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Updated: Feb 18, 2026

A 3D Spheroid Model for Glioblastoma
Published on: April 9, 2020
The effects of PI3K-mediated signalling on glioblastoma cell behaviour
Julia Langhans1, Lukas Schneele1, Nancy Trenkler1
1Department of Pediatrics and Adolescent Medicine, University Medical Center Ulm, Ulm, Germany.
Abstract:
The PI3K/Akt/mTOR signalling network is activated in almost 90% of all glioblastoma, the most common primary brain tumour, which is almost invariably lethal within 15 months of diagnosis. Despite intensive research, modulation of this signalling cascade has so far yielded little therapeutic benefit, suggesting that the role of the PI3K network as a pro-survival factor in glioblastoma and therefore a potential target in combination therapy should be re-evaluated. Therefore, we used two distinct pharmacological inhibitors that block signalling at different points of the cascade, namely, GDC-0941 (Pictilisib), a direct inhibitor of the near apical PI3K, and Rapamycin which blocks the side arm of the network that is regulated by mTOR complex 1. While both substances, at concentrations where they inhibit their primary target, have similar effects on proliferation and sensitisation for temozolomide-induced apoptosis, GDC-0941 appears to have a stronger effect on cellular motility than Rapamycin. In vivo GDC-0941 effectively retards growth of orthotopic transplanted human tumours in murine brains and significantly prolongs mouse survival. However, when looking at genetically identical cell populations that are in alternative states of differentiation, i.e. stem cell-like cells and their differentiated progeny, a more complex picture regarding the PI3K/Akt/mTOR pathway emerges. The pathway is differently regulated in the alternative cell populations and, while it contributes to the increased chemo-resistance of stem cell-like cells compared to differentiated cells, it only contributes to the motility of the latter. Our findings are the first to suggest that within a glioblastoma tumour the PI3K network can have distinct, cell-specific functions. These have to be carefully considered when incorporating inhibition of PI3K-mediated signals into complex combination therapies.
Insights
The PI3K/Akt/mTOR pathway is crucial in glioblastoma, but its role varies by cell type. Inhibiting this pathway shows promise for glioblastoma treatment, but requires careful consideration of cell-specific functions.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with a poor prognosis.
- The PI3K/Akt/mTOR signaling network is frequently activated in GBM, driving tumor growth and survival.
- Current therapies targeting this network have shown limited success, necessitating a re-evaluation of its role.
Purpose of the Study:
- To investigate the distinct functions of the PI3K/Akt/mTOR pathway in different glioblastoma cell populations.
- To evaluate the therapeutic potential of inhibiting this pathway in glioblastoma models.
Main Methods:
- Utilized two inhibitors: GDC-0941 (PI3K inhibitor) and Rapamycin (mTOR inhibitor).
- Assessed effects on glioblastoma cell proliferation, apoptosis, and motility in vitro.
- Evaluated tumor growth and survival in an orthotopic mouse model.
- Compared pathway regulation in stem-like and differentiated glioblastoma cells.
Main Results:
- Both GDC-0941 and Rapamycin reduced proliferation and enhanced temozolomide-induced apoptosis.
- GDC-0941 demonstrated a greater impact on cellular motility compared to Rapamycin.
- GDC-0941 significantly inhibited tumor growth and prolonged survival in vivo.
- The PI3K/Akt/mTOR pathway is differentially regulated in stem-like vs. differentiated cells, contributing to chemoresistance and motility respectively.
Conclusions:
- The PI3K/Akt/mTOR network plays distinct, cell-specific roles within glioblastoma tumors.
- Targeting this pathway may offer therapeutic benefits, but requires strategies that account for these cell-specific functions.
- Findings suggest a more nuanced approach to PI3K-mediated signal inhibition in glioblastoma combination therapies.
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