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Ligand activation leads to regulated intramembrane proteolysis of fibroblast growth factor receptor 3
Catherine R Degnin1, Melanie B Laederich, William A Horton
1Research Center, Shriners Hospital for Children, Portland, OR 97239, USA.
Abstract:
Fibroblast growth factor receptor 3 (FGFR3) is a major negative regulator of bone growth that inhibits the proliferation and differentiation of growth plate chondrocytes. Activating mutations of its c isoform cause dwarfism in humans; somatic mutations can drive oncogenic transformation in multiple myeloma and bladder cancer. How these distinct activities arise is not clear. FGFR3 was previously shown to undergo proteolytic cleavage in the bovine rib growth plate, but this was not explored further. Here, we show that FGF1 induces regulated intramembrane proteolysis (RIP) of FGFR3. The ectodomain is proteolytically cleaved (S1) in response to ligand-induced receptor activation, but unlike most RIP target proteins, it requires endocytosis and does not involve a metalloproteinase. S1 cleavage generates a C-terminal domain fragment that initially remains anchored in the membrane, is phosphorylated, and is spatially distinct from the intact receptor. Ectodomain cleavage is followed by intramembrane cleavage (S2) to generate a soluble intracellular domain that is released into the cytosol and can translocate to the nucleus. We identify the S1 cleavage site and show that γ-secretase mediates the S2 cleavage event. In this way we demonstrate a mechanism for the nuclear localization of FGFR3 in response to ligand activation, which may occur in both development and disease.
Insights
Fibroblast growth factor receptor 3 (FGFR3) undergoes regulated intramembrane proteolysis upon FGF1 activation. This process releases an intracellular domain of FGFR3 into the cytosol, enabling nuclear translocation.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Fibroblast growth factor receptor 3 (FGFR3) is a key regulator of bone growth and implicated in cancers.
- Activating mutations in FGFR3 cause dwarfism and contribute to oncogenesis.
- The precise mechanisms governing FGFR3's diverse functions remain unclear.
Purpose of the Study:
- To elucidate the mechanism of FGFR3 activation and its downstream signaling.
- To investigate the role of proteolytic cleavage in FGFR3 function.
- To determine how FGFR3 intracellular domains reach the nucleus.
Main Methods:
- Ligand stimulation with FGF1.
- Analysis of FGFR3 proteolytic cleavage sites (S1 and S2).
- Investigated the role of endocytosis and gamma-secretase in FGFR3 processing.
- Cellular localization studies using microscopy.
Main Results:
- FGF1 induces regulated intramembrane proteolysis (RIP) of FGFR3.
- FGFR3 ectodomain cleavage (S1) requires endocytosis and is not metalloproteinase-dependent.
- Intramembrane cleavage (S2) by gamma-secretase releases the intracellular domain.
- The released intracellular domain translocates to the nucleus.
Conclusions:
- FGFR3 undergoes a novel RIP pathway upon ligand activation.
- This pathway facilitates nuclear translocation of the FGFR3 intracellular domain.
- This mechanism provides insight into FGFR3's role in development and disease.
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