis of clinical strains resistant to all four major classes of antifungal drugs
Rhodes, J.; Jacobs, J.; Dennis, E. K.; Manjari, S. R.; Banavali, N. K.; Marlow, R.; Rokebul, M. A.; Chaturvedi, S.; Chaturvedi, V.
Show abstract
The global epidemic of drug-resistant Candida auris continues unabated. We do not know what caused the unprecedented appearance of pan-drug resistant (PDR) Candida auris strains in a hospitalized patient in New York; the initial report highlighted both known and unique mutations in the prominent gene targets of azoles, amphotericin B, echinocandins, and flucytosine antifungal drugs. However, the factors that allow C. auris to acquire multi-drug resistance and pan-drug resistance are not known. Therefore, we conducted a comprehensive genomic, transcriptomic, and phenomic analysis to better understand PDR C. auris. Among 1,570 genetic variants in drug-resistant C. auris, 299 were unique to PDR strains. The whole genome sequencing results suggested perturbations in genes associated with nucleotide biosynthesis, mRNA processing, and nuclear export of mRNA. Whole transcriptome sequencing of PDR C. auris revealed two genes to be significantly differentially expressed - a DNA repair protein and DNA replication-dependent chromatin assembly factor 1. Of 59 novel transcripts, 12 candidate transcripts had no known homology among expressed transcripts found in other organisms. We observed no fitness defects among multi-drug resistant (MDR) and PDR C. auris strains grown in nutrient-deficient or - enriched media at different temperatures. Phenotypic profiling revealed wider adaptability to nitrogenous nutrients with an uptick in the utilization of substrates critical in upper glycolysis and tricarboxylic acid cycle. Structural modelling of 33-amino acid deletion in the gene for uracil phosphoribosyl transferase suggested an alternate route in C. auris to generate uracil monophosphate that does not accommodate 5-fluorouracil as a substrate. Overall, we find evidence of metabolic adaptations in MDR and PDR C. auris in response to antifungal drug lethality without deleterious fitness costs.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Genome-wide analysis of experimentally evolved Candida auris reveals multiple novel mechanisms of multidrug-resistance 98%
- Coordinated regulation of Mdr1- and Cdr1-mediated protection from antifungals by the Mrr1 transcription factor in emerging Candida spp. 97%
- Mutations in TAC1B: a novel genetic determinant of clinical fluconazole resistance in C. auris 96%
Similar papers in this journal
- Functional characterization of clinical isolates of the opportunistic fungal pathogen Aspergillus nidulans 97%
- Achromobacter xylosoxidans isolates exhibit genome diversity, variable virulence, high levels of antibiotic resistance and potential intrahost evolution. 96%
- FKS1 is required for Cryptococcus neoformans fitness in vivo: application of copper-regulated gene expression to mouse models of cryptococcosis 96%
Similar papers in this journal
- Mutations in ampD cause hyperproduction of AmpC and CphA beta-lactamases and high resistance to beta-lactam antibiotics in Chromobacterium violaceum 96%
- A mechanistic understanding of the effect of Staphylococcus aureus VraS histidine kinase single point mutation on antibiotic resistance 95%
- C-di-AMP levels modulate Staphylococcus aureus cell wall thickness as well as virulence and contribute to antibiotic resistance and tolerance 95%
Similar papers in this journal
- Novel mechanisms of efflux-mediated levofloxacin resistance and reduced amikacin susceptibility in Stenotrophomonas maltophilia. 95%
- Identification of novel mutations contributing to azole tolerance of Aspergillus fumigatus through in vitro exposure to tebuconazole 95%
- Set1-mediated histone H3K4 methylation is required for azole induction of the ergosterol biosynthesis genes and antifungal drug resistance in Candida glabrata. 95%
Similar papers in this journal
- The inactivation of enzymes belonging to the central carbon metabolism, a novel mechanism of developing antibiotic resistance 96%
- GplR1, an unusual TetR-like transcription factor in Mycobacterium abscessus, controls the production of cell wall glycopeptidolipids, colony morphology, and virulence 95%
- Commensal oral Rothia mucilaginosa produces enterobactin - a metal chelating siderophore 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.