Cooperativity between MAPK and PI3K signaling activation is required for glioblastoma pathogenesis
Mark Vitucci1, Natalie O Karpinich, Ryan E Bash
1Corresponding Author: C. Ryan Miller, MD, PhD, University of North Carolina School of Medicine, 6109B Neurosciences Research Building, Campus Box 7250, Chapel Hill, NC 27599-7250. rmiller@med.unc.edu.
Background:
Glioblastoma (GBM) genomes feature recurrent genetic alterations that dysregulate core intracellular signaling pathways, including the G1/S cell cycle checkpoint and the MAPK and PI3K effector arms of receptor tyrosine kinase (RTK) signaling. Elucidation of the phenotypic consequences of activated RTK effectors is required for the design of effective therapeutic and diagnostic strategies.
Methods:
Genetically defined, G1/S checkpoint-defective cortical murine astrocytes with constitutively active Kras and/or Pten deletion mutations were used to systematically investigate the individual and combined roles of these 2 RTK signaling effectors in phenotypic hallmarks of glioblastoma pathogenesis, including growth, migration, and invasion in vitro. A novel syngeneic orthotopic allograft model system was used to examine in vivo tumorigenesis.
Results:
Constitutively active Kras and/or Pten deletion mutations activated both MAPK and PI3K signaling. Their combination led to maximal growth, migration, and invasion of G1/S-defective astrocytes in vitro and produced progenitor-like transcriptomal profiles that mimic human proneural GBM. Activation of both RTK effector arms was required for in vivo tumorigenesis and produced highly invasive, proneural-like GBM.
Conclusions:
These results suggest that cortical astrocytes can be transformed into GBM and that combined dysregulation of MAPK and PI3K signaling revert G1/S-defective astrocytes to a primitive gene expression state. This genetically-defined, immunocompetent model of proneural GBM will be useful for preclinical development of MAPK/PI3K-targeted, subtype-specific therapies.
Insights
Activating Kras and Pten mutations in astrocytes promote glioblastoma (GBM) growth and invasion by dysregulating MAPK and PI3K signaling. This study introduces a new GBM model for targeted therapy development.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Genomics
Background:
- Glioblastoma (GBM) is characterized by genetic alterations affecting cell cycle and receptor tyrosine kinase (RTK) signaling pathways, including MAPK and PI3K.
- Understanding the impact of activated RTK signaling is crucial for developing effective glioblastoma therapies and diagnostics.
Purpose of the Study:
- To investigate the roles of constitutively active Kras and Pten deletion mutations in astrocyte transformation and glioblastoma pathogenesis.
- To analyze the combined effects of these mutations on cellular growth, migration, and invasion in vitro and in vivo.
Main Methods:
- Utilized genetically defined, G1/S checkpoint-defective murine cortical astrocytes with Kras and/or Pten mutations.
- Assessed in vitro phenotypic hallmarks of glioblastoma (growth, migration, invasion).
- Employed a syngeneic orthotopic allograft model for in vivo tumorigenesis studies.
Main Results:
- Combined Kras and Pten mutations maximally enhanced astrocyte growth, migration, and invasion in vitro.
- These mutations activated both MAPK and PI3K signaling pathways.
- In vivo tumorigenesis required activation of both RTK effector arms, leading to highly invasive, proneural-like GBM with progenitor-like transcriptomal profiles.
Conclusions:
- Cortical astrocytes can be transformed into GBM through combined MAPK and PI3K signaling dysregulation.
- This process reverts G1/S-defective astrocytes to a primitive gene expression state.
- The developed genetically-defined, immunocompetent proneural GBM model is valuable for preclinical testing of targeted therapies.
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