Calpain interacts with class IA phosphoinositide 3-kinases regulating their stability and signaling activity
Luisa Beltran1, Claire Chaussade, Bart Vanhaesebroeck
1Analytical Signaling Group, Centre for Cell Signaling, Barts Cancer Institute, Queen Mary University of London, Charterhouse Square, London EC1M 6BQ, United Kingdom.
Abstract:
Class IA phosphoinositide 3-kinases (PI3Ks) are signaling enzymes with key roles in the regulation of essential cellular functions and disease, including cancer. Accordingly, their activity is tightly controlled in cells to maintain homeostasis. The formation of multiprotein complexes is a ubiquitous mechanism to regulate enzyme activity but the contribution of protein-protein interactions to the regulation of PI3K signaling is not fully understood. We designed an affinity purification quantitative mass spectrometry strategy to identify proteins interacting dynamically with PI3K in response to pathway activation, with the view that such binding partners may have a functional role in pathway regulation. Our study reveals that calpain small subunit 1 interacts with PI3K and that the association between these proteins is lower in cells stimulated with serum compared to starved cells. Calpain and PI3K activity assays confirmed these results, thus demonstrating that active calpain heterodimers associate dynamically with PI3K. In addition, calpains were found to cleave PI3K proteins in vitro (resulting in a reduction of PI3K lipid kinase activity) and to regulate endogenous PI3K protein levels in vivo. Further investigations revealed that calpains have a role in the negative regulation of PI3K/Akt pathway activity (as measured by Akt and ribosomal S6 phosphorylation) and that their inhibition promotes cell survival during serum starvation. These results indicate that the interaction between calpain and PI3K is a novel mechanism for the regulation of class IA PI3K stability and activity.
Insights
Calpains interact with phosphoinositide 3-kinases (PI3Ks), cleaving them to reduce activity and protein levels. This interaction negatively regulates PI3K signaling, promoting cell survival under starvation.
Area of Science:
- Cellular signaling
- Enzymology
- Molecular biology
Background:
- Class IA phosphoinositide 3-kinases (PI3Ks) are crucial for cellular functions and implicated in diseases like cancer.
- PI3K activity is tightly regulated by protein-protein interactions, but the mechanisms are not fully understood.
Purpose of the Study:
- To identify proteins that dynamically interact with PI3K upon pathway activation.
- To elucidate the functional role of these interactions in PI3K signaling regulation.
Main Methods:
- Affinity purification coupled with quantitative mass spectrometry to identify PI3K binding partners.
- Enzyme activity assays for PI3K and calpains.
- In vitro cleavage assays and in vivo studies to assess PI3K protein levels and pathway activity.
Main Results:
- Calpain small subunit 1 dynamically interacts with PI3K, with reduced association upon serum stimulation.
- Active calpain heterodimers cleave PI3K in vitro, decreasing its lipid kinase activity.
- Calpains regulate endogenous PI3K protein levels in vivo and negatively impact PI3K/Akt pathway activity.
- Calpain inhibition enhances cell survival during serum starvation.
Conclusions:
- The interaction between calpain and PI3K represents a novel regulatory mechanism for class IA PI3K stability and activity.
- Calpains play a critical role in the negative feedback regulation of PI3K signaling.
- Targeting the calpain-PI3K interaction could offer therapeutic strategies for cancer and other diseases.
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