Development of a drug delivering round window niche implant for cochlear pharmacotherapy

Drug Deliv. 2024 Dec;31(1):2392755. doi: 10.1080/10717544.2024.2392755. Epub 2024 Aug 21.

Abstract

Background: There exists an unfulfilled requirement for effective cochlear pharmacotherapy. Controlled local drug delivery could lead to effective bioavailability. The round window niche (RWN), a cavity in the middle ear, is connected to the cochlea via a membrane through which drug can diffuse. We are developing individualized drug-eluting RWN implants (RNIs). To test their effectiveness in guinea pigs, a commonly used model in cochlear pharmacology studies, it is first necessary to develop guinea pig RNIs (GP-RNI).

Methods: Since guinea pigs do not have a RWN such as it is present in humans and to reduce the variables in in vivo studies, a one-size-fits-all GP-RNI model was designed using 12 data sets of Dunkin-Hartley guinea pigs. The model was 3D-printed using silicone. The accuracy and precision of printing, distribution of the sample ingredient dexamethasone (DEX), biocompatibility, bio-efficacy, implantability and drug release were tested in vitro. The GP-RNI efficacy was validated in cochlear implant-traumatized guinea pigs in vivo.

Results: The 3D-printed GP-RNI was precise, accurate and fitted in all tested guinea pig RWNs. DEX was homogeneously included in the silicone. The GP-RNI containing 1% DEX was biocompatible, bio-effective and showed a two-phase and sustained DEX release in vitro, while it reduced fibrous tissue growth around the cochlear implant in vivo.

Conclusions: We developed a GP-RNI that can be used for precise inner ear drug delivery in guinea pigs, providing a reliable platform for testing the RNI's safety and efficacy, with potential implications for future clinical translation.

Keywords: 3D printing; Guinea pig; Local inner ear therapy; drug delivery; round window niche implant.

MeSH terms

  • Animals
  • Cochlea / drug effects
  • Cochlear Implants*
  • Dexamethasone* / administration & dosage
  • Dexamethasone* / pharmacokinetics
  • Dexamethasone* / pharmacology
  • Drug Delivery Systems* / methods
  • Drug Liberation
  • Guinea Pigs
  • Printing, Three-Dimensional
  • Round Window, Ear* / drug effects
  • Round Window, Ear* / metabolism

Substances

  • Dexamethasone

Grants and funding

This study was funded by the Federal Ministry of Education and Research of Germany (BMBF), ‘RESPONSE – Partnership for Innovation in Implant Technology’ in the program ‘Zwanzig20 – Partnership for Innovation’, Project ID [03ZZ0928L]. The first author is funded by the China Scholarship Council (CSC) from the Ministry of Education of P.R. China. This publication is funded by the Deutsche Forschungsgemeinschaft (DFG) as part of the ‘Open Access Publikationskosten’ program.