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Quantifying the Antifungal Activity of Peptides Against Candida albicans
Published on: January 13, 2023
Promising Antifungal Targets Against Candida albicans Based on Ion Homeostasis
Yiman Li1, Licui Sun2, Chunyan Lu3
1School of Pharmaceutical Sciences, Shandong University, Jinan, China.
Insights
Invasive fungal infections are rising, especially in immunocompromised patients. Targeting ion homeostasis offers a promising strategy for developing new antifungal drugs against Candida albicans.
Area of Science:
- Medical Mycology
- Molecular Biology
- Drug Discovery
Background:
- Invasive fungal infections, particularly from Candida albicans, are increasing and cause high mortality in immunosuppressed individuals.
- Current antifungal therapies face limitations including drug resistance, toxicity, and limited drug classes.
- Novel antifungal targets are crucial for effective management of Candida albicans infections.
Purpose of the Study:
- To summarize ion homeostasis regulation in fungi.
- To identify potential antifungal targets within ion-signaling networks.
- To review antifungal compounds that disrupt ion homeostasis.
Main Methods:
- Literature review of ion homeostasis in fungal survival.
- Analysis of ion-signaling pathways as drug targets.
- Compilation of antifungal compounds targeting ion homeostasis.
Main Results:
- Ion homeostasis is vital for fungal survival, regulating key processes like gene expression, morphology, and drug resistance.
- Dysregulation of ion homeostasis leads to fungal cell death, forming a basis for antifungal drug action.
- Several ion-signaling networks present potential targets for novel antifungal drug development.
Conclusions:
- Disrupting fungal ion homeostasis is a viable strategy for developing new antifungal agents.
- Understanding ion-signaling networks can guide the design of effective drugs against Candida albicans.
- This review highlights potential therapeutic targets and compounds for combating invasive fungal diseases.
Abstract:
In recent decades, invasive fungal infections have been increasing significantly, contributing to high incidences and mortality in immunosuppressed patients. Candida albicans (C. albicans) is the most prevalent opportunistic fungal pathogen in humans that can cause severe and often fatal bloodstream infections. Current antifungal agents have several limitations, including that only a small number of classes of antifungals are available, certain of which have severe toxicity and high cost. Moreover, the emergence of drug resistance is a new limitation to successful patient outcomes. Therefore, the development of antifungals with novel targets is an essential strategy for the efficient management of C. albicans infections. It is widely recognized that ion homeostasis is crucial for all living cells. Many studies have identified that ion-signaling and transduction networks are central to fungal survival by regulating gene expression, morphological transition, host invasion, stress response, and drug resistance. Dysregulation of ion homeostasis rapidly mediates cell death, forming the mechanistic basis of a growing number of compounds that elicit antifungal activity. Most of the potent antifungals have been widely used in the clinic, and certain of them have low toxicity, meaning that they may be expected to be used as antifungal drugs in the future. Hence, we briefly summarize the homeostasis regulation of several important ions, potential antifungal targets based on these ion-signaling networks, and antifungal compounds based on the disruption of ion homeostasis. This summary will help in designing effective drugs and identifying new targets for combating fungal diseases.
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