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Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Compensatory Estrogen Signal Is Capable of DNA Repair in Antiestrogen-Responsive Cancer Cells via Activating
1National Institute of Oncology, Department of Molecular Pathology, H-1122, Ráth György Str. 7-9, Budapest, Hungary.
Abstract:
Cancer cells are embarrassed human cells exhibiting the remnants of same mechanisms for DNA stabilization like patients have in their healthy cells. Antiestrogens target the liganded activation of ERs, which is the principal means of genomic regulation in both patients and their tumors. The artificial blockade of liganded ER activation is an emergency situation promoting strong compensatory actions even in cancer cells. When tumor cells are capable of an appropriate upregulation of ER signaling resulting in DNA repair, a tumor response may be detected. In contrast, when ER signaling is completely inhibited, tumor cells show unrestrained proliferation, and tumor growth may be observed. The laboratory investigations of genomic mechanisms in antiestrogen-responsive and antiestrogen-unresponsive tumor cells have considerably enhanced our knowledge regarding the principal regulatory capacity of estrogen signaling. In antiestrogen-responsive tumor cells, a compensatory increased expression and liganded activation of estrogen receptors (ERs) result in an apoptotic death. Conversely, in antiestrogen resistant tumors exhibiting a complete blockade of liganded ER activation, a compensatory effort for unliganded ER activation is characteristic, conferred by the increased expression and activity of growth factor receptors. However, even extreme unliganded ER activation is incapable of DNA restoration when the liganded ER activation is completely blocked. Researchers mistakenly suspect even today that in tumors growing under antiestrogen treatment, the increased unliganded activation of estrogen receptor via activating mutations is an aggressive survival technique, whilst it is a compensatory effort against the blockade of liganded ER activation. The capacity of liganded ERs for genome modification in emergency states provides possibilities for estrogen/ER use in medical practice including cancer cure.
Insights
Cancer cells use DNA stabilization mechanisms similar to healthy cells. Antiestrogen treatments can paradoxically promote tumor growth by blocking estrogen receptor (ER) signaling, highlighting ER
Area of Science:
- Genomics and Molecular Biology
- Cancer Cell Biology
- Endocrinology
Background:
- Cancer cells retain DNA stabilization mechanisms found in healthy cells.
- Estrogen receptors (ERs) are crucial for genomic regulation in both patients and tumors.
- Antiestrogens disrupt liganded ER activation, triggering compensatory cellular responses.
Purpose of the Study:
- To investigate genomic mechanisms in antiestrogen-responsive and unresponsive tumor cells.
- To clarify the role of estrogen signaling in tumor response to antiestrogen therapy.
- To re-evaluate the interpretation of estrogen receptor activation under antiestrogen treatment.
Main Methods:
- Laboratory investigations of genomic mechanisms.
- Analysis of gene expression and receptor activity in tumor cells.
- Comparative study of antiestrogen-responsive and resistant tumor models.
Main Results:
- In antiestrogen-responsive cells, increased ER signaling leads to apoptosis.
- Antiestrogen resistance involves compensatory unliganded ER activation via growth factor receptors.
- Complete blockade of liganded ER activation prevents DNA repair, even with compensatory mechanisms.
Conclusions:
- Tumor cell proliferation under antiestrogen treatment can result from ER signaling blockade.
- Increased unliganded ER activation is a compensatory response, not an aggressive survival tactic.
- Liganded ERs' genome modification capacity offers potential for estrogen-based cancer therapies.
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