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Published on: August 15, 2012
The FGFR inhibitor Rogaratinib reduces microglia reactivity and synaptic loss in TBI
Rida Rehman1,2, Albrecht Froehlich1, Florian Olde Heuvel1
1Department of Neurology, Ulm University, Ulm, Germany.
Background:
Traumatic brain injury (TBI) induces an acute reactive state of microglia, which contribute to secondary injury processes through phagocytic activity and release of cytokines. Several receptor tyrosine kinases (RTK) are activated in microglia upon TBI, and their blockade may reduce the acute inflammation and decrease the secondary loss of neurons; thus, RTKs are potential therapeutic targets. We have previously demonstrated that several members of the Fibroblast Growth Factor Receptor (FGFR) family are transiently phosporylated upon TBI; the availability for drug repurposing of FGFR inhibitors makes worthwhile the elucidation of the role of FGFR in the acute phases of the response to TBI and the effect of FGFR inhibition.
Methods:
A closed, blunt, weight-drop mild TBI protocol was employed. The pan-FGFR inhibitor Rogaratinib was administered to mice 30min after the TBI and daily up to 7 days post injury. Phosphor-RTK Arrays and proteomic antibody arrays were used to determine target engagement and large-scale impact of the FGFR inhibitor. pFGFR1 and pFGFR3 immunostaining were employed for validation. As outcome parameters of the TBI injury immunostainings for NeuN, VGLUT1, VGAT at 7dpi were considered.
Results:
Inhibition of FGFR during TBI restricted phosphorylation of FGFR1, FGFR3, FGFR4 and ErbB4. Phosphorylation of FGFR1 and FGFR3 during TBI was traced back to Iba1+ microglia. Rogaratinib substantially dowregulated the proteomic signature of the neuroimmunological response to trauma, including the expression of CD40L, CXCR3, CCL4, CCR4, ILR6, MMP3 and OPG. Prolonged Rogaratinib treatment reduced neuronal loss upon TBI and prevented the loss of excitatory (vGLUT+) synapses.
Conclusion:
The FGFR family is involved in the early induction of reactive microglia in TBI. FGFR inhibition selectively prevented FGFR phosphorylation in the microglia, dampened the overall neuroimmunological response and enhanced the preservation of neuronal and synaptic integrity. Thus, FGFR inhibitors may be relevant targets for drug repurposing aimed at modulating microglial reactivity in TBI.
Insights
Fibroblast Growth Factor Receptor (FGFR) inhibition in traumatic brain injury (TBI) reduces microglial activation and neuroinflammation. This approach preserves neuronal and synaptic integrity, offering a potential therapeutic strategy for TBI recovery.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Traumatic brain injury (TBI) triggers microglial activation, contributing to secondary injury through inflammation and phagocytosis.
- Receptor tyrosine kinases (RTKs), including Fibroblast Growth Factor Receptors (FGFRs), are activated in microglia post-TBI and represent potential therapeutic targets.
- FGFR inhibitors are available for drug repurposing, making the study of FGFRs in TBI crucial.
Purpose of the Study:
- To investigate the role of the FGFR family in the acute microglial response to TBI.
- To evaluate the therapeutic potential of FGFR inhibition in mitigating TBI-induced neuroinflammation and neuronal loss.
Main Methods:
- A mild TBI model was induced using a closed, blunt, weight-drop method in mice.
- The pan-FGFR inhibitor Rogaratinib was administered 30 minutes post-TBI and daily for 7 days.
- Phosphor-RTK Arrays, proteomic antibody arrays, and immunostaining (pFGFR1, pFGFR3, NeuN, VGLUT1, VGAT) were used to assess target engagement and injury outcomes.
Main Results:
- FGFR inhibition by Rogaratinib restricted phosphorylation of FGFR1, FGFR3, FGFR4, and ErbB4, with FGFR1 and FGFR3 phosphorylation localized to microglia.
- Rogaratinib significantly downregulated the expression of key neuroinflammatory markers (e.g., CD40L, CXCR3, CCL4, IL6).
- Treatment with Rogaratinib reduced neuronal loss and prevented the loss of excitatory synapses following TBI.
Conclusions:
- The FGFR family plays a significant role in the early reactive microglial response to TBI.
- FGFR inhibition selectively targets microglia, dampens the neuroinflammatory response, and preserves neuronal and synaptic integrity.
- FGFR inhibitors show promise as repurposed drugs for modulating microglial reactivity and treating TBI.
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