Chromosome 17-mediated dormancy of AT6.1 prostate cancer micrometastases

M A Chekmareva1, M M Kadkhodaian, C M Hollowell

  • 1Department of Surgery, University of Chicago, Illinois 60637, USA.

Cancer Research
|November 11, 1998
PubMed

Insights

A specific region on human chromosome 17 suppresses prostate cancer metastasis by inhibiting tumor cell growth at the metastatic site. This suggests a novel gene(s) regulating cancer cell dormancy.

Area of Science:

  • Oncology
  • Genetics
  • Cancer Metastasis

Background:

  • Understanding molecular regulators of cancer metastasis is crucial for improving cancer treatment.
  • A ~70-cM region of human chromosome 17 has demonstrated metastasis-suppressor activity in rat prostate cancer cells.
  • Known metastasis-related genes on chromosome 17 are not retained or expressed in these cells, suggesting novel gene(s).

Purpose of the Study:

  • To identify the specific step in the metastatic cascade inhibited by the chromosome 17 metastasis-suppressor region.
  • To facilitate the identification of candidate metastasis-suppressor genes within this region.

Main Methods:

  • Utilized microcell hybrids of AT6.1 rat prostatic cancer cells containing the ~70-cM region of human chromosome 17.
  • Assessed the metastatic cascade steps: primary tumor escape, circulation, lung arrest, extravasation, and growth.
  • Investigated the mechanism of growth inhibition at the metastatic site.

Main Results:

  • AT6.1 cells with the ~70-cM region (AT6.1-17-4) escaped the primary tumor and arrested in the lung.
  • These cells exhibited significant growth inhibition at the lung metastatic site unless the suppressor region was lost.
  • The growth inhibition appeared to be mediated by genes at the metastatic site, not a circulating factor.

Conclusions:

  • The ~70-cM region of human chromosome 17 likely encodes gene(s) that regulate the dormancy of micrometastases.
  • These findings suggest a novel mechanism of metastasis suppression involving the control of tumor cell growth at secondary sites.
  • Identification of these genes could lead to new therapeutic strategies for preventing metastatic progression.