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Blockade of the Short Form of Prolactin Receptor Induces FOXO3a/EIF-4EBP1-Mediated Cell Death in Uterine Cancer
Yunfei Wen1, Ying Wang2, Anca Chelariu-Raicu3
1Department of Gynecologic Oncology and Reproductive Medicine, The University of Texas MD Anderson Cancer Center, Houston, Texas. ywen2@mdanderson.org asood@mdanderson.org.
Abstract:
Abnormal activity of human prolactin (PRL) and its membrane-associated receptor (PRLR) contributes to the progression of uterine carcinoma. However, the underlying mechanisms are not well understood, and current means of targeting the PRL/PRLR axis in uterine cancer are limited. Our integrated analyses using The Cancer Genome Atlas and Genotype-Tissue Expression (GTEx) databases demonstrated that a short form of PRLR (PRLR_SF) is the isoform predominantly expressed in human uterine cancers; expression of this PRLR_SF was elevated in uterine cancers in comparison with cancer-free uterine tissues. We hypothesized that the overexpression of PRLR_SF in uterine cancer cells contributes, in part, to the oncogenic activity of the PRL/PRLR axis. Next, we employed G129R, an antagonist of human PRL, to block the PRL/PRLR axis in both PTEN and PTEN orthotopic mouse models of uterine cancer. In comparison with control groups, treatment with G129R as monotherapy or in combination with paclitaxel resulted in a significant reduction of growth and progression of orthotopic uterine tumors. Results from protein profiling of uterine cancer cells and in vivo tumors revealed a set of new downstream targets for G129R. Our results showed that G129R induced sub-G0 population arrest, decreased nascent protein synthesis, and initiated FOXO3a/EIF-4EBP1-mediated cell death in both PTEN and PTEN uterine cancer cells. Collectively, our results show a unique pattern of PRLR_SF expression predominantly in uterine cancer. Moreover, FOXO3a and EIF-4EBP1 are important mediators of cell death following G129R treatment in uterine cancer models.
Insights
Overexpression of the prolactin receptor short form (PRLR_SF) drives uterine cancer. Blocking this receptor with G129R halts tumor growth by initiating cell death pathways.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Aberrant human prolactin (PRL) and its receptor (PRLR) signaling are implicated in uterine carcinoma progression.
- Mechanisms driving the PRL/PRLR axis in uterine cancer remain unclear, limiting therapeutic strategies.
Purpose of the Study:
- To investigate the role of PRLR short form (PRLR_SF) in uterine cancer.
- To evaluate the efficacy of blocking the PRL/PRLR axis using G129R in uterine cancer models.
Main Methods:
- Integrated analysis of The Cancer Genome Atlas and Genotype-Tissue Expression databases.
- Utilized PTEN-deficient and PTEN-wildtype orthotopic mouse models of uterine cancer.
- Administered G129R as monotherapy and in combination with paclitaxel.
Main Results:
- PRLR_SF is the predominant PRLR isoform in uterine cancers, with elevated expression compared to normal tissues.
- G129R treatment significantly reduced uterine tumor growth and progression in both mouse models.
- G129R induced sub-G0 cell cycle arrest, inhibited protein synthesis, and triggered FOXO3a/EIF-4EBP1-mediated cell death.
Conclusions:
- PRLR_SF is a key driver in uterine cancer, offering a potential therapeutic target.
- Targeting the PRL/PRLR axis with G129R shows promise for uterine cancer treatment.
- FOXO3a and EIF-4EBP1 are critical mediators of G129R-induced cell death in uterine cancer.
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