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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting the MDM2-MDM4 interaction interface reveals an otherwise therapeutically active wild-type p53 in colorectal
Sonia Valentini1,2, Giada Mele1,2, Marika Attili1,2
1Institute of Biochemistry and Cell Biology, National Research Council of Italy, Monterotondo, Italy.
Abstract:
Targeting the heterodimer MDM2/MDM4 is a novel and effective route for the reactivation of wild-type p53 in human tumors with reduced toxicity in nontransformed cells. To improve the therapeutic potential of peptides that interfere with MDM4 binding to MDM2, we demonstrated the tumor-suppressive activity of a short peptide (Pep3S), which is composed of the last five amino acids of the MDM4 protein. Compared to longer peptides (previously identified), Pep3S binds MDM2 with high affinity, increases p53-dependent cell death in 2D and 3D colorectal cancer models, and is more efficacious in suppressing xenograft tumor growth. Furthermore, its encapsulation in poly (lactic-co-glycolic acid) (PLGA) nanoparticles potentiated and prolonged its activity. A p53-specific target gene array revealed an uncommon p53 signature, with Pep3S leading to p53-mediated repression of a subset of p53 targets. Comparative analysis indicated that this repression is driven by p53-mediated activation of miR-34a, which is functional in Pep3S-induced cell death. Of note, unlike other p53-reactivating molecules, Pep3S led to significant downregulation of the cell cycle inhibitor CDKN1A/p21, one of the best-characterized p53-targets. Genetic manipulation of MDM4 demonstrated the requirement of the dissociated protein for p21 downregulation, whereas the miR-34a signature was not altered. At odds with Nutlin-3a, the proliferation status of nontumor muscle and lymphoblastoid cells was not altered by Pep3S. These data indicate that targeting the MDM2/MDM4 interaction region provides a different route for wild-type p53 reactivation in human tumors, potentially reducing toxicity to proliferating nontumor tissue. The development of a PLGA/Pep3S formulation represents a promising approach for therapeutic purposes.
Insights
A novel peptide (Pep3S) targeting the MDM2/MDM4 interaction reactivates wild-type p53 in colorectal cancer models. Encapsulated in nanoparticles, Pep3S shows potent tumor suppression with reduced toxicity to normal cells.
Area of Science:
- Oncology
- Molecular Biology
- Drug Delivery
Background:
- Targeting the MDM2/MDM4 heterodimer offers a novel strategy for wild-type p53 reactivation in cancer.
- Existing peptides targeting MDM2/MDM4 interactions have therapeutic potential but can be improved.
Purpose of the Study:
- To evaluate the tumor-suppressive activity of a short peptide (Pep3S) derived from MDM4.
- To investigate the mechanism of action and therapeutic potential of Pep3S, including its nanoparticle formulation.
Main Methods:
- Synthesis and characterization of Pep3S, a peptide mimicking the MDM4-MDM2 binding interface.
- In vitro studies using 2D and 3D colorectal cancer models.
- In vivo xenograft studies to assess tumor growth suppression.
- p53 target gene array analysis and miRNA profiling.
- Formulation of Pep3S in poly(lactic-co-glycolic acid) (PLGA) nanoparticles.
- Assessment of toxicity in nontransformed cells.
Main Results:
- Pep3S demonstrated high-affinity binding to MDM2 and potent p53-dependent cell death induction in colorectal cancer models.
- PLGA nanoparticle encapsulation of Pep3S enhanced and prolonged its anti-tumor activity.
- Pep3S induced a unique p53 signature, including repression of specific targets mediated by miR-34a activation and downregulation of CDKN1A/p21.
- Unlike Nutlin-3a, Pep3S did not affect the proliferation of nontumorigenic cells, indicating reduced toxicity.
Conclusions:
- Targeting the MDM2/MDM4 interaction with Pep3S is a promising strategy for reactivating wild-type p53 in human tumors.
- The PLGA/Pep3S formulation offers a potent and potentially less toxic therapeutic approach for cancer treatment.
- Pep3S exhibits a distinct mechanism of p53 reactivation, involving miR-34a and p21 modulation, differentiating it from other p53 reactivators.
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