An immunocompetent, orthotopic mouse model of epithelial ovarian cancer utilizing tissue engineered tumor cell sheets

Ayumi Arauchi1, Chieh-Hsiang Yang, Sungpil Cho

  • 11 Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University , Tokyo, Japan .

Insights

A new ovarian cancer animal model using cultured cell sheets (CS) shows accelerated tumor growth and metastasis compared to injected cell suspensions (ICS). This CS model offers improved preclinical accuracy for ovarian cancer drug testing.

Area of Science:

  • Oncology
  • Preclinical Research
  • Animal Models

Background:

  • Preclinical ovarian cancer models often fail to predict clinical drug efficacy.
  • Improved models are needed for accurate efficacy and toxicity testing, including pharmacokinetic and pharmacodynamic evaluations.

Purpose of the Study:

  • To develop and characterize a novel animal model for epithelial ovarian cancer (EOC).
  • To compare tumor development and characteristics between two inoculation methods: injected cell suspensions (ICS) and cultured cell sheets (CS).

Main Methods:

  • Murine ID8 EOC cells were administered as ICS or CS into the ovarian bursa of female C57BL/6 mice.
  • Tumor volumes and ovarian weights were evaluated at 8 and 12 weeks post-engraftment.

Main Results:

  • Cell sheet (CS) derived tumors showed significantly accelerated growth compared to injected cell suspension (ICS) derived tumors at 12 weeks (p=0.0112).
  • Ovarian weights were significantly higher in CS models at both 8 (p=0.00602) and 12 weeks (p=0.0008).
  • CS-derived tumors accurately replicated human EOC metastatic spread and histopathology.

Conclusions:

  • The novel CS ovarian cancer model demonstrates accelerated tumorigenesis and metastatic potential.
  • This model provides a more accurate preclinical platform for evaluating ovarian cancer therapies.