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Monitoring Hippo Signaling Pathway Activity Using a Luciferase-based Large Tumor Suppressor LATS Biosensor
Published on: September 13, 2018
MOB3A Bypasses BRAF and RAS Oncogene-Induced Senescence by Engaging the Hippo Pathway
Kendall Dutchak1, Sam Garnett1, Mary Nicoll1
1Department of Biology, McGill University, Stewart Biology, Montréal QC, Canada.
Abstract:
Oncogenic activation of the RTK-RAS-RAF-MEK-ERK pathway occurs in approximately 25% of all human cancers, yet activated RAS, BRAF, or MEK expression in primary cells leads to a prolonged and predominantly irreversible cell-cycle arrest termed oncogene-induced senescence (OIS). OIS acts as an intrinsic tumor suppressor mechanism, serving as a barrier to tumor progression. Screening a library of activated kinases and kinase-regulatory proteins we identified MOB3A, a Mps-one binder coactivator (MOB) protein family member, whose constitutive expression permits proliferation and suppresses senescence in response to oncogenic RAS and BRAF signals. MOB3A is one of seven human MOB genes, which are highly conserved from yeast to human and that function to activate the Hippo pathway kinases (MST/LATS) or NDR kinases through direct association. Here we show that within the MOB family of genes MOB3A and C are unique in their ability to allow primary cell proliferation in the face of sustained oncogene signaling. Unlike the canonical MOB1A/B proteins, MOB3A inhibits Hippo/MST/LATS signaling and constitutive MOB3A membrane localization phenocopies OIS bypass seen with elevated YAP expression. Moreover, inhibition of MOB3 family member expression results in decreased proliferation and tumor growth of cancer cell lines. Together these data identify MOB3A's role in bypass of oncogene induced senescence and its role as a Hippo pathway inhibitor.
Implications:
These results suggest that MOB3 targeting to re-engage the Hippo pathway, or direct targeting of YAP/TAZ, may be viable therapeutic strategies potential for RAS-pathway driven tumours.
Insights
MOB3A protein allows cancer cells to bypass oncogene-induced senescence (OIS), a tumor suppressor mechanism. Targeting MOB3A may offer new therapies for RAS-pathway driven cancers by re-engaging the Hippo pathway.
Area of Science:
- Cell Biology
- Cancer Biology
- Molecular Oncology
Background:
- Oncogenic activation of the RTK-RAS-RAF-MEK-ERK pathway is common in human cancers.
- Oncogene-induced senescence (OIS) is a tumor suppressor mechanism that halts cancer cell proliferation.
- The Hippo pathway regulates cell proliferation and is involved in tumor suppression.
Purpose of the Study:
- To identify proteins that can bypass oncogene-induced senescence (OIS).
- To investigate the role of MOB3A in OIS and its potential as a therapeutic target in RAS-pathway driven cancers.
Main Methods:
- Screening of activated kinases and kinase-regulatory proteins.
- Assessing the effect of MOB3A expression on primary cell proliferation under oncogenic signaling.
- Investigating MOB3A's interaction with the Hippo pathway kinases (MST/LATS).
- Evaluating the impact of MOB3 family inhibition on cancer cell proliferation and tumor growth.
Main Results:
- MOB3A expression permits proliferation and suppresses senescence in response to oncogenic RAS and BRAF signals.
- MOB3A and MOB3C uniquely allow primary cell proliferation despite sustained oncogene signaling.
- MOB3A inhibits Hippo/MST/LATS signaling, and its membrane localization mimics OIS bypass seen with elevated YAP.
- Inhibition of MOB3 family members reduces cancer cell proliferation and tumor growth.
Conclusions:
- MOB3A plays a critical role in bypassing oncogene-induced senescence (OIS) by inhibiting the Hippo pathway.
- Targeting MOB3A or YAP/TAZ to re-engage the Hippo pathway presents a potential therapeutic strategy for RAS-pathway driven tumors.
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