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Gelatin content governs hydration induced structural changes in silica-gelatin hybrid aerogels - Implications in drug delivery.
Kéri, Mónika; Forgács, Attila; Papp, Vanda; Bányai, István; Veres, Péter; Len, Adél; Dudás, Zoltán; Fábián, István; Kalmár, József.
Affiliation
  • Kéri M; Department of Physical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary.
  • Forgács A; Department of Inorganic and Analytical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary; MTA-DE Redox and Homogeneous Catalytic Reaction Mechanisms Research Group, Egyetem tér 1, H-4032 Hungary.
  • Papp V; Department of Physical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary; Department of Inorganic and Analytical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary.
  • Bányai I; Department of Physical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary.
  • Veres P; Department of Inorganic and Analytical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary.
  • Len A; Nuclear Analysis and Radiography Department, Centre for Energy Research, Hungarian Academy of Sciences, Konkoly-Thege Miklós út 29-33, Budapest, H-1121 Hungary.
  • Dudás Z; Neutron Spectroscopy Department, Wigner Research Centre for Physics, Hungarian Academy of Sciences, Konkoly-Thege Miklós út 29-33, Budapest, H-1121 Hungary.
  • Fábián I; Department of Inorganic and Analytical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary; MTA-DE Redox and Homogeneous Catalytic Reaction Mechanisms Research Group, Egyetem tér 1, H-4032 Hungary.
  • Kalmár J; Department of Inorganic and Analytical Chemistry, University of Debrecen, Egyetem tér 1, H-4032 Hungary; MTA-DE Redox and Homogeneous Catalytic Reaction Mechanisms Research Group, Egyetem tér 1, H-4032 Hungary. Electronic address: kalmar.jozsef@science.unideb.hu.
Acta Biomater ; 105: 131-145, 2020 03 15.
Article in En | MEDLINE | ID: mdl-31953196
ABSTRACT
Silica-gelatin hybrid aerogels of varying gelatin content (from 4 wt.% to 24 wt.%) can be conveniently impregnated with hydrophobic active agents (e.g. ibuprofen, ketoprofen) in supercritical CO2 and used as drug delivery systems. Contrast variation neutron scattering (SANS) experiments show the molecular level hybridization of the silica and the gelatin components of the aerogel carriers. The active agents are amorphous, and homogeneously dispersed in these porous, hybrid matrices. Importantly, both fast and retarded drug release can be achieved with silica-gelatin hybrid aerogels, and the kinetics of drug release is governed by the gelatin content of the carrier. In this paper, for the first time, a molecular level explanation is given for the strong correlation between the composition and the functionality of a family of aerogel based drug delivery systems. Characterization of the wet aerogels by SANS and by NMR diffusiometry, cryoporometry and relaxometry revealed that the different hydration mechanisms of the aerogels are responsible for the broad spectrum of release kinetics. Low-gelatin (4-11 wt.%) aerogels retain their open-porous structure in water, thus rapid matrix erosion dictates fast drug release from these carriers. In contrast to this, wet aerogels of high gelatin content (18-24 wt.%) show well pronounced hydrogel-like characteristics, and a wide gradual transition zone forms in the solid-liquid interface. The extensive swelling of the high-gelatin hybrid backbone results in the collapse of the open porous structure, that limits mass transport towards the release medium, resulting in slower, diffusion controlled drug release. STATEMENT OF

SIGNIFICANCE:

Developing new drug delivery systems is a key aspect of pharmaceutical research. Supercritically dried mesoporous aerogels are ideal carriers for small molecular weight drugs due to their open porous structures and large specific surface areas. Hybrid silica-gelatin aerogels can display both fast and retarded drug release properties based on the gelatin contents of their backbones. The structural characterization of the aerogels by SANS and by NMR diffusiometry, cryoporometry and relaxometry revealed that the different hydration mechanisms of the hybrid backbones are responsible for the broad spectrum of release kinetics. The molecular level understanding of the functionality of these hybrid inorganic-biopolymer drug delivery systems facilitates the realization of quality-by-design in this research field.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Water / Drug Delivery Systems / Silicon Dioxide / Gelatin / Gels Language: En Journal: Acta Biomater Year: 2020 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Water / Drug Delivery Systems / Silicon Dioxide / Gelatin / Gels Language: En Journal: Acta Biomater Year: 2020 Document type: Article