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Clinical implications of globally emerging azole resistance in Aspergillus fumigatus
Jacques F Meis1,2,3, Anuradha Chowdhary4, Johanna L Rhodes5
1Department of Medical Microbiology and Infectious Diseases, Canisius Wihelmina Hospital (CWZ), Nijmegen, The Netherlands jacques.meis@gmail.com.
Abstract:
Aspergillus fungi are the cause of an array of diseases affecting humans, animals and plants. The triazole antifungal agents itraconazole, voriconazole, isavuconazole and posaconazole are treatment options against diseases caused by Aspergillus However, resistance to azoles has recently emerged as a new therapeutic challenge in six continents. Although de novo azole resistance occurs occasionally in patients during azole therapy, the main burden is the aquisition of resistance through the environment. In this setting, the evolution of resistance is attributed to the widespread use of azole-based fungicides. Although ubiquitously distributed, A. fumigatus is not a phytopathogen. However, agricultural fungicides deployed against plant pathogenic moulds such as Fusarium, Mycospaerella and A. flavus also show activity against A. fumigatus in the environment and exposure of non-target fungi is inevitable. Further, similarity in molecule structure between azole fungicides and antifungal drugs results in cross-resistance of A. fumigatus to medical azoles. Clinical studies have shown that two-thirds of patients with azole-resistant infections had no previous history of azole therapy and high mortality rates between 50% and 100% are reported in azole-resistant invasive aspergillosis. The resistance phenotype is associated with key mutations in the cyp51A gene, including TR34/L98H, TR53 and TR46/Y121F/T289A resistance mechanisms. Early detection of resistance is of paramount importance and if demonstrated, either with susceptibility testing or through molecular analysis, azole monotherapy should be avoided. Liposomal amphotericin B or a combination of voriconazole and an echinocandin are recomended for azole-resistant aspergillosis.This article is part of the themed issue 'Tackling emerging fungal threats to animal health, food security and ecosystem resilience'.
Insights
Azole resistance in Aspergillus is a growing threat, driven by agricultural fungicide use. This resistance, linked to specific gene mutations, leads to high mortality and necessitates alternative treatments like liposomal amphotericin B.
Area of Science:
- Medical Mycology
- Environmental Microbiology
- Antimicrobial Resistance
Background:
- Aspergillus species cause significant human, animal, and plant diseases.
- Triazole antifungals (itraconazole, voriconazole, etc.) are key treatments.
- Emerging azole resistance poses a global therapeutic challenge.
Purpose of the Study:
- To highlight the emergence and drivers of azole resistance in Aspergillus.
- To discuss the clinical implications and mortality associated with resistant infections.
- To outline recommended diagnostic and therapeutic strategies.
Main Methods:
- Review of clinical studies and molecular analyses of azole resistance.
- Investigation of environmental sources of resistance, particularly agricultural fungicides.
- Identification of specific genetic mutations (e.g., TR34/L98H) conferring resistance.
Main Results:
- Azole resistance is acquired environmentally due to widespread fungicide use, not just de novo.
- Cross-resistance occurs between agricultural and medical azoles.
- High mortality rates (50-100%) in azole-resistant invasive aspergillosis, often in patients without prior azole exposure.
- Key resistance mechanisms involve mutations in the cyp51A gene.
Conclusions:
- Early detection of azole resistance is critical for patient outcomes.
- Azole monotherapy should be avoided in cases of resistance.
- Alternative treatments like liposomal amphotericin B or combination therapy are recommended.
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