Related Experiment Video
Updated: Apr 7, 2026

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Targeting Mdmx to treat breast cancers with wild-type p53
S Haupt1, D Buckley1, J-M B Pang2
1Tumor Suppression Laboratory, Research Division, Peter MacCallum Cancer Centre, East Melbourne, Victoria, Australia.
Abstract:
The function of the tumor suppressor p53 is universally compromised in cancers. It is the most frequently mutated gene in human cancers (reviewed). In cases where p53 is not mutated, alternative regulatory pathways inactivate its tumor suppressive functions. This is primarily achieved through elevation in the expression of the key inhibitors of p53: Mdm2 or Mdmx (also called Mdm4) (reviewed). In breast cancer (BrCa), the frequency of p53 mutations varies markedly between the different subtypes, with basal-like BrCas bearing a high frequency of p53 mutations, whereas luminal BrCas generally express wild-type (wt) p53. Here we show that Mdmx is unexpectedly highly expressed in normal breast epithelial cells and its expression is further elevated in most luminal BrCas, whereas p53 expression is generally low, consistent with wt p53 status. Inducible knockdown (KD) of Mdmx in luminal BrCa MCF-7 cells impedes the growth of these cells in culture, in a p53-dependent manner. Importantly, KD of Mdmx in orthotopic xenograft transplants resulted in growth inhibition associated with prolonged survival, both in a preventative model and also in a treatment model. Growth impediment in response to Mdmx KD was associated with cellular senescence. The growth inhibitory capacity of Mdmx KD was recapitulated in an additional luminal BrCa cell line MPE600, which expresses wt p53. Further, the growth inhibitory capacity of Mdmx KD was also demonstrated in the wt p53 basal-like cell line SKBR7 line. These results identify Mdmx growth dependency in wt p53 expressing BrCas, across a range of subtypes. Based on our findings, we propose that Mdmx targeting is an attractive strategy for treating BrCas harboring wt p53.
Insights
Targeting Mdmx inhibits tumor growth in wild-type p53 breast cancers. Mdmx knockdown impedes cancer cell proliferation and prolongs survival in preclinical models, suggesting a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- The tumor suppressor p53 is frequently inactivated in cancers, either through mutation or by elevated expression of its inhibitors, Mdm2 and Mdmx.
- In breast cancer (BrCa), p53 mutations are common in basal-like subtypes, while luminal subtypes often retain wild-type (wt) p53.
- Mdmx (also known as Mdm4) plays a critical role in regulating p53 activity.
Purpose of the Study:
- To investigate the role of Mdmx in breast cancer, particularly in tumors with wild-type p53.
- To evaluate the therapeutic potential of targeting Mdmx in wild-type p53 breast cancers.
Main Methods:
- Quantitative analysis of Mdmx and p53 expression in normal breast cells and various BrCa subtypes.
- Inducible knockdown (KD) of Mdmx in BrCa cell lines (MCF-7, MPE600, SKBR7) and in orthotopic xenograft mouse models.
- Assessment of cell growth, senescence, and survival following Mdmx KD.
Main Results:
- Mdmx is highly expressed in normal breast epithelial cells and further elevated in most luminal BrCas, which typically express low levels of wt p53.
- Mdmx KD in luminal BrCa cells (MCF-7, MPE600) and a basal-like BrCa cell line (SKBR7) significantly impeded cell growth in a p53-dependent manner.
- In vivo studies demonstrated that Mdmx KD in xenograft models inhibited tumor growth and prolonged survival, with associated cellular senescence.
Conclusions:
- Mdmx is highly expressed in wild-type p53 breast cancers and its inhibition leads to significant tumor growth impediment.
- Mdmx targeting represents a promising therapeutic strategy for treating breast cancers that retain wild-type p53 function.
Related Concept Videos
Abnormal Proliferation
Targeted Cancer Therapies
There are several types of targeted therapies against...
Mitogens and the Cell Cycle

