Literature DB >> 27121717

Compensatory expression of multidrug-resistance genes encoding ABC transporters in dermatophytes.

Maíra Pompeu Martins1, Ana Carolina Capovilla Franceschini1, Tiago Rinaldi Jacob1, Antonio Rossi1, Nilce Maria Martinez-Rossi1.   

Abstract

Genomic sequencing of several dermatophyte species has revealed that they show small differences in genetic content and genome organization, although each fungus has adapted to specific niches. Thus, it seemed relevant to compare gene expression between species. Here, we examined the transcription modulation of three ATP-binding cassette (ABC) transporter genes (pdr1, mdr2 and mdr4), which code for membrane transporter proteins in four species of Trichophyton ; T. interdigitale, T. rubrum, T. tonsurans and T. equinum . These fungal species were challenged with sub-lethal doses of griseofulvin, itraconazole, terbinafine and amphotericin B. A mutant strain of T. interdigitale, Δmdr2, was also analysed for the modulation of pdr1 and mdr4 genes to evaluate the possible functional interaction among these three genes. Disruption of the mdr2 gene resulted in the accumulation of high levels of mdr4 transcripts when challenged with griseofulvin, suggesting that the mdr4 gene is compensating for the inactivation of mdr2 by providing resistance to this antifungal. Although the three ABC transporter genes have high homology between the four dermatophytes analysed, it is likely that they have specific functions, suggesting that the action of each drug is dependent on other factors inherent to each species. Our data suggest that these ABC transporter genes act synergistically in dermatophytes, and they may compensate for one another when challenged with antifungal drugs. This may be an important cause of therapeutic failure when treating fungal infections.

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Year:  2016        PMID: 27121717     DOI: 10.1099/jmm.0.000268

Source DB:  PubMed          Journal:  J Med Microbiol        ISSN: 0022-2615            Impact factor:   2.472


  13 in total

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2.  Clinical Isolate of a Multi-Antifungal-Resistant Trichophyton rubrum.

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3.  Saline stress affects the pH-dependent regulation of the transcription factor PacC in the dermatophyte Trichophyton interdigitale.

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4.  Synergistic Effects of Efflux Pump Modulators on the Azole Antifungal Susceptibility of Microsporum canis.

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5.  Resistance Mechanism in a Terbinafine-Resistant Strain of Microsporum canis.

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Review 6.  Antifungal Therapy: New Advances in the Understanding and Treatment of Mycosis.

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8.  Transcriptome-wide survey of gene expression changes and alternative splicing in Trichophyton rubrum in response to undecanoic acid.

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Review 9.  Dermatophyte Resistance to Antifungal Drugs: Mechanisms and Prospectus.

Authors:  Nilce M Martinez-Rossi; Tamires A Bitencourt; Nalu T A Peres; Elza A S Lang; Eriston V Gomes; Natalia R Quaresemin; Maíra P Martins; Lucia Lopes; Antonio Rossi
Journal:  Front Microbiol       Date:  2018-05-29       Impact factor: 5.640

10.  Trichophyton rubrum Azole Resistance Mediated by a New ABC Transporter, TruMDR3.

Authors:  Michel Monod; Marc Feuermann; Karine Salamin; Marina Fratti; Maya Makino; Mohamed Mahdi Alshahni; Koichi Makimura; Tsuyoshi Yamada
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