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Experimental Evolution of Multidrug Resistance in Neurospora crassa under Antifungal Azole Stress
Mi Zhou1,2, Chengcheng Hu1, Yajing Yin3
1Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China.
Abstract:
Multidrug resistance, defined as the resistance to multiple drugs in different categories, has been an increasing serious problem. Limited antifungal drugs and the rapid emergence of antifungal resistance prompt a thorough understanding of how the occurrence of multidrug resistance develops and which mechanisms are involved. In this study, experimental evolution was performed under single-azole-drug stress with the model filamentous fungus Neurospora crassa. By about 30 weeks of continuous growth on agar plates containing ketoconazole or voriconazole with weekly transfer, four evolved multidrug-resistant strains 30thK1, 30thK2, 26thV1, and 24thV2 were obtained. Compared to the ancestral strain, all four strains increased resistance not only to commonly used azoles, including ketoconazole, voriconazole, itraconazole, fluconazole, and triadimefon, but also to antifungal drugs in other categories, including terbinafine (allylamine), amorolfine (morpholine), amphotericin B (polyene), polyoxin B (chitin synthesis inhibitor), and carbendazim (β-tubulin inhibitor). After 8 weeks of growth on agar plates without antifungal drugs with weekly transfer, these evolved strains still displayed multidrug-resistant phenotype, suggesting the multidrug resistance could be stably inherited. Transcriptional measurement of drug target genes and drug transporter genes and deletion analysis of the efflux pump gene cdr4 in the evolved strains suggest that overexpression of cdr4 played a major role in the resistance mechanisms for azoles and terbinafine in the evolved strains, particularly for 30thK2 and 26thV1, and evolved drug-resistant strains had less intracellular ketoconazole accumulation and less disruption of ergosterol accumulations under ketoconazole stress compared to wild type. Mutations specifically present in evolved drug-resistant strains were identified by genome re-sequencing, and drug susceptibility test of knockout mutants for most of mutated genes suggests that mutations in 16 genes, functionally novel in drug resistance, potentially contribute to multidrug resistance in evolved strains.
Insights
Multidrug resistance in fungi is a growing concern. This study used experimental evolution in *Neurospora crassa* to develop and analyze multidrug-resistant strains, identifying novel genetic mutations and the role of the CDR4 efflux pump.
Area of Science:
- Mycology and Fungal Genetics
- Antimicrobial Resistance Research
- Experimental Evolution
Background:
- Multidrug resistance (MDR) in fungi poses a significant global health challenge due to limited treatment options.
- Understanding the mechanisms underlying MDR development is crucial for combating emerging antifungal resistance.
Purpose of the Study:
- To investigate the development and mechanisms of multidrug resistance in the filamentous fungus *Neurospora crassa* under azole drug stress.
- To identify genetic factors and molecular mechanisms contributing to stable, inherited multidrug resistance.
Main Methods:
- Experimental evolution of *Neurospora crassa* on agar plates containing ketoconazole or voriconazole for approximately 30 weeks.
- Phenotypic characterization of evolved strains for resistance to various antifungal drugs.
- Transcriptional analysis of drug target and transporter genes, deletion analysis of the *cdr4* gene, and whole-genome re-sequencing.
Main Results:
- Four multidrug-resistant strains (30thK1, 30thK2, 26thV1, 24thV2) were successfully evolved, exhibiting stable resistance to azoles and other antifungal classes.
- Overexpression of the efflux pump gene *cdr4* was identified as a major contributor to azole and terbinafine resistance in specific strains.
- Genome re-sequencing identified mutations in 16 novel genes potentially involved in conferring multidrug resistance.
Conclusions:
- Experimental evolution is a viable strategy for generating and studying fungal multidrug resistance.
- The *cdr4* efflux pump and novel gene mutations play significant roles in the development of stable, inherited multidrug resistance in *Neurospora crassa*.
- Findings provide insights into fungal resistance mechanisms, potentially aiding in the development of new antifungal strategies.
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