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Broth Microdilution In Vitro Screening: An Easy and Fast Method to Detect New Antifungal Compounds
Published on: February 14, 2018
Antifungal agents: mode of action in yeast cells
A J Carrillo-Muñoz1, G Giusiano, P A Ezkurra
1Department of Microbiology, ACIA, Barcelona, Spain. acarrillo@ya.com
Abstract:
Different kinds of mycoses, especially invasive, have become an important public health problem as their incidence has increased dramatically in the last decades in relation to AIDS, hematological malignancies, transplant recipients and other immunosuppressed individuals. Management of fungal infections is markedly limited by problems of drug safety, resistance and effectiveness profile. Current therapy for invasive mycoses uses a relatively reduced number of antifungal drugs, such as amphotericin B, fluconazole and itraconazole. Other new antifungal agents from old and new chemical families, like voriconazole, posaconazole, ravuconazole, caspofungin and micafungin, have been introduced into the armamentarium for fungal infections management. This review is focused on the mode of action of those antifungal drugs used against pathogenic yeasts. The interaction of amphotericin B with ergosterol and other membrane sterols results in the production of aqueous pores of drug and the ergosterol biosynthetic pathway is the target of the allylamines, phenylmorpholines and azole antifungal agents. The main molecular target of azole antifungals is the cytochrome P-450 protein Erg11p/Cyp51p. Echinocandins, a new class of antifungal drugs, are fungal secondary metabolites that act against beta-1-3-D-glucan synthesis. The phenylmorpholines, of which amorolfine is the sole representative in human therapy, affect two targets in the ergosterol pathway: Erg24p (delta 14 reductase) and Erg2p (delta 8-delta 7 isomerase). The sordarins group are protein synthesis inhibitors that work by blocking the function of fungal translation elongation factor 2. Other protein inhibitors are zofimarin, BE31045, SCH57504, xylarin, hypoxysordarin and GR135402. In order to overcome the problems derived from the exploitation of azole drugs, macrolides and echinocandins, novel targets were explored. Proposed antifungal drugs have been developed against potential targets like the N-myristylation of fungal proteins, with inhibitors like myristate and histidine analogues or myristoylpeptide derivatives, aminobenzothiazoles, quinolines and benzofurans. Polymerization of cell wall carbohydrates from uridine di-phospho sugars is another potential target.
Insights
Invasive fungal infections are a growing public health concern, with limited treatment options due to drug resistance and safety issues. This review explores the mechanisms of action for existing and emerging antifungal drugs targeting pathogenic yeasts.
Area of Science:
- Medical Mycology
- Pharmacology
- Infectious Diseases
Background:
- Invasive fungal infections (mycoses) pose a significant public health challenge, particularly in immunocompromised populations (e.g., AIDS, transplant recipients).
- Current antifungal therapies face limitations including drug safety concerns, emerging resistance, and variable effectiveness.
- The limited arsenal of antifungal drugs necessitates exploration of novel agents and therapeutic strategies.
Purpose of the Study:
- To review the mechanisms of action of antifungal drugs used against pathogenic yeasts.
- To discuss established and novel therapeutic agents for managing invasive fungal infections.
- To highlight emerging drug targets and strategies for overcoming antifungal resistance.
Main Methods:
- Literature review of antifungal drug mechanisms.
- Analysis of drug interactions with fungal cell components (ergosterol, cell wall).
- Identification of molecular targets for existing and investigational antifungal agents.
Main Results:
- Amphotericin B targets ergosterol, forming pores in the fungal membrane.
- Azoles inhibit ergosterol biosynthesis by targeting Erg11p/Cyp51p.
- Newer agents like echinocandins inhibit beta-1-3-D-glucan synthesis, while sordarins inhibit protein synthesis.
Conclusions:
- Understanding drug mechanisms is crucial for effective management of invasive mycoses.
- Development of novel antifungal agents targeting new pathways (e.g., N-myristylation, cell wall synthesis) is essential.
- Addressing drug resistance and safety profiles remains a priority in antifungal drug discovery.
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