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Pathway and morphological transformation of liposome nanocarriers after release from a novel sustained inner-ear delivery system

  • Jing Zou*
  • , Rohit Sood
  • , Ya Zhang
  • , Paavo K J Kinnunen
  • , Ilmari Pyykkö
  • *Corresponding author for this work
    • Second Military Medical University
    • Tampere University

    Research output: Contribution to journalArticleScientificpeer-review

    31 Citations (Scopus)

    Abstract

    Aim: To validate a novel sustained delivery system of liposome nanocarriers for inner-ear therapy and to investigate the transport pathway for their delivery. Materials & methods: Liposome nanocarriers containing gadolinium-tetra-azacyclo-dodecane-tetra-acetic acid (LPS+Gd-DOTA) were developed for MRI tracking the in vitro release profile and for in vivo uptake studies. Results: Encapsulating Gd-DOTA did not modify the liposomes. The LPS+Gd-DOTA nanocarriers were slowly released from a miniature osmotic pump. The LPS+Gd-DOTA moved along the ossicular chain toward the oval window after an epitympanic injection, whereas they traveled directly to the round window after a mesotympanic injection. However, the round window membrane was the major pathway for the LPS+Gd-DOTA to enter the inner ear. LPS+Gd-DOTA were visualized on both sides of the cochlea within 6 days of in vivo delivery via the osmotic pump. Discussion: The novel sustained inner-ear delivery system induced liposome nanocarriers into the inner ear efficiently without causing obvious adverse effect. There is the potential of using the system to administrate therapeutics in treating inner-ear diseases in the clinic.

    Original languageEnglish
    Pages (from-to)2143-2155
    Number of pages13
    JournalNanomedicine
    Volume9
    Issue number14
    DOIs
    Publication statusPublished - 1 Oct 2014
    MoE publication typeA1 Journal article-refereed

    Keywords

    • Animal
    • Drug delivery
    • Inner ear
    • Liposome
    • Minimally invasive technology
    • MRI
    • Nanovector
    • Osmotic pump
    • Oval window
    • Round window

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