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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
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.
Abstract:
The tumor suppressor p53 is one of the most studied proteins in human cancer.1-3 While nuclear p53 has been utilized for cancer gene therapy, mitochondrial targeting of p53 has not been fully exploited to date.4,5 In response to cellular stress, p53 translocates to the mitochondria and directly interacts with Bcl-2 family proteins including antiapoptotic Bcl-XL and Bcl-2 and proapoptotic Bak and Bax.6 Antiapoptotic Bcl-XL forms inhibitory complexes with proapoptotic Bak and Bax preventing their homo-oligomerization.7 Upon translocation to the mitochondria, p53 binds to Bcl-XL, releases Bak and Bax from the inhibitory complex and enhances their homo-oligomerization.8 Bak and Bax homotetramer formation disrupts the mitochondrial outer membrane, releases antiapoptotic factors such as cytochrome c and triggers a rapid apoptotic response mediated by caspase induction.9 It is still unclear if the MDM2 binding domain (MBD), the proline-rich domain (PRD) and/or DNA binding domain (DBD) of p53 are the domains responsible for interaction with Bcl-XL.10-17 The purpose of this work is to determine if a smaller functional domain of p53 is capable of inducing apoptosis similarly to full length p53. To explore this question, different domains of p53 (MBD, PRD, DBD) were fused to the mitochondrial targeting signal (MTS) from Bcl-XL to ensure Bcl-XL specific targeting.18 The designed constructs were tested for apoptotic activity (TUNEL, Annexin-V, and 7-AAD) in 3 different breast cancer cell lines (T47D, MCF-7, MDA-MB-231), in a cervical cancer cell line (HeLa) and in non-small cell lung adenocarcinoma cells H1373. Our results indicate that DBD-XL (p53 DBD fused to the Bcl-XL MTS) reproduces (in T47D cells) or demonstrates increased apoptotic activity (in MCF-7, MDA-MB-231, and HeLa cells) compared to p53-XL (full length p53 fused to Bcl-XL MTS). Additionally, mitochondrial dependent apoptosis assays (TMRE, caspase-9), co-IP and overexpression of Bcl-XL in T47D cells suggest that DBD fused to XL MTS may bind to and inhibit Bcl-XL. Taken together, our data demonstrates for the first time that the DBD of p53 may be the minimally necessary domain for achieving apoptosis at the mitochondria in multiple cell lines. This work highlights the role of small functional domains of p53 as a novel cancer biologic therapy.
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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