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Molecular and cellular responses to DNA damage in a murine pituitary adenoma cell line
1Department of Medicine, Mt. Sinai School of Medicine, New York, NY 10029, USA.
Abstract:
Loss of cell cycle control and the inability of the cell to repair DNA at cell cycle checkpoints results in the propagation of genetic lesions which ultimately leads to cancer. To further our understanding of these pathways in pituitary tumorigenesis, we have investigated the effects of DNA damage by gamma radiation in a murine pituitary adenoma (AtT20) cell line with attention to cell cycle checkpoint responses, the induction of apoptosis, and the expression of known regulators of these processes. Irradiated cells exhibited characteristic morphologic changes of apoptosis beginning at 24 h, which included cell shrinkage, chromatin condensation, and cytoplasmic vacuolization, yet the ability to exclude trypan blue was retained for several days. DNA fragmentation could be demonstrated by ethidium bromide staining beginning at 24 h post-irradiation. By propidium iodide staining and flow cytometry, irradiated cells demonstrated G1 and G2 arrest at 24 h, followed at 48 h by a shift to a sub-G1 position of the apoptotic cell population. The G1 arrest coincided with an induction of p53 protein by Western blot analysis which peaked at 4 h post-radiation and persisted beyond 48 h. Expression of c-myc in irradiated cells was found to progressively decrease at 12, 24, and 48 h. Basal expression of the bcl-2 gene in AtT20 cells was found to be 15-fold higher than in normal mouse pituitary by RNase protection assay. Bcl-2 mRNA and protein levels, however, remained unchanged at 24 and 48 h following gamma-irradiation, suggesting that apoptosis occurs independently of bcl-2 gene expression in these cells following this stimulus, as reported in other cell types. We conclude that AtT20 cells undergo G1 and G2 arrest following DNA damage and that a significant proportion of cells then undergo apoptosis. The G1 arrest at 24 h is concurrent with a strong induction of p53 protein, while c-myc expression progressively diminishes. Bcl-2 is highly expressed in this cell line. The absence of variation in bcl-2 expression during apoptosis could be related to its high basal level in these cells.
Insights
Gamma radiation induces cell cycle arrest and apoptosis in pituitary tumor cells. DNA damage triggers p53 protein induction and c-myc decrease, with apoptosis occurring independently of Bcl-2 expression.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Cell cycle control and DNA repair are critical for preventing genetic lesions and cancer development.
- Pituitary tumorigenesis involves complex cellular pathways that are not fully understood.
- Understanding these pathways is crucial for developing targeted cancer therapies.
Purpose of the Study:
- To investigate the effects of gamma radiation-induced DNA damage on a murine pituitary adenoma (AtT20) cell line.
- To analyze cell cycle checkpoint responses, apoptosis induction, and the expression of key regulatory proteins.
- To elucidate the role of p53, c-myc, and bcl-2 in DNA damage response pathways in pituitary cells.
Main Methods:
- Murine pituitary adenoma (AtT20) cells were exposed to gamma radiation.
- Morphological changes, DNA fragmentation (ethidium bromide staining), and cell cycle distribution (propidium iodide staining, flow cytometry) were assessed.
- Protein and mRNA expression levels of p53, c-myc, and bcl-2 were analyzed (Western blot, RNase protection assay).
Main Results:
- Irradiated AtT20 cells showed morphological signs of apoptosis and DNA fragmentation starting at 24 hours post-irradiation.
- Cells exhibited G1 and G2 cell cycle arrest at 24 hours, followed by a shift to sub-G1 (apoptotic population) at 48 hours.
- p53 protein was strongly induced post-irradiation, while c-myc expression progressively decreased.
- Bcl-2 gene expression remained unchanged, suggesting apoptosis occurred independently of Bcl-2 modulation in these cells.
Conclusions:
- AtT20 cells activate G1 and G2 cell cycle checkpoints in response to DNA damage.
- A significant portion of irradiated cells undergo apoptosis, characterized by p53 induction and c-myc downregulation.
- High basal Bcl-2 expression in AtT20 cells may account for its unchanged levels during radiation-induced apoptosis.