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A Potential 3-in-1 Combined AntiSARS-CoV-2 Therapy Using Pulmonary MIL-100(Fe) Formulation
Beatrice Fodor1,2, Inés Álvarez-Miguel1, Catalina Biglione1
1Advanced Porous Materials Unit, IMDEA Energy, Ramón de la Sagra 3, Móstoles-Madrid, 28935, Spain.
Advanced Healthcare Materials
|February 5, 2025
Summary
This study introduces a novel 3-in-1 nanomedicine using MIL-100(Fe) metal-organic frameworks (MOFs) for pulmonary COVID-19 treatment. The MOF-based therapy demonstrated significant antiviral effects with good safety, paving the way for future clinical trials.
Area of Science:
- Nanomedicine
- Materials Science
- Infectious Diseases
Background:
- The COVID-19 pandemic highlighted critical gaps in global health surveillance and the urgent need for effective antiviral treatments.
- Metal-organic frameworks (MOFs) show promise as drug delivery platforms, but their application in antiviral therapies remains underexplored.
- Existing research on MOFs primarily focuses on sensing applications, with limited exploration in treating infectious diseases.
Purpose of the Study:
- To develop and evaluate a novel, combined 3-in-1 pulmonary multitherapy for COVID-19 using MIL-100(Fe) nanoparticles.
- To investigate the intrinsic antiviral properties of MIL-100(Fe) MOFs combined with favipiravir and heparin for enhanced efficacy.
- To assess the safety, biodistribution, and pulmonary targeting of a mannitol-based microsphere formulation of the MOF nanomedicine.
Main Methods:
- Fabrication of mesoporous iron(III) carboxylate MIL-100(Fe) nanoparticles loaded with favipiravir and surface-functionalized with heparin.
- In vitro assessment of antiviral activity against a COVID-19 infection model, evaluating cellular viability.
- Development of a pulmonary formulation using mannitol-based microspheres and in vivo testing in mice for safety and biodistribution studies.
Main Results:
- The developed MIL-100(Fe)-based nanomedicine demonstrated significant antiviral activity against COVID-19 infection, achieving approximately 70% inhibition while maintaining cellular viability.
- The pulmonary formulation exhibited favorable safety profiles in mice, with no significant adverse effects observed.
- Biodistribution studies confirmed successful delivery to the deep lungs, indicating a reduced immunological response compared to control groups.
Conclusions:
- The novel MIL-100(Fe)-based nanomedicine offers a promising 3-in-1 pulmonary multitherapy for COVID-19 with significant antiviral efficacy and a good safety profile.
- The successful pulmonary delivery and reduced immunological response highlight the potential of customized MOF platforms for challenging infectious and pulmonary diseases.
- These findings support further preclinical and clinical investigations for advanced therapeutic MOF applications in respiratory infections.
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