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Published on: March 5, 2019
Proteomic Identification of DNA-PK Involvement within the RET Signaling Pathway
Lyle J Burdine1, Marie Schluterman Burdine2, Linley Moreland2
1Department of Surgery, University of Arkansas for Medical Sciences, Little Rock, AR 72205, United States of America.
Abstract:
Constitutive activation of the Rearranged during Transfection (RET) proto-oncogene leads to the development of MEN2A medullary thyroid cancer (MTC). The relatively clear genotype/phenotype relationship seen with RET mutations and the development of MEN2A is unusual in the fact that a single gene activity can drive the progression towards metastatic disease. Despite knowing the oncogene responsible for MEN2A, MTC, like most tumors of neural crest origin, remains largely resistant to chemotherapy. Constitutive activation of RET in a SK-N-MC cell line model reduces cell sensitivity to chemotherapy. In an attempt to identify components of the machinery responsible for the observed RET induced chemoresistance, we performed a proteomic screen of histones and associated proteins in cells with a constitutively active RET signaling pathway. The proteomic approach identified DNA-PKcs, a DNA damage response protein, as a target of the RET signaling pathway. Active DNA-PKcs, which is phosphorylated at site serine 2056 and localized to chromatin, was elevated within our model. Treatment with the RET inhibitor RPI-1 significantly reduced s2056 phosphorylation in RET cells as well as in a human medullary thyroid cancer cell line. Additionally, inhibition of DNA-PKcs activity diminished the chemoresistance observed in both cell lines. Importantly, we show that activated DNA-PKcs is elevated in medullary thyroid tumor samples and that expression correlates with expression of RET in thyroid tumors. These results highlight one mechanism by which RET signaling likely primes cells for rapid response to DNA damage and suggests DNA-PKcs as an additional target in MTC.
Insights
Constitutive activation of the Rearranged during Transfection (RET) proto-oncogene drives medullary thyroid cancer (MTC) and chemoresistance. This study identifies DNA-PKcs as a key mediator of RET-induced chemoresistance, suggesting it as a potential therapeutic target for MTC.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Medullary thyroid cancer (MTC) driven by Rearranged during Transfection (RET) proto-oncogene activation often exhibits chemoresistance.
- Understanding the mechanisms of this chemoresistance is crucial for developing effective treatments.
Purpose of the Study:
- To identify molecular components mediating RET-induced chemoresistance in MTC.
- To investigate the role of DNA-PKcs in RET-driven chemoresistance.
Main Methods:
- Proteomic screening of histones and associated proteins in cells with constitutively active RET signaling.
- Analysis of DNA-PKcs phosphorylation (serine 2056) and localization.
- Treatment with RET inhibitor (RPI-1) and DNA-PKcs inhibitor.
- Evaluation of chemoresistance in cell lines and analysis of MTC tumor samples.
Main Results:
- Proteomic analysis identified DNA-dependent protein kinase catalytic subunit (DNA-PKcs) as a target of RET signaling.
- Active DNA-PKcs, phosphorylated at serine 2056, was elevated in RET-activated cells and MTC samples.
- RET inhibition reduced DNA-PKcs phosphorylation, and DNA-PKcs inhibition diminished chemoresistance.
- Elevated activated DNA-PKcs expression correlated with RET expression in MTC tumors.
Conclusions:
- RET signaling activates DNA-PKcs, contributing to chemoresistance in medullary thyroid cancer.
- DNA-PKcs is a potential therapeutic target for overcoming chemoresistance in MTC.
- This study elucidates a mechanism linking RET activation to DNA damage response pathways in MTC.
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