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Transfection using hydroxyapatite nanoparticles in the inner ear via an intact round window membrane in chinchilla

  • Xuewen Wu
  • , Dalian Ding
  • , Haiyan Jiang
  • , Xiaowei Xing
  • , Suping Huang
  • , Hong Liu
  • , Zhedong Chen
  • , Hong Sun
  • Central South University
  • SUNY Buffalo

Research output: Contribution to journalArticlepeer-review

19 Scopus citations

Abstract

Hydroxyapatite nanoparticles (nHAT) are known to have excellent biocompatibility, and have attracted increasing attention as new candidates of nonviral vectors for gene therapy. In our previous studies, nHAT carrying a therapeutic gene and a reporter gene were successfully transfected into the spiral ganglion neurons in the inner ear of guinea pigs in vivo as well as in the cultured cell lines, although the transfection efficiencies were never higher than 30%. In this study, the surface modification of nHAT with polyethylenimine (PEI) was made (PEI-nHAT, diameter = 73.09 ± 27.32 nm) and a recombinant plasmid carrying enhanced green fluorescent protein (EGFP) gene and neurotrophin-3 (NT-3) gene was constructed as pEGFPC2-NT3. The PEI modified nHAT and the recombinant plasmid was then connected to form the nHAT-based vector-gene complex (PEI-nHAT-pEGFPC2- NT3). This complex was then placed onto the intact round window membranes of the chinchillas for inner ear transfection. Auditory brainstem response (ABR) was tested to evaluate auditory function. Green fluorescence of EGFP was observed using confocal microscopy 48 h after administering vector-gene complexes. There was no significant threshold shift in tone burst-evoked ABR at any tested frequency. Abundant, condensed green fluorescence was found in dark cells on both sides of the crista and around the macula of the utricle. Scattered EGFP signals were also detected in vestibular hair cells, some Schwann cells in the cochlear spiral ganglion region, some outer pillar cells in the organ of Corti, and a few cells in the stria vascularis. The density of green fluorescence-marked cells was obviously higher in the vestibular dark cell area than in other areas of the inner ear, suggesting that vestibular dark cells may have the ability to actively engulf the nHAT-based vector-gene complexes. Considering the high transfection efficiency in the vestibular system, PEI-nHAT may be a potential vector for gene therapy of inner ear diseases, especially vestibular disorders, and deserves further study.

Original languageEnglish
Article number708
JournalJournal of Nanoparticle Research
Volume14
Issue number1
DOIs
StatePublished - Jan 2012

Keywords

  • Gene therapy
  • Gene vector
  • Hydroxyapatite nanoparticles
  • Inner ear
  • Nanomedicine
  • Polyethylenimine
  • Round window membrane
  • Vestibular dark cell

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