BRCA1 regulates HMGA2 levels in the Swan71 trophoblast cell line
Rachel C West1, Jennifer E Russ1, Gerrit J Bouma1
1Department of Biomedical Sciences, Animal Reproduction and Biotechnology Laboratory, Colorado State University, Fort Collins, Colorado.
Abstract:
During early placental development, tumor suppressors and oncogenes work synergistically to regulate cell proliferation and differentiation in a restrained manner compared with the uncontrollable growth in cancer. One example of this partnership is the regulation of the oncofetal protein HMGA2 by BRCA1. BRCA1 forms a repressor complex with ZNF350 and CtIP to bind to the promoter of HMGA2, preventing transcription. Chromatin immunoprecipitation determined BRCA1 forms this repressor complex in human trophoblast cells, suggesting a role in the placenta. Furthermore, miR-182 has been shown to target BRCA1 mRNA in ovarian cancer cells, blocking the formation of the BRCA1 repressor complex and allowing increased transcription of HMGA2. miR-182 was one of the first miRNAs described as elevated in the serum and placentas of preeclamptic women. Therefore, we hypothesized that BRCA1 is essential for normal trophoblast cell development. We used CRISPR-Cas9 genome editing and miR-182 overexpression to decrease BRCA1 protein in the Swan71 cell line. HMGA2 was significantly increased in the BRCA1 KO and miR-182 overexpressing cells compared to controls. We also determined that BRCA1 repressor complex binding to HMGA2 was significantly reduced in BRCA1 KO and miR-182 overexpressing cells compared with controls, leading us to conclude that increased HMGA2 was because of decreased binding of the BRCA1 repressor complex. Finally, we found that the caspase activity was significantly higher in BRCA1 KO and miR-182 overexpressing cells suggesting an increased amount of apoptosis. These data suggest that BRCA1 is an important regulator of the oncofetal protein HMGA2 and promotes cell survival in human placental cells.
Insights
BRCA1 (Breast cancer gene 1) protein is crucial for placental cell survival by regulating HMGA2 (High-mobility group AT-high-mobility group protein 2). Its reduction increases HMGA2 and apoptosis, impacting trophoblast development.
Area of Science:
- Reproductive biology
- Molecular oncology
- Cellular mechanisms in placental development
Background:
- Tumor suppressors and oncogenes balance cell growth during placental development.
- BRCA1 represses the oncofetal protein HMGA2 via a repressor complex.
- miR-182 targets BRCA1, potentially increasing HMGA2 and linked to preeclampsia.
Purpose of the Study:
- To investigate the role of BRCA1 in human trophoblast cell development.
- To determine the effect of decreased BRCA1 on HMGA2 expression and apoptosis.
- To explore the functional relationship between BRCA1, miR-182, and HMGA2 in placental cells.
Main Methods:
- CRISPR-Cas9 genome editing to create BRCA1 knockout (KO) cells.
- Overexpression of miR-182 in Swan71 trophoblast cells.
- Chromatin immunoprecipitation to assess repressor complex binding to HMGA2 promoter.
- Measurement of caspase activity to quantify apoptosis.
Main Results:
- BRCA1 KO and miR-182 overexpression significantly increased HMGA2 levels.
- Decreased binding of the BRCA1 repressor complex to the HMGA2 promoter was observed.
- Caspase activity was significantly higher in BRCA1-deficient cells, indicating increased apoptosis.
Conclusions:
- BRCA1 is essential for regulating HMGA2 expression in human placental cells.
- Reduced BRCA1 function leads to increased HMGA2 and apoptosis.
- BRCA1 promotes cell survival in trophoblast development, and its dysregulation may have implications for pregnancy complications.
Related Concept Videos
pH Regulation in Cells
Cytosolic pH
Under physiological conditions, the cytosolic pH is slightly more acidic than the extracellular pH. However, cells must prevent further acidification of their cytosol to...
Regulated Protein Degradation
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Positive Regulator Molecules
Epigenetic Regulation
GTPases and their Regulation
Large G-proteins,...
Master Transcription Regulators


