Adenoviral-mediated gene therapy for thyroid carcinoma using thymidine kinase controlled by thyroglobulin promoter

R Zhang1, F H Straus, L J DeGroot

  • 1Department of Medicine, The University of Chicago, Illinois 60637, USA.

Insights

Gene therapy using an adenovirus carrying the thymidine kinase (TK) gene under a thyroid-specific promoter effectively killed thyroid cancer cells. This targeted approach demonstrated minimal toxicity, showing promise for treating thyroglobulin-producing cancers.

Area of Science:

  • Oncolytic Virotherapy
  • Gene Therapy
  • Molecular Oncology

Background:

  • Gene therapy aims to selectively eliminate cancer cells.
  • Adenovirus vectors are used for gene delivery.
  • Thyroglobulin (Tg) promoter offers tissue-specific gene expression.

Purpose of the Study:

  • To develop and evaluate a cell-specific oncolytic adenovirus for gene therapy.
  • To assess the efficacy and toxicity of a Tg promoter-driven thymidine kinase (TK) gene therapy vector.
  • To compare the cell-specific killing activity with a constitutively active CMV promoter.

Main Methods:

  • Constructed replication-defective adenoviruses: AdrTgtk (TK gene with rTg promoter) and AdCMVtk (TK gene with CMV promoter).
  • Utilized reporter gene adenoviruses (AdrTgLuc, AdCMVLuc) to assess promoter activity in various cell lines (FRTL-5, HepG2, etc.).
  • Evaluated cell-specific killing by infecting cells with AdrTgtk or AdCMVtk followed by ganciclovir (GCV) treatment.

Main Results:

  • The rTg promoter specifically drove gene expression in Tg-producing FRTL-5 cells, unlike the CMV promoter which showed activity in all cell lines.
  • Infection with AdrTgtk followed by GCV treatment resulted in >90% killing of FRTL-5 cells, with minimal effect on other cell lines.
  • AdCMVtk/GCV treatment caused significant cell death in all tested cell lines, indicating severe liver damage in vivo.
  • AdrTgtk/GCV treatment showed minimal in vivo toxicity, with no significant changes in serum transaminases or histology.

Conclusions:

  • The rTg promoter confers thyroid cell-specific TK gene expression and subsequent cancer cell killing.
  • Adenovirus-mediated TK gene transfer driven by the rTg promoter is a promising strategy for treating Tg-producing thyroid cancers.
  • This targeted gene therapy approach exhibits significant efficacy with low in vivo toxicity.

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