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Identification of residues important both for primary receptor binding and specificity in fibroblast growth factor-7
I Sher1, T Lang, S Lubinsky-Mink
1Department of Biology and Department of Chemistry, Technion-Israel Institute of Technology, Haifa 32000, Israel.
Abstract:
Fibroblast growth factors (FGFs) mediate a multitude of physiological and pathological processes by activating a family of tyrosine kinase receptors (FGFRs). Each FGFR binds to a unique subset of FGFs and ligand binding specificity is essential in regulating FGF activity. FGF-7 recognizes one FGFR isoform known as the FGFR2 IIIb isoform or keratinocyte growth factor receptor (KGFR), whereas FGF-2 binds well to FGFR1, FGFR2, and FGFR4 but interacts poorly with KGFR. Previously, mutations in FGF-2 identified a set of residues that are important for high affinity receptor binding, known as the primary receptor-binding site. FGF-7 contains this primary site as well as a region that restricts interaction with FGFR1. The sequences that confer on FGF-7 its specific binding to KGFR have not been identified. By utilizing domain swapping and site-directed mutagenesis we have found that the loop connecting the beta4-beta5 strands of FGF-7 contributes to high affinity receptor binding and is critical for KGFR recognition. Replacement of this loop with the homologous loop from FGF-2 dramatically reduced both the affinity of FGF-7 for KGFR and its biological potency but did not result in the ability to bind FGFR1. Point mutations in residues comprising this loop of FGF-7 reduced both binding affinity and biological potency. The reciprocal loop replacement mutant (FGF2-L4/7) retained FGF-2 like affinity for FGFR1 and for KGFR. Our results show that topologically similar regions in these two FGFs have different roles in regulating receptor binding specificity and suggest that specificity may require the concerted action of distinct regions of an FGF.
Insights
Fibroblast growth factors (FGFs) binding specificity to fibroblast growth factor receptors (FGFRs) is crucial. A specific loop in FGF-7 dictates high-affinity binding to KGFR, revealing key insights into FGF-FGFR interactions.
Area of Science:
- Molecular Biology
- Cell Signaling
- Protein Engineering
Background:
- Fibroblast growth factors (FGFs) regulate vital cellular processes through tyrosine kinase receptors (FGFRs).
- Ligand binding specificity is critical for controlling FGF-FGFR interactions and downstream signaling.
- FGF-7 specifically binds KGFR, while FGF-2 exhibits broader receptor affinity.
Purpose of the Study:
- To identify the specific sequences in FGF-7 responsible for its high-affinity binding to KGFR.
- To understand the molecular basis of FGF-FGFR binding specificity.
Main Methods:
- Domain swapping experiments between FGF-7 and FGF-2.
- Site-directed mutagenesis of specific residues within FGF-7.
- Assays to measure receptor binding affinity and biological potency.
Main Results:
- A loop connecting the beta4-beta5 strands of FGF-7 is critical for high-affinity KGFR binding.
- Mutating this loop in FGF-7 reduced KGFR binding affinity and biological potency.
- Reciprocal loop exchange (FGF2-L4/7) resulted in FGF-2-like affinity for both FGFR1 and KGFR.
Conclusions:
- The beta4-beta5 loop in FGF-7 plays a key role in KGFR recognition and specificity.
- Topologically similar regions in FGF-7 and FGF-2 have distinct roles in receptor binding.
- FGF-FGFR specificity may arise from the coordinated action of multiple distinct regions within an FGF molecule.