Method for treating skeletal disorders resulting from FGFR malfunction
The invention provides materials, reagents, systems, and methods for identifying agents useful for treating diseases resulting from abnormal (e.g., excessive) FGF receptor signaling. The invention also provides (therapeutic) agents thus identified, and methods of using such agents in treating such diseases. In certain embodiments, the invention relates to the treatment of various craniofacial disorders, or Craniosynostosis, that result from FGFR (e.g. FGFR2) malfunction, such as Crouzon, Apert, Jackson-Weiss, Pfeiffer Syndromes, Crouzon+acanthosis nigricans, Beare-Stevenson cutis gyrata, and non-syndromic craniosynostosis (NS). The methods comprise administering to the individuals a therapeutically effective amount of an inhibitor of the FGFR2c-FRS2 signaling. The inhibitor inhibits signaling by antagonizing FGFR2c-FRS2 interaction, inhibiting the expression and/or subcellular localization of wild-type or mutant FGFR2c and/or FRS2, inhibiting the kinase activity of FGFR2c (e.g. for autophosphorylation and/or phosphorylation of FRS2), and/or inhibiting downstream signaling of FRS2 (such as Sos-Ras-MAPK, Shp2, and/or Gab 1-PI3K pathways).
1. A method of reducing in an individual the severity of a skeletal deformity caused by a gain of function mutation in fibroblast growth factor receptor (FGFR), comprising administering to the individual a therapeutically effective amount of an agent that inhibits fibroblast growth factor receptor protein kinase substrate 2 (FRS2) interaction with and/or phosphorylation by FGFR, whereby FRS2 interaction with and/or phosphorylation by FGFR is inhibited, wherein the agent is a small molecule compound, and wherein the small molecule is a 3-benzoyl-7-azaindole compound.
2. The method of claim 1 , wherein the FGFR exhibits excessive FGFR activity.
3. The method of claim 2 , wherein said excessive FGFR activity results from a constitutively activating mutation in the FGFR.
4. The method of claim 2 , wherein said excessive FGFR activity results from gain-of-function mutations in the catalytic RTK (Receptor Tyrosine Kinase) domain of FGFR, said RTK domain exhibiting enhanced activity in a ligand-independent manner.
5. The method of claim 2 , wherein said excessive FGFR activity results from FGFR overexpression.
6. The method of claim 1 , wherein said agent is administered shortly before or after the birth of the individual.
7. The method of claim 1 , wherein said agent is administered postnatally for sufficient time and in appropriate doses to reduce the severity of the skeletal deformity.
8. The method of claim 1 , wherein the 3-benzoyl-7-azaindole compound is [4-(3,5-difluorophenyl)-1H-pyrrolo[2,3-b]pyridine-3-yl](3-methoxyphenyl)methanone.