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PDGFRα/β heterodimer activation negatively affects downstream ERK1/2 signaling and cellular proliferation
Maria B Campaña1, Madison R Perkins1, Maxwell C McCabe2
1Department of Craniofacial Biology, School of Dental Medicine, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, USA.
Abstract:
The platelet-derived growth factor receptor (PDGFR) family of receptor tyrosine kinases allows cells to communicate with one another by binding to growth factors at the plasma membrane and activating intracellular signaling pathways to elicit responses such as migration, proliferation, survival and differentiation. The PDGFR family consists of two receptors, PDGFRα and PDGFRβ, that dimerize to form PDGFRα homodimers, PDGFRα/β heterodimers and PDGFRβ homodimers. Here, we overcame prior technical limitations in visualizing and purifying PDGFRα/β heterodimers by generating a cell line stably expressing C-terminal fusions of PDGFRα and PDGFRβ with bimolecular fluorescence complementation fragments corresponding to the N-terminal and C-terminal regions of the Venus fluorescent protein, respectively. We found that these receptors heterodimerize relatively quickly in response to PDGF-BB ligand treatment, with a peak of receptor autophosphorylation following 5 minutes of ligand stimulation. Moreover, we demonstrated that PDGFRα/β heterodimers are rapidly internalized into early endosomes, particularly signaling endosomes, where they dwell for extended lengths of time. We showed that PDGFRα/β heterodimer activation does not induce downstream phosphorylation of ERK1/2 and significantly inhibits cell proliferation. Further, we characterized the PDGFR dimer-specific interactome and identified MYO1D as a novel protein that preferentially binds PDGFRα/β heterodimers. We demonstrated that knockdown of MYO1D leads to retention of PDGFRα/β heterodimers at the plasma membrane, resulting in increased phosphorylation of ERK1/2 and increased cell proliferation. Collectively, our findings impart valuable insight into the molecular mechanisms by which specificity is introduced downstream of PDGFR activation to differentially propagate signaling and generate distinct cellular responses.
Insights
Platelet-derived growth factor receptor (PDGFR) heterodimers are visualized and studied. MYO1D protein regulates PDGFRα/β heterodimer signaling, impacting cell proliferation.
Area of Science:
- Cellular signaling and receptor tyrosine kinases.
- Molecular mechanisms of cell communication.
- Biochemistry and cell biology.
Background:
- The platelet-derived growth factor receptor (PDGFR) family, comprising PDGFRα and PDGFRβ, mediates cellular communication via ligand binding and downstream signaling.
- PDGFRs form homodimers and heterodimers, influencing cellular responses like migration, proliferation, survival, and differentiation.
- Prior technical challenges hindered the study of PDGFRα/β heterodimers.
Approach:
- Developed a novel cell line using bimolecular fluorescence complementation to visualize and purify PDGFRα/β heterodimers.
- Investigated PDGFRα/β heterodimerization kinetics and autophosphorylation in response to PDGF-BB.
- Analyzed PDGFRα/β heterodimer internalization, localization, and downstream signaling events.
- Characterized the dimer-specific interactome, identifying MYO1D as a novel binding partner.
Key Points:
- PDGFRα/β heterodimers form rapidly upon PDGF-BB stimulation, with peak autophosphorylation at 5 minutes.
- These heterodimers are internalized into early signaling endosomes and persist.
- PDGFRα/β heterodimer activation inhibits ERK1/2 phosphorylation and cell proliferation.
- MYO1D preferentially binds PDGFRα/β heterodimers.
- MYO1D knockdown causes PDGFRα/β heterodimer retention at the plasma membrane, enhancing ERK1/2 phosphorylation and proliferation.
Conclusions:
- Established a method to study PDGFRα/β heterodimers, revealing their distinct signaling dynamics.
- Identified MYO1D as a key regulator of PDGFRα/β heterodimer localization and function.
- Demonstrated that MYO1D controls PDGFR-mediated cell proliferation through ERK1/2 signaling.
- Provided insights into how PDGFR signaling specificity is achieved through dimer-specific interactions and downstream propagation.
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