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Published on: July 17, 2019
Oncogenic Ras Isoforms Signaling Specificity at the Membrane
Ruth Nussinov1,2, Chung-Jung Tsai3, Hyunbum Jang3
1Cancer and Inflammation Program, Leidos Biomedical Research, Inc., Frederick National Laboratory for Cancer Research, National Cancer Institute at Frederick, Frederick, Maryland. nussinor@helix.nih.gov.
Abstract:
How do Ras isoforms attain oncogenic specificity at the membrane? Oncogenic KRas, HRas, and NRas (K-Ras, H-Ras, and N-Ras) differentially populate distinct cancers. How they selectively activate effectors and why is KRas4B the most prevalent are highly significant questions. Here, we consider determinants that may bias isoform-specific effector activation and signaling at the membrane. We merge functional data with a conformational view to provide mechanistic insight. Cell-specific expression levels, pathway cross-talk, and distinct interactions are the key, but conformational trends can modulate selectivity. There are two major pathways in oncogenic Ras-driven proliferation: MAPK (Raf/MEK/ERK) and PI3Kα/Akt/mTOR. All membrane-anchored, proximally located, oncogenic Ras isoforms can promote Raf dimerization and fully activate MAPK signaling. So why the differential statistics of oncogenic isoforms in distinct cancers and what makes KRas so highly oncogenic? Many cell-specific factors may be at play, including higher KRAS mRNA levels. As a key factor, we suggest that because only KRas4B binds calmodulin, only KRas can fully activate PI3Kα/Akt signaling. We propose that full activation of both MAPK and PI3Kα/Akt proliferative pathways by oncogenic KRas4B-but not by HRas or NRas-may help explain why the KRas4B isoform is especially highly populated in certain cancers. We further discuss pharmacologic implications. Cancer Res; 78(3); 593-602. ©2017 AACR.
Insights
Oncogenic Ras isoforms like KRas, HRas, and NRas activate distinct cancer pathways. KRas4B
Area of Science:
- Molecular Biology
- Cell Signaling
- Oncology
Background:
- Oncogenic Ras isoforms (KRas, HRas, NRas) are differentially prevalent in various cancers.
- Understanding their specific effector activation and oncogenic potential is crucial.
- KRas4B is the most prevalent oncogenic Ras isoform, but the reasons remain unclear.
Purpose of the Study:
- To investigate the determinants of isoform-specific Ras effector activation at the cell membrane.
- To elucidate the mechanistic basis for KRas4B's high prevalence in certain cancers.
- To explore the role of calmodulin binding in Ras isoform signaling specificity.
Main Methods:
- Integration of functional data with conformational analysis of Ras isoforms.
- Examination of cell-specific expression levels and pathway crosstalk.
- Analysis of Ras isoform interactions with downstream effectors.
Main Results:
- All membrane-anchored Ras isoforms activate the MAPK pathway.
- KRas4B uniquely binds calmodulin, enabling full activation of the PI3Kα/Akt/mTOR pathway.
- Differential activation of MAPK and PI3Kα/Akt pathways by KRas4B may explain its oncogenic prevalence.
Conclusions:
- Isoform-specific effector activation is modulated by conformational trends and cell-specific factors.
- KRas4B's ability to activate both MAPK and PI3Kα/Akt pathways contributes to its oncogenic specificity.
- Findings have implications for targeted cancer therapies.
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