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Updated: Jun 9, 2026

Co-culture of Glioblastoma Stem-like Cells on Patterned Neurons to Study Migration and Cellular Interactions
Published on: February 24, 2021
Coordination of glioblastoma cell motility by PKCι
R Mitchell Baldwin1, Gordon M Barrett, Doris A E Parolin
1Centre for Cancer Therapeutics, Ottawa Hospital Research Institute, 501 Smyth Road, Ottawa K1H 8L6, Canada.
Background:
Glioblastoma is one of the deadliest forms of cancer, in part because of its highly invasive nature. The tumor suppressor PTEN is frequently mutated in glioblastoma and is known to contribute to the invasive phenotype. However the downstream events that promote invasion are not fully understood. PTEN loss leads to activation of the atypical protein kinase C, PKCι. We have previously shown that PKCι is required for glioblastoma cell invasion, primarily by enhancing cell motility. Here we have used time-lapse videomicroscopy to more precisely define the role of PKCι in glioblastoma.
Results:
Glioblastoma cells in which PKCι was either depleted by shRNA or inhibited pharmacologically were unable to coordinate the formation of a single leading edge lamellipod. Instead, some cells generated multiple small, short-lived protrusions while others generated a diffuse leading edge that formed around the entire circumference of the cell. Confocal microscopy showed that this behavior was associated with altered behavior of the cytoskeletal protein Lgl, which is known to be inactivated by PKCι phosphorylation. Lgl in control cells localized to the lamellipod leading edge and did not associate with its binding partner non-muscle myosin II, consistent with it being in an inactive state. In PKCι-depleted cells, Lgl was concentrated at multiple sites at the periphery of the cell and remained in association with non-muscle myosin II. Videomicroscopy also identified a novel role for PKCι in the cell cycle. Cells in which PKCι was either depleted by shRNA or inhibited pharmacologically entered mitosis normally, but showed marked delays in completing mitosis.
Conclusions:
PKCι promotes glioblastoma motility by coordinating the formation of a single leading edge lamellipod and has a role in remodeling the cytoskeleton at the lamellipod leading edge, promoting the dissociation of Lgl from non-muscle myosin II. In addition PKCι is required for the transition of glioblastoma cells through mitosis. PKCι therefore has a role in both glioblastoma invasion and proliferation, two key aspects in the malignant nature of this disease.
Insights
Protein kinase C iota (PKCι) is crucial for glioblastoma cell invasion by controlling cell motility and cytoskeletal organization. This kinase also plays a vital role in cell division, impacting glioblastoma proliferation.
Area of Science:
- Oncology
- Cell Biology
- Cancer Research
Background:
- Glioblastoma is a lethal cancer with high invasiveness.
- PTEN mutations are common in glioblastoma, contributing to invasion.
- Protein kinase C iota (PKCι) activation by PTEN loss promotes glioblastoma invasion via enhanced cell motility.
Purpose of the Study:
- To precisely define the role of PKCι in glioblastoma cell invasion and motility.
- To investigate the downstream molecular mechanisms of PKCι in glioblastoma.
Main Methods:
- Time-lapse videomicroscopy to observe cell behavior.
- shRNA-mediated depletion and pharmacological inhibition of PKCι.
- Confocal microscopy to analyze cytoskeletal protein localization.
Main Results:
- PKCι depletion/inhibition disrupted coordinated leading edge lamellipod formation in glioblastoma cells.
- Altered localization and non-muscle myosin II association of Lgl protein observed in PKCι-depleted cells.
- PKCι inhibition caused significant delays in glioblastoma cell mitosis completion.
Conclusions:
- PKCι is essential for glioblastoma cell motility by coordinating lamellipod formation and cytoskeletal remodeling.
- PKCι regulates the dissociation of Lgl from non-muscle myosin II at the leading edge.
- PKCι is required for mitotic progression in glioblastoma, impacting both invasion and proliferation.
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