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Updated: Nov 9, 2025

Translational Orthotopic Models of Glioblastoma Multiforme
Published on: February 17, 2023
Mutation-specific non-canonical pathway of PTEN as a distinct therapeutic target for glioblastoma
Seung Won Choi1, Yeri Lee2, Kayoung Shin3
1Department of Neurosurgery, Sungkyunkwan University School of Medicine, Samsung Medical Center, Seoul, Republic of Korea.
Abstract:
PTEN is one of the most frequently altered tumor suppressor genes in malignant tumors. The dominant-negative effect of PTEN alteration suggests that the aberrant function of PTEN mutation might be more disastrous than deletion, the most frequent genomic event in glioblastoma (GBM). This study aimed to understand the functional properties of various PTEN missense mutations and to investigate their clinical relevance. The genomic landscape of PTEN alteration was analyzed using the Samsung Medical Center GBM cohort and validated via The Cancer Genome Atlas dataset. Several hotspot mutations were identified, and their subcellular distributions and phenotypes were evaluated. We established a library of cancer cell lines that overexpress these mutant proteins using the U87MG and patient-derived cell models lacking functional PTEN. PTEN mutations were categorized into two major subsets: missense mutations in the phosphatase domain and truncal mutations in the C2 domain. We determined the subcellular compartmentalization of four mutant proteins (H93Y, C124S, R130Q, and R173C) from the former group and found that they had distinct localizations; those associated with invasive phenotypes ('edge mutations') localized to the cell periphery, while the R173C mutant localized to the nucleus. Invasive phenotypes derived from edge substitutions were unaffected by an anti-PI3K/Akt agent but were disrupted by microtubule inhibitors. PTEN mutations exhibit distinct functional properties regarding their subcellular localization. Further, some missense mutations ('edge mutations') in the phosphatase domain caused enhanced invasiveness associated with dysfunctional cytoskeletal assembly, thus suggesting it to be a potent therapeutic target.
Insights
Altered tumor suppressor PTEN (phosphatase and tensin homolog) mutations, particularly
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- PTEN (phosphatase and tensin homolog) is a critical tumor suppressor gene frequently altered in cancers.
- PTEN alterations, especially missense mutations, may have more severe consequences than deletions in glioblastoma (GBM).
Purpose of the Study:
- To elucidate the functional characteristics of diverse PTEN missense mutations.
- To investigate the clinical significance of PTEN mutations in glioblastoma.
Main Methods:
- Analysis of PTEN genomic alterations in GBM cohorts (Samsung Medical Center and The Cancer Genome Atlas).
- Functional evaluation of mutant PTEN proteins in engineered cell lines (U87MG and patient-derived).
- Assessment of subcellular localization and phenotypic impact of specific PTEN mutants (H93Y, C124S, R130Q, R173C).
Main Results:
- PTEN mutations were classified into phosphatase and C2 domain subsets.
- Specific 'edge mutations' in the phosphatase domain localized to the cell periphery, correlating with invasive phenotypes.
- These edge mutations enhanced invasiveness, independent of PI3K/Akt signaling but sensitive to microtubule inhibitors, suggesting cytoskeletal dysfunction.
Conclusions:
- PTEN mutations display varied subcellular localizations and functional consequences.
- 'Edge mutations' in the PTEN phosphatase domain drive enhanced glioblastoma invasiveness via cytoskeletal defects.
- Targeting cytoskeletal assembly presents a potential therapeutic strategy for PTEN-mutated GBM.
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