Functional delivery of DNAzyme with iron oxide nanoparticles for hepatitis C virus gene knockdown. Other Scholarly Work

Ryoo, Soo-Ryoon, Jang, Hongje, Kim, Ki-Sun et al. (2012). Functional delivery of DNAzyme with iron oxide nanoparticles for hepatitis C virus gene knockdown. . BIOMATERIALS, 33(9), 2754-2761. 10.1016/j.biomaterials.2011.12.015

cited authors

  • Ryoo, Soo-Ryoon; Jang, Hongje; Kim, Ki-Sun; Lee, Bokhui; Kim, Kyung Bo; Kim, Young-Kwan; Yeo, Woon-Seok; Lee, Younghoon; Kim, Dong-Eun; Min, Dal-Hee

authors

abstract

  • DNAzyme is an attractive therapeutic oligonucleotide which enables cleavage of mRNA in a sequence-specific manner and thus, silencing target gene. A particularly important challenge in achieving the successful down-regulation of gene expression is to efficiently deliver DNAzymes to disease sites and cells. Here, we report the nanoparticle-assisted functional delivery of therapeutic DNAzyme for the treatment of hepatitis C by inducing knockdown of hepatitis C virus (HCV) gene, NS3. HCV NS3 gene encodes helicase and protease which are essential for the virus replication. The nanocomplex showed efficient NS3 knockdown while not evoking undesired immune responses or notable cytotoxicity. We also demonstrated the DNAzyme conjugated nanoparticle system could be applicable in vivo by showing the accumulation of the nanoparticles in liver, and more specifically, in hepatocytes. We believe that the present work is a successful demonstration of effective, functional, non-immunostimulatory DNAzyme delivery system based on inorganic nanoparticles with high potential for further therapeutic application of DNAzyme in the treatment of hepatitis C.

publication date

  • March 1, 2012

published in

keywords

  • Animals
  • Base Sequence
  • Cell Line, Tumor
  • DNA, Catalytic
  • Ferric Compounds
  • Gene Knockdown Techniques
  • Gene Transfer Techniques
  • Hepacivirus
  • Hepatocytes
  • Humans
  • Magnetite Nanoparticles
  • Mice
  • Mice, Inbred C57BL
  • Mice, Nude
  • Molecular Sequence Data
  • Replicon
  • Tissue Distribution
  • Viral Nonstructural Proteins

Digital Object Identifier (DOI)

Medium

  • Print-Electronic

start page

  • 2754

end page

  • 2761

volume

  • 33

issue

  • 9