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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 and RAD9, the DNA Damage Response, and Regulation of Transcription Networks
Howard B Lieberman1,2, Sunil K Panigrahi1, Kevin M Hopkins1
1a Center for Radiological Research, Columbia University College of Physicians and Surgeons, New York, New York 10032; and.
Abstract:
The way cells respond to DNA damage is important since inefficient repair or misrepair of lesions can have deleterious consequences, including mutation, genomic instability, neurodegenerative disorders, premature aging, cancer or death. Whether damage occurs spontaneously as a byproduct of normal metabolic processes, or after exposure to exogenous agents, cells muster a coordinated, complex DNA damage response (DDR) to mitigate potential harmful effects. A variety of activities are involved to promote cell survival, and include DNA repair, DNA damage tolerance, as well as transient cell cycle arrest to provide time for repair before entry into critical cell cycle phases, an event that could be lethal if traversal occurs while damage is present. When such damage is prolonged or not repairable, senescence, apoptosis or autophagy is induced. One major level of DDR regulation occurs via the orchestrated transcriptional control of select sets of genes encoding proteins that mediate the response. p53 is a transcription factor that transactivates specific DDR downstream genes through binding DNA consensus sequences usually in or near target gene promoter regions. The profile of p53-regulated genes activated at any given time varies, and is dependent upon type of DNA damage or stress experienced, exact composition of the consensus DNA binding sequence, presence of other DNA binding proteins, as well as cell context. RAD9 is another protein critical for the response of cells to DNA damage, and can also selectively regulate gene transcription. The limited studies addressing the role of RAD9 in transcription regulation indicate that the protein transactivates at least one of its target genes, p21/waf1/cip1, by binding to DNA sequences demonstrated to be a p53 response element. NEIL1 is also regulated by RAD9 through a similar DNA sequence, though not yet directly verified as a bonafide p53 response element. These findings suggest a novel pathway whereby p53 and RAD9 control the DDR through a shared mechanism involving an overlapping network of downstream target genes. Details and unresolved questions about how these proteins coordinate or compete to execute the DDR through transcriptional reprogramming, as well as biological implications, are discussed.
Insights
Cells utilize the DNA damage response (DDR) to repair DNA lesions, preventing mutations and diseases. This study reveals a shared transcriptional mechanism between p53 and RAD9 proteins in regulating the DDR.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Cellular response to DNA damage is crucial for preventing mutations, genomic instability, and diseases like cancer.
- The DNA damage response (DDR) involves DNA repair, tolerance, cell cycle arrest, and, if damage is irreparable, senescence, apoptosis, or autophagy.
- Transcriptional control of DDR genes is a key regulatory mechanism, with transcription factors like p53 playing a central role.
Purpose of the Study:
- To investigate the transcriptional regulatory roles of p53 and RAD9 in the DNA damage response (DDR).
- To explore the potential shared mechanisms and overlapping target genes regulated by p53 and RAD9.
- To elucidate the coordination and competition between p53 and RAD9 in executing the DDR through transcriptional reprogramming.
Main Methods:
- Analysis of transcriptional regulation by p53 and RAD9.
- Identification of downstream target genes, including p21/waf1/cip1 and NEIL1.
- Investigation of DNA binding sequences and their role in gene transactivation.
Main Results:
- p53 transactivates specific DDR genes by binding to consensus DNA sequences.
- RAD9 also regulates gene transcription, including p21/waf1/cip1, via p53 response elements.
- NEIL1 is regulated by RAD9 through a similar DNA sequence, suggesting a shared regulatory pathway.
Conclusions:
- p53 and RAD9 share a common mechanism for controlling the DDR via an overlapping network of downstream target genes.
- This suggests a novel pathway where p53 and RAD9 coordinate or compete to orchestrate the DDR.
- Further research is needed to fully understand the biological implications of this shared transcriptional control in the DDR.
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