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Updated: Jun 3, 2025

Heterokaryon Technique for Analysis of Cell Type-specific Localization
Published on: March 11, 2011
Nuclear translocation of RON receptor tyrosine kinase. New mechanistic and functional insights
Yi-Lin Chen1, Chien-An Chu2, Jiu-Yao Wang3
1Department of Medical Laboratory Science and Biotechnology, College of Medicine, National Cheng Kung University, Tainan, Taiwan; Department of Pathology, National Cheng Kung University Hospital, Tainan, Taiwan.
Abstract:
Receptor tyrosine kinases (RTKs) are membrane sensors that monitor alterations in the extracellular milieu and translate this information into appropriate cellular responses. Epidermal growth factor receptor (EGFR) is the most well-known model in which gene expression is upregulated by mitogenic signals through the activation of multiple signaling cascades or by nuclear translocation of the full-length EGFR protein. RON (Receptuer d'Origine Nantatise, also known as macrophage stimulating 1 receptor, MST1R) has recently gained attention as a therapeutic target for human cancer. This review summarizes the recent understanding of the unusual nuclear translocation of uncleaved RON receptor proteins in response to cellular stresses, such as serum starvation, hormonal deprivation, hypoxia, and genotoxicity. This nonligand mechanism, achieved by RON per se or by interaction with EGFR, may directly activate the transcriptional machinery necessary for cancer cells to survive. In vitro experiments have demonstrated the importance of tyrosine kinase of RON in binding to and activating the c-JUN promoter, HIF-1α, DNA helicase 2, DNA-dependent protein kinase catalytic subunit, and other stress-responsive networks. Nuclear RON-activated nonhomologous end joining repair confers chemoresistance to drugs that induce double-strand breaks (DSBs) in cancer cells. Tyrosine kinase inhibitors or monoclonal antibodies targeting RON kinase may therefore be useful treatments for patients with RON-overexpressing tumors. DSB-inducing anticancer drugs are not recommended for these cancer patients. Moreover, multi-RTK inhibition is a more rational strategy for patients with RON- and RTK-coexpressing human cancer.
Insights
Nuclear translocation of the RON receptor tyrosine kinase (RTK) protein, often with EGFR, aids cancer cell survival under stress. This mechanism confers chemoresistance, suggesting targeted RTK inhibition as a treatment strategy.
Area of Science:
- Cellular Biology
- Molecular Oncology
- Signal Transduction
Background:
- Receptor tyrosine kinases (RTKs) like EGFR sense extracellular signals for cellular responses.
- The macrophage stimulating 1 receptor (MST1R/RON) is an emerging therapeutic target in human cancers.
- Unusual nuclear translocation of uncleaved RON, independent of ligand binding, is observed under cellular stress.
Purpose of the Study:
- To review the nonligand-dependent nuclear translocation of RON.
- To elucidate RON's role in activating stress-responsive transcriptional machinery.
- To explore the therapeutic implications of targeting RON in cancer.
Main Methods:
- Literature review of recent studies on RON nuclear translocation.
- In vitro experiments investigating RON's interaction with nuclear targets.
- Analysis of RON's role in DNA repair and chemoresistance.
Main Results:
- Nuclear translocation of RON occurs in response to various cellular stresses (e.g., hypoxia, genotoxicity).
- Nuclear RON activates transcription factors (e.g., c-JUN, HIF-1α) and DNA repair pathways.
- RON-mediated activation of nonhomologous end joining (NHEJ) confers resistance to double-strand break (DSB)-inducing chemotherapy.
Conclusions:
- Nuclear RON is a key mediator of cancer cell survival and chemoresistance.
- Targeting RON kinase with inhibitors or antibodies may benefit patients with RON-overexpressing tumors.
- Multi-RTK inhibition is a rational approach for cancers co-expressing RON and other RTKs.
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