Modulation of Oncogenic KRAS Signaling by Branched Actin-driven Cell Membrane Protrusions

Gabriel Muhire Gihana1, Kushal Bhatt1, Bo-Jui Chang1

  • 1UT Southwestern Medical Center.

Insights

Oncogenic RAS mutations drive cancer by altering cell shape. Branched actin-driven membrane protrusions (BAMPs) actively regulate KRAS signaling, promoting cancer cell proliferation independently of MAPK pathways.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Molecular Oncology

Background:

  • Oncogenic RAS proteins are known to alter actin cytoskeleton organization and cell surface morphology.
  • RAS activation of RAC1 promotes branched actin networks and cell membrane protrusions.
  • Specific RAC1 mutants can drive lamellipodia formation, enhancing cancer cell proliferation.

Purpose of the Study:

  • To investigate if branched actin-driven membrane protrusions (BAMPs) are active regulators, not just outputs, of oncogenic RAS signaling.
  • To explore the role of BAMPs in mediating the oncogenic penetrance of RAS mutants in cancer.

Main Methods:

  • Volumetric light sheet microscopy.
  • Biochemical approaches.
  • Investigation in pancreatic and lung cancer models.

Main Results:

  • Elevated BAMP formation regulates oncogenic KRAS interaction with downstream effectors, including the RAC1 GEF TIAM1.
  • BAMPs create a positive feedback loop, upregulating cyclin D1 expression by inactivating the merlin tumor suppressor.
  • This process occurs independently of the mitogen-activated protein kinase (MAPK) pathway.
  • Oncogenic KRAS-driven proliferation is significantly reduced in the absence of BAMPs.

Conclusions:

  • Branched actin-driven membrane protrusions (BAMPs) play a crucial, active role in the functionalization of KRAS mutants as potent oncogenes.
  • BAMPs mediate oncogenic KRAS signaling and cancer cell proliferation through a positive feedback loop involving merlin inactivation.
  • This mechanism highlights cell morphology as a key regulator of oncogenic signals, independent of canonical MAPK pathways.

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