Inhibition of PRL2 Upregulates PTEN and Attenuates Tumor Growth in Tp53-deficient Sarcoma and Lymphoma Mouse Models
Frederick Nguele Meke1, Yunpeng Bai1, Diego Ruiz-Avila1
1Department of Medicinal Chemistry and Molecular Pharmacology, Purdue University, West Lafayette, Indiana.
Abstract:
The phosphatases of regenerating liver (PRL) are oncogenic when overexpressed. We previously found that PRL2 deletion increases PTEN, decreases Akt activity, and suppresses tumor development in a partial Pten-deficient mouse model. The current study aims to further establish the mechanism of PTEN regulation by PRL2 and expand the therapeutic potential for PTEN augmentation mediated by PRL2 inhibition in cancers initiated without PTEN alteration. The TP53 gene is the most mutated tumor suppressor in human cancers, and heterozygous or complete deletion of Tp53 in mice leads to the development of sarcomas and thymic lymphomas, respectively. There remains a lack of adequate therapies for the treatment of cancers driven by Tp53 deficiency or mutations. We show that Prl2 deletion leads to PTEN elevation and attenuation of Akt signaling in sarcomas and lymphomas developed in Tp53 deficiency mouse models. This results in increased survival and reduced tumor incidence because of impaired tumor cell proliferation. In addition, inhibition of PRL2 with a small-molecule inhibitor phenocopies the effect of genetic deletion of Prl2 and reduces Tp53 deficiency-induced tumor growth. Taken together, the results further establish PRL2 as a negative regulator of PTEN and highlight the potential of PRL2 inhibition for PTEN augmentation therapy in cancers with wild-type PTEN expression.
Significance:
Prl2 deletion attenuates Tp53 deficiency-induced tumor growth by increasing PTEN and reducing Akt activity. Targeting Tp53-null lymphoma with PRL inhibitors lead to reduced tumor burden, providing a therapeutic approach via PTEN augmentation.
Insights
Phosphatases of regenerating liver 2 (PRL2) negatively regulate PTEN. Inhibiting PRL2 increases PTEN, reduces tumor growth in TP53-deficient cancers, and offers a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Phosphatases of regenerating liver (PRL) are oncogenic when overexpressed.
- PRL2 deletion was previously shown to increase PTEN, decrease Akt activity, and suppress tumor development in a partial Pten-deficient mouse model.
- Cancers with TP53 deficiency or mutations lack adequate therapies.
Purpose of the Study:
- To establish the mechanism of PTEN regulation by PRL2.
- To expand the therapeutic potential of PRL2 inhibition for PTEN augmentation in cancers without PTEN alteration.
- To investigate the effect of Prl2 deletion in TP53-deficient mouse models of cancer.
Main Methods:
- Investigated the effect of Prl2 deletion in TP53-deficient mouse models.
- Assessed PTEN levels and Akt signaling.
- Administered a small-molecule PRL2 inhibitor to evaluate its therapeutic effect on tumor growth.
Main Results:
- Prl2 deletion led to PTEN elevation and attenuation of Akt signaling in TP53-deficient sarcomas and lymphomas.
- Prl2 deletion resulted in increased survival and reduced tumor incidence due to impaired tumor cell proliferation.
- PRL2 inhibition phenocopied genetic deletion, reducing tumor growth in TP53-deficient models.
Conclusions:
- PRL2 is a negative regulator of PTEN.
- PRL2 inhibition is a potential therapeutic strategy for PTEN augmentation in cancers with wild-type PTEN.
- Targeting PRL2 offers a promising approach for treating TP53-deficient cancers.
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