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Published on: June 12, 2018
DNA microarrays identification of primary and secondary target genes regulated by p53
K Kannan1, N Amariglio, G Rechavi
1Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
The transcriptional program regulated by the tumor suppressor p53 was analysed using oligonucleotide microarrays. A human lung cancer cell line that expresses the temperature sensitive murine p53 was utilized to quantitate mRNA levels of various genes at different time points after shifting the temperature to 32 degrees C. Inhibition of protein synthesis by cycloheximide (CHX) was used to distinguish between primary and secondary target genes regulated by p53. In the absence of CHX, 259 and 125 genes were up or down-regulated respectively; only 38 and 24 of these genes were up and down-regulated by p53 also in the presence of CHX and are considered primary targets in this cell line. Cluster analysis of these data using the super paramagnetic clustering (SPC) algorithm demonstrate that the primary genes can be distinguished as a single cluster among a large pool of p53 regulated genes. This procedure identified additional genes that co-cluster with the primary targets and can also be classified as such genes. In addition to cell cycle (e.g. p21, TGF-beta, Cyclin E) and apoptosis (e.g. Fas, Bak, IAP) related genes, the primary targets of p53 include genes involved in many aspects of cell function, including cell adhesion (e.g. Thymosin, Smoothelin), signaling (e.g. H-Ras, Diacylglycerol kinase), transcription (e.g. ATF3, LISCH7), neuronal growth (e.g. Ninjurin, NSCL2) and DNA repair (e.g. BTG2, DDB2). The results suggest that p53 activates concerted opposing signals and exerts its effect through a diverse network of transcriptional changes that collectively alter the cell phenotype in response to stress.
Insights
The tumor suppressor p53 regulates numerous genes, including primary targets involved in cell cycle, apoptosis, and DNA repair. These transcriptional changes collectively alter cell phenotype in response to stress.
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- The tumor suppressor protein p53 plays a critical role in cellular responses to stress.
- Understanding the transcriptional targets of p53 is crucial for deciphering its tumor-suppressive functions.
Purpose of the Study:
- To comprehensively analyze the transcriptional program regulated by p53.
- To distinguish between primary and secondary target genes of p53.
Main Methods:
- Oligonucleotide microarrays were used to quantify mRNA levels in a human lung cancer cell line expressing temperature-sensitive murine p53.
- Cycloheximide (CHX) was employed to inhibit protein synthesis, aiding in the identification of primary p53 targets.
- Super paramagnetic clustering (SPC) algorithm was utilized for data analysis and gene clustering.
Main Results:
- In the absence of CHX, 259 and 125 genes were up- and down-regulated, respectively. In the presence of CHX, only 38 and 24 genes were identified as primary up- and down-regulated targets.
- Cluster analysis successfully distinguished primary p53 target genes from other regulated genes.
- Primary targets identified are involved in diverse cellular functions including cell cycle, apoptosis, cell adhesion, signaling, transcription, neuronal growth, and DNA repair.
Conclusions:
- p53 regulates a broad network of genes involved in various cellular processes.
- Primary p53 targets orchestrate opposing signals, collectively modifying cell phenotype under stress conditions.
- This study provides a detailed map of p53 transcriptional targets, enhancing our understanding of its role in cancer and cellular stress response.
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