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Anti-amoebic potential of azole scaffolds and nanoparticles against pathogenic Acanthamoeba
Shweta Walvekar1, Ayaz Anwar1, Areeba Anwar2
1Department of Biological Sciences, School of Science and Technology, Sunway University, Subang Jaya 47500, Selangor, Malaysia.
Abstract:
Acanthamoeba spp. are free living amoeba (FLA) which are widely distributed in nature. They are opportunistic parasites and can cause severe infections to the eye, skin and central nervous system. The advances in drug discovery and modifications in the chemotherapeutic agents have shown little improvement in morbidity and mortality rates associated with Acanthamoeba infections. The mechanism-based process of drug discovery depends on the molecular drug targets present in the signaling pathways in the genome. Synthetic libraries provide a platform for broad spectrum of activities due to their desired structural modifications. Azoles, originally a class of synthetic anti-fungal drugs, disrupt the fungal cell membrane by inhibiting the biosynthesis of ergosterol through the inhibition of cytochrome P450 dependent 14α-lanosterol, a key step of the sterol pathway. Acanthamoeba and fungi share the presence of similar sterol intermediate, as ergosterol is also the major end-product in the sterol biosynthesis in Acanthamoeba. Sterols present in the eukaryotic cell membrane are one of the most essential lipids and exhibit important structural and signaling functions. Therefore, in this review we highlight the importance of specific targeting of ergosterol present in Acanthamoebic membrane by azole compounds for amoebicidal activity. Previously, azoles have also been repurposed to report antimicrobial, antiparasitic and antibacterial properties. Moreover, by loading the azoles into nanoparticles through advanced techniques in nanotechnology, such as physical encapsulation, adsorption, or chemical conjugation, the pharmacokinetics and therapeutic index of the drugs can be significantly improved. The current review proposes an important strategy to target Acanthamoeba using synthetic libraries of azoles and their conjugated nanoparticles for the first time.
Insights
Azole compounds can target ergosterol in Acanthamoeba, offering a new strategy against severe parasitic infections. Nanoparticle delivery enhances azole efficacy for improved treatment outcomes.
Area of Science:
- Parasitology
- Drug Discovery
- Nanotechnology
Background:
- Acanthamoeba species are ubiquitous free-living amoebae causing severe opportunistic infections.
- Current chemotherapeutic agents show limited efficacy in reducing morbidity and mortality rates of Acanthamoeba infections.
- Drug discovery targeting molecular pathways offers a promising approach for novel treatments.
Purpose of the Study:
- To highlight the potential of azole compounds in targeting ergosterol for amoebicidal activity.
- To explore the repurposing of azoles, known for antifungal properties, against Acanthamoeba infections.
- To propose a novel strategy using synthetic azole libraries and nanoparticle conjugation for treating Acanthamoeba.
Main Methods:
- Reviewing the mechanism of azole action in inhibiting ergosterol biosynthesis.
- Examining the shared sterol pathway between Acanthamoeba and fungi.
- Investigating nanotechnology-based methods for enhancing azole drug delivery.
Main Results:
- Azoles effectively inhibit ergosterol biosynthesis, a crucial component of the Acanthamoeba cell membrane.
- Ergosterol is a key target for developing amoebicidal activity.
- Nanoparticle conjugation can significantly improve the pharmacokinetic properties and therapeutic index of azole drugs.
Conclusions:
- Targeting Acanthamoeba ergosterol with azole compounds presents a viable strategy for amoebicidal activity.
- Synthetic azole libraries and nanoparticle-conjugated azoles offer a novel therapeutic approach for Acanthamoeba infections.
- This review proposes a first-time strategy combining azoles and nanotechnology for treating Acanthamoeba.
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