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.

Radiation Research
|February 1, 2017
PubMed

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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