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Published on: December 30, 2025
p53 Aggregation in cancer: Molecular mechanisms, functional disruptions, and targeted therapies
Asma Shah1, Sara K AlMarzooqi2, Sameer Mirza3
1Watson-Crick Centre for Molecular Medicine, Islamic University of Science and Technology, Awantipora, Kashmir, India.
Abstract:
The concept of tumors as prion-like diseases similar to neurodegenerative disorders has gained attraction in recent years. p53, the most well-known tumor suppressor, has been extensively studied for its expression, mutations, and functions in various cancers. Recent findings reveal that p53 undergoes prion-like aggregation in tumors, leading to pathological amyloid fibril formation, functional alterations, and tumor progression. The mechanisms of p53 aggregation involve mutations, structural domains, isoforms, and external factors such as Zn²+ concentrations, pH, temperature, and chaperone abnormalities. While the role of p53 aggregation in tumors is increasingly recognized, controversies remain regarding its precise pathogenic mechanisms. This chapter reviews the structural features of p53 amyloid fibrils, its aggregation characteristics and effects, and the molecular mechanisms driving this phenomenon. Additionally, this chapter summarizes current therapeutic approaches targeting p53 aggregation and prion-like behavior, including small molecules and peptides designed to inhibit aggregation and restore p53's tumor suppressive function. By illuminating these aspects, this chapter aims to deepen our comprehension of how p53 aggregation disrupts its physiological functions. It also highlights the potential of targeting these aggregates as a novel therapeutic strategy in cancer treatment.
Insights
Tumor suppressor p53 exhibits prion-like aggregation in cancer, forming amyloid fibrils that drive tumor progression. Targeting these aggregates offers a novel therapeutic strategy for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Neurodegenerative Diseases
Background:
- Tumors are increasingly viewed as prion-like diseases.
- The tumor suppressor p53 is crucial in cancer, with its aggregation now recognized as a pathological mechanism.
- p53 aggregation contributes to amyloid fibril formation, altered function, and tumor progression.
Purpose of the Study:
- To review the structural and mechanistic aspects of p53 prion-like aggregation in tumors.
- To summarize therapeutic strategies targeting p53 aggregation for cancer treatment.
Main Methods:
- Review of existing literature on p53 structure, aggregation, and function.
- Analysis of factors influencing p53 aggregation (mutations, isoforms, environment).
- Summary of current and emerging therapeutic approaches targeting p53 aggregates.
Main Results:
- p53 forms pathological amyloid fibrils in tumors through various mechanisms.
- p53 aggregation leads to loss of tumor suppressive functions and promotes cancer.
- Several therapeutic strategies, including small molecules and peptides, are being developed to inhibit p53 aggregation.
Conclusions:
- p53 aggregation is a significant factor in cancer development and progression.
- Targeting p53 amyloid aggregates represents a promising novel therapeutic avenue for cancer.
- Further research is needed to fully elucidate the pathogenic mechanisms and optimize therapeutic interventions.
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