Identification of essential genes and fluconazole resistance genes in Candida glabrata by profiling of Hermes transposon insertions.
Within the budding yeasts, the opportunistic pathogen Candida glabrata and other members of the Nakaseomyces clade have developed virulence traits independently from the CTG clade that includes Candida albicans. To begin exploring the genetic basis of C. glabrata virulence and its innate resistance to antifungals, we launched the Hermes transposon from a plasmid and obtained more than 500,000 different semi-random insertions throughout the genome. Using machine learning, we identify up to 1278 protein-encoding genes (25% of total) that cannot tolerate transposon insertions and are thus essential for C. glabrata fitness in vitro. Interestingly, genes involved in mRNA splicing were less likely to be essential in C. glabrata than their orthologs in S. cerevisiae, whereas the opposite is true for genes involved in kinetochore function and chromosome segregation. Insertions in several known genes (e.g. PDR1, CDR1, PDR16, PDR17, UPC2A, DAP1) caused hypersensitivity to the first-line antifungal fluconazole, and we identify 12 additional genes that also contribute to innate fluconazole resistance (KGD1, KGD2, YHR045W, etc). Insertions in 200 other genes conferred significant resistance to fluconazole, two-thirds of which function in mitochondria and likely down-regulate Pdr1 expression or function. These findings show the utility of transposon insertion profiling in genome-wide forward-genetic investigations of fungal pathogens. IMPORTANCEPathogenic yeasts cause mucosal and systemic infections in millions of people each year. The innate resistance of Candida glabrata to fluconazole and its ability to acquire resistance to 2 other antifungals are contributing to its rise in incidence. Our understanding of C. glabrata biology has been hampered by inefficient genetic and genomic tools. This study addresses those deficiencies by developing powerful transposon mutagenesis strategies for the first time in this pathogen. We identify nearly all essential genes of C. glabrata that could be targeted for development of new antifungals. We generate large pools of random insertion mutants that can be easily monitored en masse with deep sequencing, thus enabling identification of genes involved in any number of biological processes. We identify dozens of new genes that increase or decrease innate resistance of clinical isolate BG2 to fluconazole and provide resources for further exploration of C. glabrata genetics and genomics.