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A Dual-Action Liposome-Peptide Formulation Synergistically Counteracts A Gain-of-Function p53 Mutant
Objective:
Inactivation of p53 tumor suppressor functions, often through missense mutations, is essential for carcinogenesis. A sub-class of such p53 missense mutations gains new functions, including drug resistance and enhanced proliferation, in addition to its loss of function. Among the most frequent gain-of-function p53 mutants, R273H occurs in tumors of many tissue origins and imparts aggressive character and resistance to drugs to the tumor. Tumors bearing p53R273H are generally resistant to all available therapies, and need for novel interventions are urgently needed. Interaction of p53R273H with Positive Coactivator 4 (PC4), an abundant chromatin-associated protein, is essential for acquiring the gain-of-function properties. Previously, we developed a chemically modified peptide, NLS-p53(380-386), targeting PC4 that abrogated the interaction of p53R273H with PC4 and reversed many of its gain-of-function properties. We earlier demonstrated that cationic phosphatidylcholine-stearylamine (PC-SA) liposomes possess inherent anti-tumor properties. To improve efficacy, pharmacokinetics, and delivery, we entrapped the PC4-targeted peptide into PC-SA liposome.
Methods:
We synthesized the NLS-p53(380-386) peptide and entrapped in PC-SA liposome. We used MTT assay, confocal microscopy, flow cytometry, qRT-PCR, and western blotting to investigate the biological effects of the p53-entrapped PC-SA.
Results:
Pre-treatment with the PC-SA liposome entrapped peptide enhanced the chemosensitivity of widely used anticancer drug doxorubicin in cell lines bearing p53R273H mutation. The doxorubicin-induced cell-killing effect was much more enhanced when pre- treated with the liposome-entrapped peptide than when pre-treated with either the free peptide or the liposome alone.
Conclusion:
The liposome-encapsulated peptide is a promising formulation for developing therapies targeting tumors bearing the p53R273H.
Insights
A novel liposome-encapsulated peptide targeting p53R273H mutations enhances doxorubicin efficacy in cancer cells. This formulation offers a promising strategy for overcoming drug resistance in tumors with this common p53 mutation.
Area of Science:
- Oncology
- Molecular Biology
- Drug Delivery
Background:
- Gain-of-function p53 mutations, like R273H, drive cancer progression and drug resistance.
- The p53R273H mutant protein interacts with Positive Coactivator 4 (PC4), essential for its oncogenic functions.
- Existing therapies are often ineffective against tumors harboring p53R273H mutations.
Purpose of the Study:
- To develop and evaluate a novel therapeutic formulation for p53R273H-mutant cancers.
- To investigate the potential of a PC4-targeting peptide encapsulated in cationic liposomes (PC-SA) to enhance anti-cancer drug efficacy.
Main Methods:
- Synthesis of the NLS-p53(380-386) peptide and its encapsulation into PC-SA liposomes.
- Assessment of biological effects using MTT assays, confocal microscopy, flow cytometry, qRT-PCR, and Western blotting.
- Evaluation of enhanced chemosensitivity to doxorubicin in p53R273H-mutant cancer cell lines.
Main Results:
- The liposome-encapsulated peptide significantly enhanced doxorubicin-induced cancer cell death.
- Pre-treatment with the encapsulated peptide was more effective than the free peptide or liposome alone.
- The formulation demonstrated improved efficacy in overcoming drug resistance associated with the p53R273H mutation.
Conclusions:
- Liposome-encapsulated NLS-p53(380-386) peptide is a promising strategy for treating p53R273H-mutant cancers.
- This formulation improves the delivery and efficacy of anti-cancer therapies.
- Further development could lead to novel interventions for resistant tumors.
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