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Characterization of Cell Membrane Extensions and Studying Their Roles in Cancer Cell Adhesion Dynamics
Published on: March 26, 2018
Modulation of Oncogenic KRAS Signaling by Branched Actin-driven Cell Membrane Protrusions
Gaudenz Danuser1, Gabriel Gihana2, Kushal Bhatt1
1UT Southwestern Medical Center.
Abstract:
For over three decades, we have known that oncogenic RAS alters the actin cytoskeleton organization and cell surface morphology1,2. RAS activates the GTPase RAC1, which triggers the growth of branched actin networks to promote cell membrane protrusions3,4. In melanoma, the hyperactive RAC1 mutant, Rac1P29S, was recently shown to drive extended lamellipodia, which then empower cell proliferation through sequestration and localized inhibition of the merlin tumor suppressor5. This discovery illustrates cell morphological programs not only as outputs but also as regulators of human oncogenic signals. Hence, we wondered whether the pronounced branched actin-driven membrane protrusions (BAMPs) downstream of oncogenic RAS are not mere outputs of RAS signaling but rather an active component in mediating the oncogenic penetrance of RAS mutants. We used volumetric light sheet microscopy and biochemical approaches to investigate the role of BAMPs in regulating the molecular signaling of oncogenic KRAS in pancreatic and lung cancer models. We found that elevated BAMP formation regulated the interaction of oncogenic KRAS with downstream effectors, specifically with the RAC1 GEF TIAM1. This implies that BAMPs amplify their own upstream regulators in a positive feedback. This meritorious cycle upregulates cyclin D1 expression by inactivating the merlin tumor suppressor, independently of the mitogen activated protein kinase pathway (MAPK). In the absence of BAMPs, cells carrying oncogenic KRAS mutations are unable to attain their full penetrance in proliferation. Overall, this work unveils the long-overlooked role of branched actin-driven cell morphology in the functionalization of KRAS mutants as potent oncogenes.
Insights
Oncogenic RAS mutations drive cancer by promoting branched actin-driven membrane protrusions (BAMPs). These BAMPs actively regulate KRAS signaling, amplifying oncogenic effects and driving tumor cell proliferation independently of MAPK pathways.
Area of Science:
- Cell Biology
- Molecular Oncology
- Biophysics
Background:
- Oncogenic RAS proteins are known to alter cell morphology and actin cytoskeleton organization.
- Specific RAS mutants, like Rac1P29S in melanoma, drive cell proliferation by affecting tumor suppressors.
- The role of branched actin-driven membrane protrusions (BAMPs) as active regulators of oncogenic signaling is not well understood.
Purpose of the Study:
- To investigate the role of BAMPs in mediating the oncogenic activity of RAS mutants.
- To explore how BAMPs regulate molecular signaling downstream of oncogenic KRAS.
- To determine if BAMPs are essential for the full oncogenic penetrance of RAS mutations.
Main Methods:
- Volumetric light sheet microscopy
- Biochemical approaches
- Cancer cell line models (pancreatic and lung)
Main Results:
- Elevated BAMP formation was found to regulate interactions between oncogenic KRAS and its downstream effectors, including the RAC1 GEF TIAM1.
- BAMPs appear to amplify their upstream regulators through a positive feedback loop.
- This cycle leads to increased cyclin D1 expression via merlin tumor suppressor inactivation, independent of the MAPK pathway.
- Oncogenic KRAS-driven proliferation is significantly impaired in the absence of BAMPs.
Conclusions:
- Branched actin-driven membrane protrusions (BAMPs) are not merely outputs but active regulators of oncogenic RAS signaling.
- BAMPs play a crucial role in the functionalization of KRAS mutants as potent oncogenes by modulating signaling pathways and promoting cell proliferation.
- Targeting BAMP formation could represent a novel therapeutic strategy against KRAS-driven cancers.
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