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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Towards the overcoming of anticancer drug resistance mediated by p53 mutations
Xin Cao1, Jiayun Hou1, Quanlin An1
1Zhongshan Hospital Institute of Clinical Science, Fudan University Shanghai Medical College, Shanghai, 200032, China.
Abstract:
Cancer continues to be a leading threat to human health and life. Resistance to anti-cancer drugs is a major impediment towards efficacious cancer treatment. p53 mutations play an important role in cancer cell resistance to chemotherapeutic drugs. The frequency of p53-based chemoresistance is highly associated with the chemical properties of the anticancer drug, the cellular drug target, the biological function being blocked by the chemotherapeutic agent, the genomic instability and alterations of the tumor, as well as its differentiation state. The p53-based molecular mechanisms of anticancer drug resistance are insufficiently understood. With a clear focus on the role of p53 mutations in anticancer drug resistance, the present article reviews the biological structure and function of p53, its regulatory mechanisms, as well as the molecular mechanisms underlying p53 mutation-dependent chemoresistance and possible modalities to surmount this drug resistance. We specifically discuss the roles of p53 in the development of chemoresistance to classical cytotoxic agents including for example cisplatin, doxorubicin, 5-fluorouracil, temozolomide, and paclitaxel. It is expected that the clinical manifestation of drug resistance can be integrated with data obtained from molecular multi-omics analyses addressing the alterations provoked by p53-driven resistance to discover the altered networks in these drug resistant tumors. Thus, novel drugs targeting mutant p53 or mutant p53-based dysregulated pathways, could be developed that may overcome well-defined mutant p53-mediated chemoresistance. Thus, an in-depth understanding of the p53-driven resistance modalities could facilitate the development of novel targeted antitumor drugs and strategies aimed at enhancing the efficacy of current cancer therapeutics.
Insights
Mutations in the p53 tumor suppressor gene drive resistance to chemotherapy, hindering effective cancer treatment. Understanding these p53-based resistance mechanisms is crucial for developing new drugs to overcome chemoresistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cancer remains a significant global health threat, with drug resistance impeding effective treatment.
- Mutations in the p53 tumor suppressor gene are a key factor in cancer cell resistance to chemotherapy.
- The molecular mechanisms underlying p53 mutation-dependent chemoresistance are not fully understood.
Purpose of the Study:
- To review the biological structure and function of p53.
- To elucidate the molecular mechanisms of p53 mutation-dependent chemoresistance.
- To explore strategies for overcoming p53-mediated drug resistance in cancer therapy.
Main Methods:
- Literature review focusing on p53 mutations and chemoresistance.
- Analysis of p53's role in resistance to common chemotherapeutic agents (e.g., cisplatin, doxorubicin).
- Discussion of potential therapeutic strategies targeting p53 pathways.
Main Results:
- p53 mutations are associated with chemoresistance, influenced by drug properties, cellular targets, and tumor characteristics.
- This review details p53's involvement in resistance to agents like cisplatin, doxorubicin, 5-fluorouracil, temozolomide, and paclitaxel.
- Integration of multi-omics data with clinical findings can reveal altered networks in p53-driven drug-resistant tumors.
Conclusions:
- A deeper understanding of p53-driven resistance mechanisms is essential for developing novel targeted therapies.
- Targeting mutant p53 or its associated pathways offers a promising strategy to overcome chemoresistance.
- Developing new drugs and strategies based on p53 research can enhance the efficacy of current cancer treatments.
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