University of Tennessee Health Science Center
Novel Determinants That Influence Azole Susceptibility in Candida glabrata and Candida albicans
Abstract
dc:description.abstract<p>Despite the scientific and medical communities’ best efforts, the incidence of fungal infections in susceptible populations continues to rise. The most common cause of these opportunistic fungal infections is <em>Candida</em>. In fact, <em>Candida </em>is the fourth most common pathogen associated with nosocomial blood stream infections. Reported mortality rates for patients with candidemia vary, but have not decreased in the past fifteen years and are reported to be as high as 50%. <em>Candida glabrata</em>, second only to <em>Candida albicans </em>among <em>Candida </em>infections, expresses high rates of resistance to treatment with arguably the best class of currently available antifungals - the azoles.</p> <p>Other available antifungals have associated toxicities, are not available as oral dosage forms or are cost prohibitive. As multidrug resistant <em>C. glabrata </em>have been reported, the need to find ways to overcome resistance to azoles is more pressing than ever. The work described here highlights our efforts to develop a better understanding of azole resistance in <em>Candida</em>, with a focus on <em>C. glabrata</em>, which can then be utilized to inform better strategies for decreasing or preventing resistance.</p> <p> In <em>C. glabrata </em>clinical azole resistance is mediated almost exclusively by activating mutations in the zinc cluster transcription factor Pdr1, which controls the genes encoding the multidrug resistance transporters Cdr1, Pdh1, and Snq2. However, the specific relative contribution of these transporters to resistance is not known. In order to determine this, the <em>SAT</em><em>1 </em>flipper method was used to delete <em>CDR1</em>, <em>PDH1</em>, and <em>SNQ2 </em>in a strain of <em>C. glabrata </em>engineered to carry a clinically relevant activating mutation in <em>PDR1</em>. Susceptibility testing was performed according to the CLSI guidelines with minor modifications and confirmed with Etest strips. Of the single transporter deletion strains, only <em>CDR1 </em>deletion resulted in decreased azole MIC. Deletion of <em>PDH1 </em>in combination with <em>CDR1 </em>resulted in a moderate decrease in MIC from that observed with deletion of <em>CDR1 </em>alone. <em>SNQ2 </em>deletion only decreased the MIC in the triple deletion strain in the absence of both <em>CDR1 </em>and <em>PDH1</em>. Deletion of all three transporters in combination decreased the MIC to the level observed in the <em>PDR1 </em>deletion strains for some, but not all of the azoles tested, which indicates additional Pdr1 targets likely play a minor role in this process. These results demonstrate that Cdr1 is the most important Pdr1-mediated multidrug resistance transporter for azole resistance in <em>C. glabrata</em>, suggesting that targeting this transporter alone might be sufficient to overcome this clinical problem. </p> <p>Upc2 and Ecm22 in <em>S. cerevisiae </em>and Upc2 in <em>C. albicans </em>are the transcriptional regulators of <em>ERG11</em>, the gene encoding the target of azoles in the ergosterol biosynthesis pathway. Recently two homologs for these transcription factors, <em>UPC2A </em>and <em>UPC2B</em>, were identified in <em>C. glabrata</em>. One of these, <em>UPC2A</em>, was shown to influence azole susceptibility. We hypothesized that due to the global role for Upc2 in sterol biosynthesis in <em>S. cerevisiae </em>and <em>C. albicans</em>, disruption of <em>UPC2A </em>would enhance the activity of fluconazole in both azole-susceptible-dose dependent (SDD) and -resistant <em>C. glabrata </em>clinical isolates. To test this hypothesis, we constructed mutants disrupted for <em>UPC2A </em>and <em>UPC2B </em>alone and in combination in a matched pair of clinical azole-SDD and - resistant isolates. Disruption of <em>UPC2A </em>in both the SDD and resistant isolates resulted in increased susceptibility to sterol biosynthesis inhibitors, including a reduction in fluconazole minimum inhibitory concentration and minimum fungicidal concentration, enhanced azole activity by time-kill analysis, a decrease in ergosterol content, and downregulation of baseline and inducible expression of several sterol biosynthesis genes. Our results indicate that Upc2A is a key regulator of ergosterol biosynthesis and is essential for resistance to sterol biosynthesis inhibitors in <em>C. glabrata</em>. As such, the <em>UPC2A </em>pathway may represent a potential co-therapeutic target for enhancing azole activity against this organism.</p> <p>The importance of Pdr1 in azole resistance in <em>C. glabrata </em>is well established. Our understanding of how Pdr1 is being regulated, however, is predominantly informed by regulation of similar systems in other organisms. In order to identify genes that interact with the Pdr1 transcriptional pathway, and influence the susceptibility of <em>C. glabrata </em>to fluconazole, we screened a collection of deletion mutants for those exhibiting increased resistance to fluconazole. Deletion of the gene coding for a protein homologous to the <em>S. cerevisiae </em>J protein Jjj1 resulted in decreased fluconazole susceptibility. We used the <em>SAT1 </em>flipper method to generate independent deletion mutants for <em>JJJ1 </em>in a SDD clinical isolate. Expression of both <em>CDR1 </em>and <em>PDR1 </em>was increased in the absence of <em>JJJ1</em>. In the absence of <em>CDR1 </em>or <em>PDR1</em>, deletion of <em>JJJ1 </em>had only a modest effect on fluconazole susceptibility. Transcriptional profiling using RNA-Seq revealed up-regulation of genes of the Pdr1 regulon in the absence of <em>JJJ1</em>. Jjj1 appears to be a negative regulator of fluconazole resistance in <em>C. glabrata </em>and acts primarily through up-regulation of the ABC transporter gene <em>CDR1 </em>via activation of the Pdr1 transcriptional pathway.</p> <p>Unlike <em>C. glabrata </em>which has essentially one mechanism of resistance, in <em>C. </em><em>albicans </em>clinical azole resistance can be attributed to multiple mechanisms, often in combination. The <em>RTA3 </em>gene, coding for a member of the Rta1p-like lipid-translocating exporter family, is coordinately upregulated with the ABC transporter genes <em>CDR1 </em>and <em>CDR2 </em>in azole-resistant clinical isolates of <em>C. albicans </em>that carry activating mutations in the transcription factor Tac1p. We show here that deleting <em>RTA3 </em>in an azole-resistant clinical isolate carrying a Tac1p activating mutation lowered fluconazole resistance by two-fold, while overexpressing <em>RTA3 </em>in an azole-susceptible clinical isolate resulted in enhanced fluconazole tolerance associated with trailing growth in a liquid microtiter plate assay. We also demonstrate that an Rta3p-GFP fusion protein localizes predominantly to the plasma membrane, consistent with a putative function for Rta3p as a lipid translocase.</p>
Degree
thesis:*- Name thesis:degree_name
- Doctor of Philosophy (PhD)
- Level thesis:degree_level
- Dissertation
- Discipline thesis:degree_discipline
- Pharmaceutical Sciences
- Year dc:date.available
- 2018
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Whaley, Sarah Garland
- Contributors dc:contributor
-
- P. David Rogers, Pharm.D., Ph.D.
Subjects
dc:subject × 14Identifiers
dc:identifier.*- Repository record dc:identifier
- https://dc.uthsc.edu/dissertations/453
- OAI identifier oai:identifier
- oai:dc.uthsc.edu:dissertations-1453