CSF1R signaling is a regulator of pathogenesis in progressive MS
Nellwyn Hagan1, John L Kane2, Deepak Grover3
1Sanofi, Neuroscience, 49 New York Ave, Framingham, MA, 01701, USA. Nellwyn.Hagan@sanofi.com.
Abstract:
Microglia serve as the innate immune cells of the central nervous system (CNS) by providing continuous surveillance of the CNS microenvironment and initiating defense mechanisms to protect CNS tissue. Upon injury, microglia transition into an activated state altering their transcriptional profile, transforming their morphology, and producing pro-inflammatory cytokines. These activated microglia initially serve a beneficial role, but their continued activation drives neuroinflammation and neurodegeneration. Multiple sclerosis (MS) is a chronic, inflammatory, demyelinating disease of the CNS, and activated microglia and macrophages play a significant role in mediating disease pathophysiology and progression. Colony-stimulating factor-1 receptor (CSF1R) and its ligand CSF1 are elevated in CNS tissue derived from MS patients. We performed a large-scale RNA-sequencing experiment and identified CSF1R as a key node of disease progression in a mouse model of progressive MS. We hypothesized that modulating microglia and infiltrating macrophages through the inhibition of CSF1R will attenuate deleterious CNS inflammation and reduce subsequent demyelination and neurodegeneration. To test this hypothesis, we generated a novel potent and selective small-molecule CSF1R inhibitor (sCSF1Rinh) for preclinical testing. sCSF1Rinh blocked receptor phosphorylation and downstream signaling in both microglia and macrophages and altered cellular functions including proliferation, survival, and cytokine production. In vivo, CSF1R inhibition with sCSF1Rinh attenuated neuroinflammation and reduced microglial proliferation in a murine acute LPS model. Furthermore, the sCSF1Rinh attenuated a disease-associated microglial phenotype and blocked both axonal damage and neurological impairments in an experimental autoimmune encephalomyelitis (EAE) model of MS. While previous studies have focused on microglial depletion following CSF1R inhibition, our data clearly show that signaling downstream of this receptor can be beneficially modulated in the context of CNS injury. Together, these data suggest that CSF1R inhibition can reduce deleterious microglial proliferation and modulate microglial phenotypes during neuroinflammatory pathogenesis, particularly in progressive MS.
Insights
Inhibiting Colony-stimulating factor-1 receptor (CSF1R) with a novel small molecule attenuated neuroinflammation and microglial proliferation in mouse models of multiple sclerosis (MS). This approach reduced axonal damage and neurological deficits, offering a potential therapeutic strategy for MS.
Area of Science:
- Neuroimmunology
- Central Nervous System (CNS) Innate Immunity
- Neuroinflammation and Neurodegeneration
Background:
- Microglia are CNS innate immune cells crucial for surveillance and defense, but their sustained activation drives neuroinflammation and neurodegeneration.
- Activated microglia and macrophages significantly contribute to the pathophysiology and progression of multiple sclerosis (MS).
- Elevated Colony-stimulating factor-1 receptor (CSF1R) and CSF1 levels are observed in CNS tissue from MS patients.
Purpose of the Study:
- To investigate the therapeutic potential of inhibiting CSF1R to modulate microglia and macrophages in CNS inflammation.
- To test the hypothesis that CSF1R inhibition can attenuate neuroinflammation, demyelination, and neurodegeneration in MS models.
- To evaluate a novel small-molecule CSF1R inhibitor (sCSF1Rinh) for preclinical testing.
Main Methods:
- Large-scale RNA-sequencing identified CSF1R as a key factor in a progressive MS mouse model.
- Developed and utilized a novel potent and selective small-molecule CSF1R inhibitor (sCSF1Rinh).
- Assessed sCSF1Rinh's effects on receptor signaling, cellular functions, neuroinflammation, microglial proliferation, axonal damage, and neurological impairments in murine LPS and EAE models.
Main Results:
- sCSF1Rinh effectively blocked CSF1R phosphorylation and downstream signaling in microglia and macrophages, altering cellular functions.
- In vivo, sCSF1Rinh attenuated neuroinflammation and reduced microglial proliferation in an acute LPS model.
- sCSF1Rinh treatment reduced disease-associated microglial phenotypes, blocked axonal damage, and ameliorated neurological impairments in an EAE model of MS.
Conclusions:
- CSF1R inhibition beneficially modulates microglial and macrophage signaling in the context of CNS injury.
- sCSF1Rinh demonstrated efficacy in reducing deleterious microglial proliferation and modulating microglial phenotypes in neuroinflammatory pathogenesis.
- Targeting CSF1R represents a promising therapeutic strategy for progressive MS and other neuroinflammatory CNS diseases.
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