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Development of Magnetic Nanosystems with Potential for the Treatment of Inner Ear Pathologies.
Martin, Maria Julia; Montiel Schneider, María Gabriela; Paolillo, Giuliana; Sanchez, Francisco Homero; Lo Fiego, Marcos; Spitzmaul, Guillermo; Lassalle, Verónica.
Afiliación
  • Martin MJ; Universidad Nacional del Sur, Departamento de Biología, Universidad Nacional del Sur (CONICET-UNS), Av La Carrindanga km 7, 8000, Bahía Blanca, ARGENTINA.
  • Montiel Schneider MG; Universidad Nacional del Sur, Depto de Química, INQUISUR (CONICET-UNS), ARGENTINA.
  • Paolillo G; Universidad Nacional del Sur, Departamento de Biología, INIBIBB (CONICET-UNS), ARGENTINA.
  • Sanchez FH; Universidad Nacional de la Plata Facultad de Ciencias Exactas, Departamento de Física-IFLP-CONICET, ARGENTINA.
  • Lo Fiego M; Universidad Nacional del Sur, Depto de Química, INQUISUR (CONICET-UNS), ARGENTINA.
  • Spitzmaul G; Universidad Nacional del Sur, Departamento de Biología, INIBIBB (CONICET-UNS), ARGENTINA.
  • Lassalle V; Universidad Nacional del Sur Departamento de Ingenieria Quimica, Depto de Química, INQUISUR (CONICET-UNS), ARGENTINA.
ChemMedChem ; : e202400321, 2024 Aug 01.
Article en En | MEDLINE | ID: mdl-39087920
ABSTRACT
Hearing loss (HL) affects more than 5% of the global population, with projections indicating an impact of up to 50% on young individuals in the next years. HL treatments remain limited due to the inner ear's hermeticism. HL often involves inflammatory processes, underscoring the need for enhanced delivery of antiinflammatory agents to the inner ear. Our research focuses on the development of a directed therapy based on magnetic nanoparticles (MNPs). We previously synthesized biocompatible folic acid-coated iron oxide-core nanoparticles (MNPs@FA) as potential carriers for the anti-inflammatory Diclofenac (Dfc). This study aims to incorporate Dfc onto MNPs@FA to facilitate targeted drug delivery to the inner ear. Through optimizing the loading procedure, we achieved optimal loading capacity. Dfc release was studied in the simulated target fluid and the administration vehicle. Complete characterization is also shown. In vitro biocompatibility testing ensured the biosafety of the resulting formulation. Subsequent ex vivo targeting assays on murine cochleae validated the nanosystems' ability to penetrate the round window membrane, one of the main HL therapy barriers. These findings serve as validation before continuing to more complex in vivo studies. Together, the data here presented represent an advancement in addressing unmet medical needs in HL therapy.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: ChemMedChem / ChemMedChem (Internet) Asunto de la revista: FARMACOLOGIA / QUIMICA Año: 2024 Tipo del documento: Article País de afiliación: Argentina Pais de publicación: Alemania

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: ChemMedChem / ChemMedChem (Internet) Asunto de la revista: FARMACOLOGIA / QUIMICA Año: 2024 Tipo del documento: Article País de afiliación: Argentina Pais de publicación: Alemania