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Updated: Apr 16, 2026

Quantitative Immunohistochemistry of the Cellular Microenvironment in Patient Glioblastoma Resections
Published on: July 31, 2017
Genomically amplified Akt3 activates DNA repair pathway and promotes glioma progression
Kristen M Turner1, Youting Sun1, Ping Ji1
1Departments of Pathology and.
Abstract:
Akt is a robust oncogene that plays key roles in the development and progression of many cancers, including glioma. We evaluated the differential propensities of the Akt isoforms toward progression in the well-characterized RCAS/Ntv-a mouse model of PDGFB-driven low grade glioma. A constitutively active myristoylated form of Akt1 did not induce high-grade glioma (HGG). In stark contrast, Akt2 and Akt3 showed strong progression potential with 78% and 97% of tumors diagnosed as HGG, respectively. We further revealed that significant variations in polarity and hydropathy values among the Akt isoforms in both the pleckstrin homology domain (P domain) and regulatory domain (R domain) were critical in mediating glioma progression. Gene expression profiles from representative Akt-derived tumors indicated dominant and distinct roles for Akt3, consisting primarily of DNA repair pathways. TCGA data from human GBM closely reflected the DNA repair function, as Akt3 was significantly correlated with a 76-gene signature DNA repair panel. Consistently, compared with Akt1 and Akt2 overexpression models, Akt3-expressing human GBM cells had enhanced activation of DNA repair proteins, leading to increased DNA repair and subsequent resistance to radiation and temozolomide. Given the wide range of Akt3-amplified cancers, Akt3 may represent a key resistance factor.
Insights
Akt isoform 2 and 3 significantly drive high-grade glioma (HGG) progression. Akt3 specifically promotes DNA repair, conferring resistance to cancer treatments like radiation and temozolomide.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- The Akt oncogene is crucial in numerous cancers, including glioma.
- Understanding Akt isoform-specific roles is vital for targeted therapies.
Purpose of the Study:
- To investigate the differential roles of Akt isoforms in glioma progression.
- To elucidate the molecular mechanisms underlying Akt-driven glioma and treatment resistance.
Main Methods:
- Utilized the RCAS/Ntv-a mouse model for PDGFB-driven low-grade glioma.
- Analyzed tumor progression, gene expression profiles, and DNA repair pathway activation.
- Correlated findings with The Cancer Genome Atlas (TCGA) data from human glioblastoma multiforme (GBM).
Main Results:
- Akt1 did not induce high-grade glioma (HGG).
- Akt2 and Akt3 strongly promoted HGG, with 78% and 97% of tumors, respectively.
- Akt3 overexpression correlated with DNA repair pathways and enhanced resistance to radiation and temozolomide in human GBM cells.
Conclusions:
- Akt2 and Akt3 isoforms exhibit distinct oncogenic potentials in glioma.
- Akt3 plays a critical role in DNA repair, contributing to therapeutic resistance in GBM.
- Akt3 may be a key factor in treatment resistance across Akt3-amplified cancers.
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