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1,079
result(s) for
"fibroblast growth factor receptor 3"
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Transforming Fusions of FGFR and TACC Genes in Human Glioblastoma
by
Lasorella, Anna
,
Sullivan, Ryan
,
Zagzag, David
in
Aneuploidy
,
Animals
,
Antineoplastic Agents - pharmacology
2012
The brain tumor glioblastoma multiforme (GBM) is among the most lethal forms of human cancer. Here, we report that a small subset of GBMs (3.1%; 3 of 97 tumors examined) harbors oncogenic chromosomal translocations that fuse in-frame the tyrosine kinase coding domains of fibroblast growth factor receptor (FGFR) genes (FGFR1 or FGFR3) to the transforming acidic coiled-coil (TACC) coding domains of TACC1 or TACC3, respectively. The FGFR-TACC fusion protein displays oncogenic activity when introduced into astrocytes or stereotactically transduced in the mouse brain. The fusion protein, which localizes to mitotic spindle poles, has constitutive kinase activity and induces mitotic and chromosomal segregation defects and triggers aneuploidy. Inhibition of FGFR kinase corrects the aneuploidy, and oral administration of an FGFR inhibitor prolongs survival of mice harboring intracranial FGFR3-TACC3—initiated glioma. FGFR-TACC fusions could potentially identify a subset of GBM patients who would benefit from targeted FGFR kinase inhibition.
Journal Article
Derazantinib alone and with atezolizumab in metastatic urothelial carcinoma with activating FGFR aberrations
2024
Background
This Phase 1b/2 study assessed the efficacy in terms of objective response rate (ORR) of the FGFR1/2/3 kinase inhibitor derazantinib as monotherapy or in combination with atezolizumab in patients with metastatic urothelial cancer (mUC) and FGFR1-3 genetic aberrations (FGFR1-3GA).
Methods
This multicenter, open-label study comprised 5 substudies. In Substudies 1 and 5, patients with mUC with FGFR1–3GA received derazantinib monotherapy (300 mg QD in Substudy 1, 200 mg BID in Substudy 5). In Substudy 2, patients with any solid tumor received atezolizumab 1200 mg every 3 weeks plus derazantinib 200 or 300 mg QD. In Substudy 3, patients with mUC harboring FGFR1–3GA received derazantinib 200 mg BID plus atezolizumab 1200 mg every 3 weeks. In Substudy 4, patients with FGFR inhibitor-resistant mUC harboring FGFR1–3GA received derazantinib 300 mg QD monotherapy or derazantinib 300 mg QD plus atezolizumab 1200 mg every 3 weeks.
Results
The ORR for Substudies 1 and 5 combined was 4/49 (8.2%, 95% confidence interval = 2.3% to 19.6%), which was based on 4 partial responses. The ORR in Substudy 4 was 1/7 (14.3%, 95% confidence interval = 0.4% to 57.9%; 1 partial response for derazantinib 300 mg monotherapy, zero for derazantinib 300 mg plus atezolizumab 1200 mg). In Substudy 2, derazantinib 300 mg plus atezolizumab 1200 mg was identified as a recommended dose for Phase 2. Only 2 patients entered Substudy 3.
Conclusions
Derazantinib as monotherapy or in combination with atezolizumab was well-tolerated but did not show sufficient efficacy to warrant further development in mUC.
Clinicaltrials.gov NCT04045613, EudraCT 2019-000359-15
Journal Article
FGF-2 Attenuates Neuronal Apoptosis via FGFR3/PI3k/Akt Signaling Pathway After Subarachnoid Hemorrhage
by
Travis, Zachary D.
,
Suzuki, Hidenori
,
Enkhjargal, Budbazar
in
1-Phosphatidylinositol 3-kinase
,
Administration, Intranasal
,
AKT protein
2019
Neuronal apoptosis is a common and critical pathology following subarachnoid hemorrhage (SAH). We investigated the anti-apoptotic property of fibroblast growth factor (FGF)-2 after SAH in rats. A total of 289 rats underwent endovascular perforation to induce SAH or sham operation. Three dosages (3, 9, or 27 μg) of recombinant FGF-2 (rFGF-2) or vehicle was administered intranasally to rats 30 min after SAH induction. The pan-FGF receptor (FGFR) inhibitor PD173074 or vehicle was administered intracerebroventricularly (i.c.v.) 1 h before modeling, in addition to rFGF-2 treatment. Small interfering ribonucleic acid (siRNA) for FGFR1 and FGFR3 or scrambled siRNA was administered i.c.v. 48 h before SAH induction in addition to rFGF-2 treatment. Anti-FGF-2 neutralizing antibody or normal mouse immunoglobulin G (IgG) was administered i.c.v. 1 h before SAH model. Neurobehavioral tests, SAH severity, brain water content, immunofluorescence, Fluoro-Jade C, TUNEL staining, and western blot were evaluated. The expression of FGF-2, FGFR1, and FGFR3 increased after SAH. FGFR1 and FGFR3 were expressed in the neurons. Nine micrograms of FGF-2 alleviated neurological impairments, brain edema, and neuronal apoptosis following SAH. A rFGF-2 treatment improved motor skill learning and spatial memory and increased the number of surviving neurons postinjury to 28 days after SAH. PD173074 abolished the anti-apoptotic effects of rFGF-2 via suppression of the expression of PI3k, phosphorylated Akt (p-Akt), and Bcl-2 leading to enhancement of the expression of Bax. FGFR3 siRNA worsened neurobehavioral function and suppressed the expression of PI3k, p-Akt, and Bcl-2 rather than FGFR1 siRNA in SAH rats treated with rFGF-2. Anti-FGF-2 neutralizing antibody suppressed the expression of PI3k and p-Akt after SAH. FGF-2 may be a promising therapy to reduce post-SAH neuronal apoptosis via activation of the FGFR3/PI3k/Akt signaling pathway.
Journal Article
Fgfr3 enhancer deletion markedly improves all skeletal features in a mouse model of achondroplasia
by
Angelozzi, Marco
,
Lefebvre, Véronique
,
Karvande, Anirudha
in
Achondroplasia
,
Achondroplasia - genetics
,
Achondroplasia - metabolism
2025
Achondroplasia, the most prevalent short-stature disorder, is caused by missense variants overactivating the fibroblast growth factor receptor 3 (FGFR3). As current surgical and pharmaceutical treatments only partially improve some disease features, we sought to explore a genetic approach. We show that an enhancer located 29 kb upstream of mouse Fgfr3 ( –29E ) is sufficient to confer a transgenic mouse reporter with a domain of expression in cartilage matching that of Fgfr3 . Its CRISPR/Cas9-mediated deletion in otherwise WT mice reduced Fgfr3 expression in this domain by half without causing adverse phenotypes. Importantly, its deletion in mice harboring the ortholog of the most common human achondroplasia variant largely normalized long bone and vertebral body growth, markedly reduced spinal canal and foramen magnum stenosis, and improved craniofacial defects. Consequently, mouse achondroplasia is no longer lethal, and adults are overall healthy. These findings, together with high conservation of –29E in humans, open a path to develop genetic therapies for people with achondroplasia.
Journal Article
MicroRNA-mediated downregulation of mTOR/FGFR3 controls tumor growth induced by Src-related oncogenic pathways
2011
The tyrosine kinase c-Src is upregulated in various human cancers, but the molecular mechanisms underlying c-Src-mediated tumor growth remain unclear. Here we examined the involvement of microRNAs in the c-Src-mediated tumor growth. Microarray profiling revealed that c-Src activation downregulates a limited set of microRNAs, including miR-99a, which targets oncogenic mammalian target of rapamycin (mTOR) and fibroblast growth factor receptor 3 (FGFR3). Re-expression of miR-99a suppressed tumor growth of c-Src-transformed cells, and this effect was restored by the overexpression of mTOR. The downregulation of miR-99a was also observed in epidermal growth factor- and Ras-transformed cells, and it was suppressed by inhibiting the mitogen-activated protein kinase (MAPK) pathway. Furthermore, miR-99a downregulation is associated with mTOR/FGFR3 upregulation in various human lung cancer cells/tissues. The tumorigenicity of these cells was suppressed by the introduction of miR-99a. These findings suggest that the miR-99a-mTOR/FGFR3 pathway is crucial for controlling tumor growth in a wide range of human cancers that harbor upregulation of the Src-related oncogenic pathways.
Journal Article
FGF-dependent metabolic control of vascular development
2017
Fibroblast growth factor receptor (FGFR) signalling is a crucial regulator of endothelial metabolism and vascular development.
The role of fibroblasts in vascular development
The development of blood vessel networks involves the growth and spread of endothelial cells. Recent studies suggest that these processes are affected by changes in cellular metabolism, but the role of fibroblast growth factors (FGFs) is poorly understood. Michael Simons and colleagues identify FGF receptor signalling as a crucial regulator of vascular development andendothelial cell proliferation in adult tissues. They explore the molecular basis of this effect and find that FGFs control endothelial cell glycolysis through MYC-dependent regulation of hexokinase 2 expression. The authors suggest that understanding this pathway may guide investigations into targeted therapies for diseases associated with irregular vascular growth.
Blood and lymphatic vasculatures are intimately involved in tissue oxygenation and fluid homeostasis maintenance. Assembly of these vascular networks involves sprouting, migration and proliferation of endothelial cells. Recent studies have suggested that changes in cellular metabolism are important to these processes
1
. Although much is known about vascular endothelial growth factor (VEGF)-dependent regulation of vascular development and metabolism
2
,
3
, little is understood about the role of fibroblast growth factors (FGFs) in this context
4
. Here we identify FGF receptor (FGFR) signalling as a critical regulator of vascular development. This is achieved by FGF-dependent control of c-MYC (MYC) expression that, in turn, regulates expression of the glycolytic enzyme hexokinase 2 (HK2). A decrease in HK2 levels in the absence of FGF signalling inputs results in decreased glycolysis, leading to impaired endothelial cell proliferation and migration. Pan-endothelial- and lymphatic-specific
Hk2
knockouts phenocopy blood and/or lymphatic vascular defects seen in
Fgfr1
/
Fgfr3
double mutant mice, while HK2 overexpression partly rescues the defects caused by suppression of FGF signalling. Thus, FGF-dependent regulation of endothelial glycolysis is a pivotal process in developmental and adult vascular growth and development.
Journal Article
In vitro and in vivo characterization of Recifercept, a soluble fibroblast growth factor receptor 3, as treatment for achondroplasia
by
Czech, Christian
,
Hartmann, Guido
,
Rignol, Guylène
in
Achondroplasia
,
Achondroplasia - drug therapy
,
Achondroplasia - genetics
2020
Achondroplasia is a rare genetic disorder caused by mutations in the Fibroblast Growth Factor receptor 3 (FGFR3). These mutations lead to aberrant increase of inhibitory signaling in proliferating chondrocytes at the growth plate. Recifercept is a potential treatment for this disease using a decoy approach to sequester FGFR3 ligands subsequently normalizing activation of the mutated FGFR3 receptor. Recifercept binds to FGF isoforms in vitro and in cellular model systems and reduces FGFR3 signaling. In addition, in a transgenic mouse model of achondroplasia, Recifercept restores reduced body weight and long bone growth in these mice. These data suggest that Recifercept treatment could lead to clinical benefits in children treated with this molecule.
Journal Article
Identification of natural FGFR3 inhibitor for glioma using integrated computational and microRNA regulatory analysis
2026
Glioblastoma is an aggressive and treatment-resistant brain tumor with poor prognosis, frequently driven by aberrant activation of receptor tyrosine kinases such as fibroblast growth factor receptor 3 (FGFR3). Genetic alterations including FGFR3–TACC3 fusions and post-transcriptional deregulation mediated by tumor-suppressive microRNAs (miR-99a and miR-100) contribute to sustained FGFR3 signaling, glioma progression, and therapeutic resistance. In this study, a structure-based computational pipeline was employed to identify natural inhibitors targeting FGFR3. A phytochemical library comprising 25 plant-derived compounds was screened using ADME criteria, resulting in seven candidates with favorable gastrointestinal absorption and drug-likeness. Among them, Guggulsterone emerged as the top-ranked compound, exhibiting the highest docking affinity (− 10.1 kcal/mol) toward the FGFR3 kinase domain and forming stable hydrogen bonding and hydrophobic interactions with key active-site residues. The FGFR3 structure used showed high stereochemical quality (ERRAT score: 96.5; 93% residues in favored Ramachandran regions). Molecular dynamics simulations (500 ns) demonstrated stable complex formation, with RMSD convergence after 40 ns, low RMSF values, and consistent radius of gyration (1.96–2.04 nm). Persistent intermolecular hydrogen bonds (two to four) and stable solvent accessibility were observed throughout the simulation. MMGBSA binding free energy calculations predicted a favorable interaction (ΔG
total
= − 30.44 kcal/mol), primarily driven by van der Waals and electrostatic contributions. Pharmacophore analysis revealed two hydrogen bond acceptors and seven hydrophobic features, while density functional theory calculations indicated moderate chemical reactivity (HOMO–LUMO gap: 0.1797 a.u.). Toxicity assessment using ProTox 3.0 classified Guggulsterone as low-toxic (LD
50
= 2300 mg/kg, Class 5). Collectively, these
in-silico
findings suggest Guggulsterone as a promising natural FGFR3-binding scaffold warranting further experimental validation in FGFR3-driven glioma models.
Journal Article
Cell-free expression and SMA copolymer encapsulation of a functional receptor tyrosine kinase disease variant, FGFR3-TACC3
by
Breeze, Alexander L.
,
Muench, Stephen P.
,
Snow, Alexander J. D.
in
631/45/275
,
631/45/612/1237
,
Cell-free
2025
Despite their high clinical relevance, obtaining structural and biophysical data on transmembrane proteins has been hindered by challenges involved in their expression and extraction in a homogeneous, functionally-active form. The inherent enzymatic activity of receptor tyrosine kinases (RTKs) presents additional challenges. Oncogenic fusions of RTKs with heterologous partners represent a particularly difficult-to-express protein subtype due to their high flexibility, aggregation propensity and the lack of a known method for extraction within the native lipid environment. One such protein is the fibroblast growth factor receptor 3 fused with transforming acidic coiled-coil-containing protein 3 (FGFR3-TACC3), which has failed to express to sufficient quality or functionality in traditional expression systems. Cell-free protein expression (CFPE) is a burgeoning arm of synthetic biology, enabling the rapid and efficient generation of recombinant proteins. This platform is characterised by utilising an optimised solution of cellular machinery to facilitate protein synthesis in vitro. In doing so, CFPE can act as a surrogate system for a range of proteins that are otherwise difficult to express through traditional host cell-based approaches. Here, functional FGFR3-TACC3 was expressed through a novel cell-free expression system in under 48 h. The resultant protein was reconstituted using SMA copolymers with a specific yield of 300 µg/mL of lysate. Functionally, the protein demonstrated significant kinase domain phosphorylation (
t
<
0.0001
). Currently, there is no published, high-resolution structure of any full-length RTK. These findings form a promising foundation for future research on oncogenic RTKs and the application of cell-free systems for synthesising functional membrane proteins.
Journal Article
FGFR inhibitors promote the autophagic degradation of IFN-γ-induced PD-L1 and alleviate the PD-L1-mediated transcriptional suppression of FGFR3-TACC3 in non-muscle-invasive bladder cancer
2025
Bladder cancer (BC) is the second most prevalent genitourinary malignancy worldwide. Treatment options remain limited for patients with Bacillus Calmette–Guérin (BCG)-unresponsive non-muscle-invasive bladder cancer (NMIBC). Up to 70% of NMIBC cases harbor fibroblast growth factor receptor 3 (FGFR3) alterations, and FGFR inhibition has shown potential to enhance the efficacy of immune checkpoint inhibitor (ICI). Interferon (IFN)-γ, a cytokine produced by activated T cells and associated with better response to immunotherapy in BC, is a key inducer of PD-L1 expression in the tumor microenvironment. However, the interaction between FGFR inhibitors and IFN-γ-induced PD-L1 expression in FGFR3-activated NMIBC cells remains unclear. Here, we show that FGFR inhibitors significantly reduced IFN-γ-induced PD-L1 expression in NMIBC cells harboring
FGFR3-TACC3
fusions. Mechanistically, FGFR inhibitors restored IFN-γ-suppressed SIRT1 expression, promoted LC3B deacetylation and nuclear export, and enhanced autophagy-lysosomal degradation of PD-L1. Blocking autophagy, overexpression SIGMAR1, or inhibiting lysosomal activity significantly reversed PD-L1 degradation. Notably, we demonstrate for the first time that IFN-γ-induced PD-L1 directly binds to the FGFR3 promoter and represses
FGFR3-TACC3
transcription–an effect that can be rescued by FGFR inhibitors or PD-L1 knockdown. Functionally, FGFR inhibitors ameliorated PD1/PD-L1-mediated T cell suppression in co-culture assays. Together, these findings highlight a novel mechanism by which FGFR inhibitors suppress IFN-γ-induced PD-L1 via autophagy and suggest a potential strategy to improve ICI therapy in FGFR3-altered NMIBC.
Journal Article