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DNA microarray analysis of genes involved in p53 mediated apoptosis: activation of Apaf-1
K Kannan1, N Kaminski, G Rechavi
1Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
The transcription regulation activity of p53 controls cellular response to a variety of stress conditions, leading to growth arrest and apoptosis. Despite major progress in the understanding of the global effects of p53 on cellular function the pathways by which p53 activates apoptosis are not well defined. To study genes activated in the p53 induced apoptotic process, we used a mouse myeloid leukemic cell line (LTR6) expressing the temperature-sensitive p53 (val135) that undergoes apoptosis upon shifting the temperature to 32 degrees C. We analysed the gene expression profile at different time points after p53 activation using oligonucleotide microarray capable of detecting approximately 11,000 mRNA species. Cluster analysis of the p53-regulated genes indicate a pattern of early and late induced sets of genes. We show that 91 and 44 genes were substantially up and down regulated, respectively, by p53. Functional classification of these genes reveals that they are involved in many aspects of cell function, in addition to growth arrest and apoptosis. Comparison of p53 regulated gene expression profile in LTR6 cells to that of a human lung cancer cell line (H1299) that undergoes growth arrest but not apoptosis demonstrates that only 15% of the genes are common to both systems. This observation supports the presence of two distinct transcriptional programs in response to p53 signaling, one leading to growth arrest and the other to apoptosis. The proapoptotic genes induced only in LTR6 cells like Apaf-1, Sumo-1 and gelsolin among others may suggest a possible explanation for apoptosis in LTR6 cells.
Insights
The tumor suppressor p53 protein regulates cell death. This study identified distinct gene sets activated by p53, revealing specific pathways involved in apoptosis versus growth arrest.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The tumor suppressor p53 protein is crucial for cellular stress responses, including growth arrest and apoptosis.
- While p53's global cellular effects are known, the precise pathways it uses to trigger apoptosis remain unclear.
Purpose of the Study:
- To identify genes regulated by p53 during apoptosis.
- To differentiate gene expression patterns between p53-induced apoptosis and growth arrest.
Main Methods:
- Utilized a temperature-sensitive p53 (val135) mouse myeloid leukemic cell line (LTR6) for apoptosis induction.
- Analyzed gene expression profiles using oligonucleotide microarrays (approx. 11,000 mRNA species).
- Compared gene expression in LTR6 cells with a human lung cancer cell line (H1299) exhibiting only growth arrest.
Main Results:
- p53 activation in LTR6 cells resulted in 91 upregulated and 44 downregulated genes.
- Functional classification revealed p53-regulated genes involved in diverse cellular functions beyond apoptosis and growth arrest.
- Only 15% of p53-regulated genes were common between LTR6 (apoptosis) and H1299 (growth arrest) cells, indicating distinct transcriptional programs.
Conclusions:
- p53 signaling activates distinct transcriptional programs, one leading to growth arrest and another to apoptosis.
- Specific proapoptotic genes, such as Apaf-1, Sumo-1, and gelsolin, were uniquely induced in the apoptotic LTR6 cell line, potentially explaining the apoptotic outcome.
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