Cell Adhesion Molecules Affected by Ionizing Radiation and Estrogen in an Experimental Breast Cancer Model
Gloria M Calaf1, Leodan A Crispin1, Juan P Muñoz1
1Instituto de Alta Investigación, Universidad de Tarapacá, Arica 1000000, Chile.
Abstract:
Cancer develops in a multi-step process where environmental carcinogenic exposure is a primary etiological component, and where cell-cell communication governs the biological activities of tissues. Identifying the molecular genes that regulate this process is essential to targeting metastatic breast cancer. Ionizing radiation can modify and damage DNA, RNA, and cell membrane components such as lipids and proteins by direct ionization. Comparing differential gene expression can help to determine the effect of radiation and estrogens on cell adhesion. An in vitro experimental breast cancer model was developed by exposure of the immortalized human breast epithelial cell line MCF-10F to low doses of high linear energy transfer α particle radiation and subsequent growth in the presence of 17β-estradiol. The MCF-10F cell line was analyzed in different stages of transformation that showed gradual phenotypic changes including altered morphology, increase in cell proliferation relative to the control, anchorage-independent growth, and invasive capability before becoming tumorigenic in nude mice. This model was used to determine genes associated with cell adhesion and communication such as E-cadherin, the desmocollin 3, the gap junction protein alpha 1, the Integrin alpha 6, the Integrin beta 6, the Keratin 14, Keratin 16, Keratin 17, Keratin 6B, and the laminin beta 3. Results indicated that most genes had greater expression in the tumorigenic cell line Tumor2 derived from the athymic animal than the Alpha3, a non-tumorigenic cell line exposed only to radiation, indicating that altered expression levels of adhesion molecules depended on estrogen. There is a significant need for experimental model systems that facilitate the study of cell plasticity to assess the importance of estrogens in modulating the biology of cancer cells.
Insights
Estrogen influences gene expression in breast cancer cells exposed to radiation, affecting cell adhesion and communication. This study developed a model to understand these crucial molecular changes in cancer development.
Area of Science:
- Oncology
- Molecular Biology
- Environmental Health
Background:
- Cancer development involves multi-step processes influenced by environmental factors and cell communication.
- Identifying genes regulating metastatic breast cancer is crucial for targeted therapies.
- Ionizing radiation can damage cellular components, impacting DNA, RNA, and cell membranes.
Purpose of the Study:
- To investigate the effects of radiation and estrogens on cell adhesion and communication in breast cancer.
- To establish an in vitro experimental model for studying breast cancer progression.
- To identify key genes involved in cell adhesion and communication modulated by estrogen.
Main Methods:
- Developed an in vitro model using MCF-10F human breast epithelial cells exposed to alpha particle radiation and 17β-estradiol.
- Analyzed phenotypic changes including morphology, proliferation, anchorage-independent growth, and tumorigenicity.
- Compared differential gene expression of cell adhesion molecules between tumorigenic and non-tumorigenic cell lines.
Main Results:
- Phenotypic changes observed included altered morphology, increased proliferation, and invasive capabilities.
- Most studied cell adhesion and communication genes showed higher expression in the tumorigenic cell line (Tumor2) compared to the radiation-exposed non-tumorigenic line (Alpha3).
- Altered expression levels of adhesion molecules were dependent on estrogen presence.
Conclusions:
- Estrogen plays a significant role in modulating the expression of adhesion molecules in breast cancer cells.
- The developed experimental model facilitates the study of cell plasticity and estrogen's role in cancer biology.
- Further research is needed to fully understand estrogen's impact on cancer cell modulation.
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