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An In Vitro System to Study Tumor Dormancy and the Switch to Metastatic Growth
Published on: August 11, 2011
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.
Abstract:
To improve the diagnosis and treatment of cancer, an increased understanding of the molecular and cellular changes that regulate metastatic ability is required. We have recently demonstrated a prostate cancer metastasis-suppressor activity encoded by a discontinuous approximately 70-cM region of human chromosome. The presence of this region suppresses the spontaneous metastatic ability of AT6.1 rat prostatic cancer cells by greater than 30-fold (M. A. Chekmareva et al., Prostate, 33: 271-280, 1997). Interestingly, a number of potentially important genes which have been mapped to human chromosome 17, including TP53, NM23, and BRCA1, are not retained (M. A. Chekmareva et al., cited above) or are not expressed in these microcell hybrids (B. A. Yoshida et al., In Vivo, in press), which suggests the presence of a novel metastasis-suppressor gene(s) or novel function of a known gene(s) encoded by this region(s). We hypothesize that identification of the "step" in the metastatic cascade that is inhibited by the presence of the approximately 70-cM metastasis-suppressor region will facilitate the identification of candidate metastasis-suppressor genes. For a cancer cell to metastasize, it must escape from the primary tumor, enter the circulation, arrest in the microcirculation, extravasate into a tissue compartment, and grow. This suppression of spontaneous macroscopic lung metastases could be due to the inhibition of a number of steps within this cascade. Results of the current study demonstrate that AT6.1 cells containing the approximately 70-cM region (AT6.1-17-4 cells) escape from the primary tumor and arrest in the lung but are growth-inhibited unless the metastasis-suppressor region is lost. This growth inhibition seems to result from an effect of one or more genes at the metastatic site and not from a circulating angiogenesis inhibitor. Our findings suggest that the approximately 70-cM region of human chromosome 17 may encode a gene(s) that regulates the "dormancy" of AT6.1-17-4 micrometastases.
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.
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