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KRAS Oncoprotein Expression Is Regulated by a Self-Governing eIF5A-PEAK1 Feed-Forward Regulatory Loop
Ken Fujimura1,2, Huawei Wang1,2, Felicia Watson1,2
1Department of Pathology, University of California, San Diego, La Jolla, California.
Abstract:
There remains intense interest in tractable approaches to target or silence the KRAS oncoprotein as a rational therapeutic strategy to attack pancreatic ductal adenocarcinoma (PDAC) and other cancers that overexpress it. Here we provide evidence that accumulation of the KRAS oncoprotein is controlled by a self-regulating feed-forward regulatory loop that utilizes a unique hypusinated isoform of the translation elongation factor eIF5A and the tyrosine kinase PEAK1. Oncogenic activation of KRAS increased eIF5A-PEAK1 translational signaling, which in turn facilitated increased KRAS protein synthesis. Mechanistic investigations show that this feed-forward positive regulatory pathway was controlled by oncogenic KRAS-driven metabolic demands, operated independently of canonical mTOR signaling, and did not involve new KRAS gene transcription. Perturbing eIF5A-PEAK1 signaling, by genetic or pharmacologic strategies or by blocking glutamine synthesis, was sufficient to inhibit expression of KRAS, eIF5A, and PEAK1, to attenuate cancer cell growth and migration, and to block tumor formation in established preclinical mouse models of PDAC. Levels of KRAS, eIF5A, and PEAK1 protein increased during cancer progression with the highest levels of expression observed in metastatic cell populations. Combinatorial targeting of eIF5A hypusination and the RAS-ERK signaling pathway cooperated to attenuate KRAS expression and its downstream signaling along with cell growth in vitro and tumor formation in vivo Collectively, our findings highlight a new mechanistic strategy to attenuate KRAS expression as a therapeutic strategy to target PDAC and other human cancers driven by KRAS activation.Significance: These findings highlight a new mechanistic strategy to attenuate KRAS expression as a therapeutic strategy to target human cancers driven by KRAS activation. Cancer Res; 78(6); 1444-56. ©2018 AACR.
Insights
Scientists discovered a new way to control KRAS oncoprotein accumulation using eIF5A-PEAK1 signaling. Targeting this pathway inhibits cancer growth and tumor formation in pancreatic ductal adenocarcinoma (PDAC).
Area of Science:
- Molecular Biology
- Cancer Research
- Oncology
Background:
- KRAS oncoprotein overexpression drives pancreatic ductal adenocarcinoma (PDAC) and other cancers.
- Targeting KRAS is a key therapeutic strategy, but tractable approaches are needed.
- Existing strategies often focus on KRAS gene transcription or canonical signaling pathways.
Purpose of the Study:
- To investigate a novel feed-forward regulatory loop controlling KRAS oncoprotein accumulation.
- To explore the role of translation elongation factor eIF5A and tyrosine kinase PEAK1 in KRAS regulation.
- To evaluate the therapeutic potential of targeting this pathway in KRAS-driven cancers.
Main Methods:
- Mechanistic investigations of the eIF5A-PEAK1 signaling pathway in cancer cells.
- Genetic and pharmacologic perturbation of eIF5A hypusination and glutamine synthesis.
- Preclinical mouse models of PDAC to assess tumor formation and growth inhibition.
Main Results:
- A feed-forward loop involving hypusinated eIF5A and PEAK1 controls KRAS protein synthesis, independent of new KRAS gene transcription and mTOR signaling.
- Perturbing eIF5A-PEAK1 signaling or blocking glutamine synthesis inhibited KRAS, eIF5A, and PEAK1 expression, reducing cancer cell growth, migration, and tumor formation.
- KRAS, eIF5A, and PEAK1 protein levels increased with cancer progression, notably in metastatic populations.
Conclusions:
- The eIF5A-PEAK1 pathway represents a novel mechanism for regulating KRAS oncoprotein levels.
- Targeting eIF5A hypusination, alone or in combination with RAS-ERK pathway inhibitors, offers a promising therapeutic strategy for KRAS-driven cancers like PDAC.
- This study identifies a new avenue for cancer therapy by focusing on post-transcriptional control of oncogenic proteins.
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