The DNA binding domain of p53 is sufficient to trigger a potent apoptotic response at the mitochondria

Karina J Matissek1, Mohanad Mossalam, Abood Okal

  • 1Department of Pharmaceutics and Pharmaceutical Chemistry, University of Utah , Utah 84112, United States.

Molecular Pharmaceutics
|August 24, 2013
PubMed

Insights

The DNA binding domain (DBD) of p53, when targeted to mitochondria, effectively induces cancer cell death. This finding reveals a small p53 domain as a potential new cancer therapy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Gene Therapy

Background:

  • The tumor suppressor p53 is crucial in cancer, with nuclear functions established for gene therapy.
  • Mitochondrial targeting of p53, however, remains underexplored for cancer treatment.
  • p53 translocates to mitochondria under stress, interacting with Bcl-2 family proteins to trigger apoptosis.

Purpose of the Study:

  • To investigate if smaller functional domains of p53 can induce apoptosis similarly to full-length p53.
  • To determine which p53 domain is responsible for mitochondrial-induced apoptosis.
  • To explore novel cancer biologic therapies using targeted p53 domains.

Main Methods:

  • Constructs of p53 domains (MDM2 binding domain, proline-rich domain, DNA binding domain) fused to Bcl-XL mitochondrial targeting signal were designed.
  • Apoptotic activity was assessed using TUNEL, Annexin-V, and 7-AAD assays in multiple cancer cell lines (breast, cervical, lung).
  • Mitochondrial-dependent apoptosis assays (TMRE, caspase-9), co-immunoprecipitation, and Bcl-XL overexpression were employed.

Main Results:

  • The p53 DNA binding domain fused to the Bcl-XL mitochondrial targeting signal (DBD-XL) showed significant apoptotic activity across tested cancer cell lines.
  • DBD-XL demonstrated comparable or enhanced apoptotic activity compared to full-length p53 fused to the mitochondrial targeting signal (p53-XL).
  • Data suggests DBD-XL may interact with and inhibit Bcl-XL, promoting mitochondrial apoptosis.

Conclusions:

  • The DNA binding domain (DBD) of p53 is the minimal domain required for inducing apoptosis at the mitochondria.
  • Targeting the p53 DBD to mitochondria represents a novel and effective strategy for cancer therapy.
  • This study opens avenues for developing targeted cancer treatments utilizing specific functional domains of p53.

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