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Updated: Jan 7, 2026

Detection of Aggregation-Prone Behavior in Mutant P53 V157F Breast Cancer Cells Using Multipoint Thioflavin T Fluorescence
Published on: December 30, 2025
Breast Cancer Therapy by Small-Molecule Reactivation of Mutant p53
Simon H Slight1, Salman M Hyder1
1Department of Pathobiology and Integrative Biomedical Sciences, University of Missouri, Columbia, MO 65211, USA.
Abstract:
Tumor suppressor p53 is essential for maintaining DNA stability and preventing cancer. Under normal conditions, the p53 protein is either degraded or bound to a negative regulator, rendering it inactive, but when DNA damage occurs, p53 is activated, causing cell cycle arrest and allowing time for cellular repair. If, however, DNA damage is too severe, the cell undergoes apoptosis and is eliminated. Mutations in the p53 gene are linked to various types of cancer and are present in 30-40% of human breast cancers, leading to loss of tumor suppressor function and uncontrolled tumor growth. Moreover, in triple-negative breast cancer (TNBC), a particularly deadly form of the disease, the incidence of p53 mutations increases to 70-80%. Many p53 mutations occur in the DNA binding domain of the p53 gene, leading to accumulation of mutant p53 (mtp53) within the cell, and tumor development. Converting mtp53 back to its functional wild-type form (wtp53) is consequently a rational approach to preventing or even reversing tumor growth. Mechanisms of action of tumor suppressor p53 are widely discussed elsewhere; hence, we will focus on our own studies, using small molecule activators of mtp53 to combat breast cancer. We will show that specific small molecules, such as PRIMA-1 (p53 reactivation and induction of mass apoptosis), reactivate mtp53 in hormone-dependent human breast cancer cells. Furthermore, we will demonstrate the effectiveness of PRIMA-1 at arresting xenograft growth in an animal model and go on to show that the PRIMA-1 analog APR-246 effectively restores wtp53 tumor suppressor activity in TNBC cells. A brief overview of current clinical trials aimed at reactivating p53 to treat certain cancers is provided. Finally, we discuss the possible use of naturally occurring compounds, which are generally non-toxic, to reactivate mutant p53 and control TNBC progression.
Insights
Reactivating mutant p53 (mtp53) with small molecules like PRIMA-1 and APR-246 shows promise in fighting breast cancer, particularly triple-negative breast cancer (TNBC). These compounds restore wild-type p53 tumor suppressor activity, inhibiting tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- The p53 protein is a crucial tumor suppressor involved in DNA stability and apoptosis.
- Mutations in p53 are common in many cancers, including 30-40% of breast cancers and 70-80% of triple-negative breast cancer (TNBC).
- Mutant p53 (mtp53) accumulation drives tumor development, making its reactivation a potential therapeutic strategy.
Purpose of the Study:
- To investigate the potential of small molecule activators to restore the function of mtp53 in breast cancer.
- To evaluate the efficacy of PRIMA-1 and its analog APR-246 in preclinical models of breast cancer, including TNBC.
Main Methods:
- Utilized small molecules, PRIMA-1 and APR-246, to target and reactivate mtp53.
- Tested compound efficacy in hormone-dependent human breast cancer cells and TNBC cells.
- Assessed tumor growth inhibition using xenograft models in animals.
Main Results:
- PRIMA-1 demonstrated the ability to reactivate mtp53 in hormone-dependent breast cancer cells.
- PRIMA-1 effectively arrested tumor growth in a preclinical xenograft model.
- APR-246 successfully restored wild-type p53 tumor suppressor activity in TNBC cells.
Conclusions:
- Small molecule activators represent a promising approach to combatting breast cancer by restoring p53 function.
- Further research into compounds like PRIMA-1 and APR-246, including naturally occurring compounds, could lead to novel TNBC treatments.
- Clinical trials are exploring p53 reactivation as a cancer therapy.
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