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Published on: June 13, 2021
Overcoming Antifungal Resistance: A Histatin 5-Gated Nanodevice for On-Demand Surfactant Delivery against C. albicans
Miguel Reyes-Torres1, Francisco J Hicke1,2,3, Andrea Escudero1,2,4
1Instituto Interuniversitario de Investigación de Reconocimiento Molecular y Desarrollo Tecnológico (IDM) Universitat Politècnica de València, Universitat de València, Camino de Vera, s/n., Valencia46022, Spain.
Abstract:
The escalating incidence of fungal infections, coupled with the emergence of antifungal resistance, represents a formidable global public health challenge. Candida albicans is a common opportunistic fungus that causes life-threatening, widespread candidiasis, especially in immunocompromised patients. Conventional antifungals, including azoles, echinocandins, and polyenes, have some drawbacks, such as host toxicity and the rapid appearance of resistant fungal strains. To overcome these limitations, we engineered a stimuli-responsive gated antimicrobial nanoparticle using mesoporous silica nanoparticles, functionalized with the antimicrobial peptide histatin 5 (Hst5) and loaded with the surfactant (3-(methyl)-1-tetradecylimidazolium) [C14MIM]+. The nanoparticles exhibit potent antimicrobial activity against C. albicans, with minimum inhibitory concentration values comparable to current clinical antifungals. Crucially, the nanodevice exhibits a dual mechanism of action, causing membrane disruption and inducing reactive oxygen species generation, which effectively hinders the development of resistance. Furthermore, the nanoparticles display strong synergistic interactions with conventional antifungals, significantly enhancing their efficacy. In addition to its planktonic activity, the system effectively inhibits biofilm formation and demonstrates high biocompatibility with human dermal cell lines. Based on these results, the nanodevice is successfully incorporated into a wound dressing matrix, demonstrating its promising translational potential for the topical treatment of cutaneous candidiasis.
Insights
A novel nanoparticle combats drug-resistant fungal infections like Candida albicans. This nanodevice shows potent antimicrobial activity and synergy with existing drugs, offering new hope for treating candidiasis.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Infectious Diseases
Background:
- Rising fungal infections and antifungal resistance pose a global health threat.
- Candida albicans causes severe infections, particularly in immunocompromised individuals.
- Current antifungals have limitations including toxicity and resistance development.
Purpose of the Study:
- To engineer a stimuli-responsive nanoparticle for treating Candida albicans infections.
- To overcome limitations of conventional antifungal therapies.
- To develop a nanodevice with enhanced efficacy and reduced resistance potential.
Main Methods:
- Mesoporous silica nanoparticles functionalized with histatin 5 (Hst5) and loaded with [C14MIM]+ surfactant.
- Evaluation of antimicrobial activity against Candida albicans (MIC values).
- Assessment of dual mechanism of action (membrane disruption, ROS generation), synergy with conventional antifungals, and biocompatibility.
Main Results:
- Engineered nanoparticles demonstrated potent antimicrobial activity against Candida albicans, comparable to clinical antifungals.
- The nanodevice exhibited a dual mechanism of action, hindering resistance development.
- Nanoparticles showed synergistic effects with conventional antifungals, enhanced efficacy, inhibited biofilm formation, and were biocompatible.
Conclusions:
- The developed nanodevice offers a promising strategy against drug-resistant fungal infections.
- Its dual action and synergistic potential represent a significant advancement in antifungal therapy.
- Successful incorporation into a wound dressing highlights its translational potential for cutaneous candidiasis treatment.
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