4.6 Article

Microencapsulated Isoniazid-Loaded Metal-Organic Frameworks for Pulmonary Administration of Antituberculosis Drugs

期刊

MOLECULES
卷 26, 期 21, 页码 -

出版社

MDPI
DOI: 10.3390/molecules26216408

关键词

A549 cells; isoniazid; mannitol; metal-organic frameworks; microencapsulation; pulmonary administration; tuberculosis

资金

  1. I+D+I Grant
  2. Instituto de Salud Carlos III of Spain (Strategic Health Action) [FIS PS09/00816]
  3. Xunta de Galicia (Competitive Reference Groups)
  4. Regional Madrid funding
  5. Multifunctional Metallodrugs in Diagnosis and Therapy Network (MICIU)
  6. H + MOF Ramon Areces project
  7. Spanish Ramon y Cajal Programme

向作者/读者索取更多资源

Tuberculosis is a deadly infectious disease that is difficult to treat due to long medication periods and drug resistance. A recent study has proposed a micro-nanosystem as a potential solution for pulmonary TB treatment.
Tuberculosis (TB) is an infectious disease that causes a great number of deaths in the world (1.5 million people per year). This disease is currently treated by administering high doses of various oral anti-TB drugs for prolonged periods (up to 2 years). While this regimen is normally effective when taken as prescribed, many people with TB experience difficulties in complying with their medication schedule. Furthermore, the oral administration of standard anti-TB drugs causes severe side effects and widespread resistances. Recently, we proposed an original platform for pulmonary TB treatment consisting of mannitol microspheres (Ma MS) containing iron (III) trimesate metal-organic framework (MOF) MIL-100 nanoparticles (NPs). In the present work, we loaded this system with the first-line anti-TB drug isoniazid (INH) and evaluated both the viability and safety of the drug vehicle components, as well as the cell internalization of the formulation in alveolar A549 cells. Results show that INH-loaded MOF (INH@MIL-100) NPs were efficiently microencapsulated in Ma MS, which displayed suitable aerodynamic characteristics for pulmonary administration and non-toxicity. MIL-100 and INH@MIL-100 NPs were efficiently internalized by A549 cells, mainly localized in the cytoplasm. In conclusion, the proposed micro-nanosystem is a good candidate for the pulmonary administration of anti-TB drugs.

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