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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Nuclear factor erythroid 2 (NF-E2) p45-related factor 2 interferes with homeodomain-interacting protein kinase 2/p53
Gabriella D'Orazi1, Alessia Garufi1,2, Mara Cirone3,4
1Department of Research, IRCCS Regina Elena National Cancer Institute, Rome, Italy.
Abstract:
Resistance to chemotherapy represents a major hurdle to successful cancer treatment. A key role for efficient response to anticancer therapies is played by TP53 oncosuppressor gene that indeed is mutated in 50% of human cancers or inactivated at protein level in the remaining 50%. Homeodomain-interacting protein kinase 2 (HIPK2) is the wild-type p53 (wtp53) apoptotic activator, and its inhibition by hypoxia or hyperglycemia may contribute to tumor chemoresistance mainly by impairing p53 apoptotic activity. Another important molecule able to induce chemoresistance is nuclear factor erythroid 2 (NF-E2) p45-related factor 2 (NRF2) transcription factor, whose activation by oxidative and/or electrophilic stress regulates a transcriptional antioxidant program allowing cancer cells to adapt and survive to stresses. NRF2 may shift from cytoprotective to tumor-promoting function, according to tumor phases. NRF2 may crosstalk with both wtp53 and mutant p53 (mutp53), inhibiting the wtp53 apoptotic function and strengthening the mutp53 oncogenic function. NRF2 has also been shown to induce HIPK2 mRNA expression cooperating in inducing cytoprotection. Although HIPK2, p53, and NRF2 have been individually extensively studied, their interplay has not been clearly addressed yet. On the basis of the background and our results, we aim at hypothesizing the unexpected pro-survival activity played by the NRF2/HIPK2/p53 interplay that can be hijacked by cancer cells to bypass drugs cytotoxicity.
Insights
The interplay between NRF2, HIPK2, and p53 can promote cancer cell survival, potentially hindering chemotherapy effectiveness. This pathway may be exploited by tumors to evade drug-induced cell death.
Area of Science:
- Molecular oncology
- Cancer cell biology
- Drug resistance mechanisms
Background:
- TP53 gene mutations or inactivation occur in 100% of human cancers, impacting chemotherapy response.
- Homeodomain-interacting protein kinase 2 (HIPK2) activates wild-type p53 (wtp53) apoptosis, but its inhibition contributes to chemoresistance.
- Nuclear factor erythroid 2 (NF-E2) p45-related factor 2 (NRF2) is a transcription factor involved in cancer cell adaptation and survival.
Purpose of the Study:
- To investigate the interplay between NRF2, HIPK2, and p53 in cancer chemoresistance.
- To hypothesize the pro-survival role of the NRF2/HIPK2/p53 axis in bypassing drug cytotoxicity.
Main Methods:
- The study hypothesizes mechanisms based on existing literature and experimental results.
- Analysis of molecular interactions and signaling pathways involving NRF2, HIPK2, and p53.
Main Results:
- NRF2 activation promotes cancer cell survival by inhibiting wtp53 apoptosis and enhancing mutant p53 (mutp53) oncogenic functions.
- NRF2 can induce HIPK2 mRNA expression, contributing to cytoprotection.
- The NRF2/HIPK2/p53 interplay demonstrates an unexpected pro-survival activity in cancer cells.
Conclusions:
- Cancer cells may hijack the NRF2/HIPK2/p53 axis to evade chemotherapy.
- Understanding this interplay is crucial for developing novel therapeutic strategies against chemoresistant cancers.
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