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Updated: Jul 18, 2026

Detection of Ligand-activated G Protein-coupled Receptor Internalization by Confocal Microscopy
Published on: April 9, 2017
Structural requirements of FGF-1 for receptor binding and translocation into cells
Malgorzata Zakrzewska1, Daniel Krowarsch, Antoni Wiedlocha
1Protein Engineering Laboratory, Department of Biotechnology, University of Wroclaw, Tamka 2, 50-137 Wroclaw, Poland.
Abstract:
FGF-1 binds to and activates specific transmembrane receptors (FGFRs) and is subsequently internalized and translocated to the interior of the cell. To elucidate the role of the receptor in the translocation process, we studied the effects of the elimination of distinct sites of the ligand-receptor interaction. On the basis of the structure of the FGF-1-FGFR1 complex, we substituted four key amino acid residues of FGF-1 from the FGF-receptor binding site with alanines, constructing four point mutants and one double mutant. We determined by in vivo assays in NIH 3T3 cells the ability of the mutants to bind to specific FGF receptors, to stimulate DNA synthesis, and to activate downstream signaling pathways. We found that correct binding to the receptor is necessary for optimal stimulation of DNA synthesis. All four single mutants became phosphorylated to different extents, indicating that they were translocated to the cytosol/nucleus with varying efficiency. This indicates that despite a low affinity for FGFR, translocation to the cytosol/nucleus can still occur. However, simultaneous substitution in two of the positions led to a total loss of biological activity of the growth factor and prevented its internalization, implying that there is only one strongly receptor-dependent, productive way of translocating FGF-1. We also found that the process of translocation did not correlate with the thermal stability of the protein. Additionally, we observed a clear negative correlation between the stability of the FGF-1 mutants and the efficiency of their phosphorylation, which strongly suggests that protein kinases prefer the unfolded state of the protein substrate.
Insights
Fibroblast Growth Factor 1 (FGF-1) requires specific receptor binding for optimal DNA synthesis stimulation. Receptor interaction dictates FGF-1 translocation into cells, with some mutants showing reduced but still possible entry.
Area of Science:
- Cell biology
- Molecular biology
- Biochemistry
Background:
- Fibroblast Growth Factor 1 (FGF-1) interacts with specific receptors (FGFRs) and is internalized.
- The role of receptor binding in FGF-1 translocation remains incompletely understood.
Purpose of the Study:
- To investigate the role of ligand-receptor interaction sites in FGF-1 translocation.
- To determine how mutations affect FGF-1 binding, DNA synthesis, and downstream signaling.
Main Methods:
- Created FGF-1 point and double mutants by substituting key amino acid residues.
- Assessed mutant binding affinity, DNA synthesis stimulation, and downstream pathway activation in NIH 3T3 cells.
- Evaluated protein phosphorylation and thermal stability.
Main Results:
- Correct FGF-1 binding to FGFR is essential for optimal DNA synthesis.
- Single FGF-1 mutants showed varying degrees of translocation and phosphorylation, indicating receptor-independent entry is possible.
- A double mutant with substitutions at two critical sites lost all biological activity and failed to internalize.
- Translocation efficiency did not correlate with thermal stability, but protein kinase activity correlated negatively with mutant stability.
Conclusions:
- Specific FGF-1-FGFR binding is crucial for productive translocation and biological activity.
- Protein kinases may preferentially phosphorylate unfolded FGF-1, suggesting a role for protein conformation in signaling.
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