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Updated: Jun 10, 2026

Measuring Cell-Edge Protrusion Dynamics during Spreading using Live-Cell Microscopy
Published on: November 1, 2021
PI3-kinase p110α mediates β1 integrin-induced Akt activation and membrane protrusion during cell attachment and
Kathrin S Zeller1, Olof Idevall-Hagren, Anne Stefansson
1Department of Medical Biochemistry and Microbiology, Uppsala University, SE-751 23 Uppsala, Sweden.
Abstract:
Integrin-mediated cell adhesion activates several signaling effectors, including phosphatidylinositol 3-kinase (PI3K), a central mediator of cell motility and survival. To elucidate the molecular mechanisms of this important pathway the specific members of the PI3K family activated by different integrins have to be identified. Here, we studied the role of PI3K catalytic isoforms in β1 integrin-induced lamellipodium protrusion and activation of Akt in fibroblasts. Real-time total internal reflection fluorescence imaging of the membrane-substrate interface demonstrated that β1 integrin-mediated attachment induced rapid membrane spreading reaching essentially maximal contact area within 5-10 min. This process required actin polymerization and involved activation of PI3K. Isoform-selective pharmacological inhibition identified p110α as the PI3K catalytic isoform mediating both β1 integrin-induced cell spreading and Akt phosphorylation. A K756L mutation in the membrane-proximal part of the β1 integrin subunit, known to cause impaired Akt phosphorylation after integrin stimulation, induced slower cell spreading. The initial β1 integrin-regulated cell spreading as well as Akt phosphorylation were sensitive to the tyrosine kinase inhibitor PP2, but were not dependent on Src family kinases, FAK or EGF/PDGF receptor transactivation. Notably, cells expressing a Ras binding-deficient p110α mutant were severely defective in integrin-induced Akt phosphorylation, but exhibited identical membrane spreading kinetics as wild-type p110α cells. We conclude that p110α mediates β1 integrin-regulated activation of Akt and actin polymerization important for survival and lamellipodia dynamics. This could contribute to the tumorigenic properties of cells expressing constitutively active p110α.
Insights
The study identifies p110α as the key phosphatidylinositol 3-kinase (PI3K) isoform in β1 integrin signaling, mediating cell spreading and Akt activation crucial for cell motility and survival.
Area of Science:
- Cell Biology
- Molecular Signaling
- Biochemistry
Background:
- Integrin-mediated cell adhesion is vital for cell motility and survival.
- Phosphatidylinositol 3-kinase (PI3K) is a central signaling mediator activated by integrins.
- Identifying specific PI3K isoforms involved in integrin pathways is crucial for understanding cellular responses.
Purpose of the Study:
- To investigate the role of PI3K catalytic isoforms in β1 integrin-induced lamellipodium protrusion and Akt activation in fibroblasts.
- To elucidate the molecular mechanisms linking β1 integrin engagement to downstream signaling pathways.
Main Methods:
- Real-time total internal reflection fluorescence imaging to observe membrane-substrate interactions.
- Isoform-selective pharmacological inhibition of PI3K.
- Site-directed mutagenesis of the β1 integrin subunit and p110α.
- Treatment with tyrosine kinase inhibitors and assessment of signaling pathway dependence.
Main Results:
- β1 integrin engagement rapidly induced cell spreading and PI3K activation, requiring actin polymerization.
- The p110α isoform of PI3K was identified as the mediator of β1 integrin-induced cell spreading and Akt phosphorylation.
- A specific β1 integrin mutation (K756L) impaired Akt phosphorylation and slowed cell spreading.
- Integrin-induced Akt phosphorylation, but not cell spreading, was dependent on Ras binding-deficient p110α.
Conclusions:
- p110α plays a critical role in mediating β1 integrin-regulated Akt activation and actin polymerization, essential for cell survival and lamellipodia dynamics.
- Dysregulation of p110α activity may contribute to the tumorigenic potential of cells.
- This research clarifies the specific PI3K isoform involved in a key integrin signaling pathway.
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