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Pharmacological targeting of coagulation factor XI attenuates experimental autoimmune encephalomyelitis in mice
Tia C L Kohs1, Meghan E Fallon2, Ethan C Oseas2
1Department of Biomedical Engineering, Oregon Health & Science University, 3303 S. Bond Avenue, Portland, OR, 97239, USA. kohst@ohsu.edu.
Abstract:
Multiple sclerosis (MS) is the most common causes of non-traumatic disability in young adults worldwide. MS pathophysiologies include the formation of inflammatory lesions, axonal damage and demyelination, and blood brain barrier (BBB) disruption. Coagulation proteins, including factor (F)XII, can serve as important mediators of the adaptive immune response during neuroinflammation. Indeed, plasma FXII levels are increased during relapse in relapsing-remitting MS patients, and previous studies showed that reducing FXII levels was protective in a murine model of MS, experimental autoimmune encephalomyelitis (EAE). Our objective was to determine if pharmacological targeting of FXI, a major substrate of activated FXII (FXIIa), improves neurological function and attenuates CNS damage in the setting of EAE. EAE was induced in male mice using murine myelin oligodendrocyte glycoprotein peptides combined with heat-inactivated Mycobacterium tuberculosis and pertussis toxin. Upon onset of symptoms, mice were treated every other day intravenously with anti-FXI antibody, 14E11, or saline. Disease scores were recorded daily until euthanasia for ex vivo analyses of inflammation. Compared to the vehicle control, 14E11 treatment reduced the clinical severity of EAE and total mononuclear cells, including CD11b+CD45high macrophage/microglia and CD4+ T cell numbers in brain. Following pharmacological targeting of FXI, BBB disruption was reduced, as measured by decreased axonal damage and fibrin(ogen) accumulation in the spinal cord. These data demonstrate that pharmacological inhibition of FXI reduces disease severity, immune cell migration, axonal damage, and BBB disruption in mice with EAE. Thus, therapeutic agents targeting FXI and FXII may provide a useful approach for treating autoimmune and neurologic disorders.
Insights
Targeting factor XI (FXI) with the 14E11 antibody reduced multiple sclerosis (MS) disease severity in mice. This treatment decreased central nervous system inflammation, axonal damage, and blood-brain barrier disruption, suggesting FXI as a therapeutic target.
Area of Science:
- Neuroscience
- Immunology
- Hematology
Background:
- Multiple sclerosis (MS) is a leading cause of non-traumatic disability in young adults.
- MS involves neuroinflammation, demyelination, axonal damage, and blood-brain barrier (BBB) disruption.
- Coagulation factor XII (FXII) plays a role in neuroinflammation, with elevated levels during MS relapse.
Purpose of the Study:
- To investigate the therapeutic potential of targeting coagulation factor XI (FXI) in a murine model of MS.
- To determine if pharmacological inhibition of FXI improves neurological function and reduces central nervous system (CNS) damage in experimental autoimmune encephalomyelitis (EAE).
Main Methods:
- Experimental autoimmune encephalomyelitis (EAE) was induced in male mice.
- Mice received intravenous anti-FXI antibody (14E11) or saline upon symptom onset.
- Clinical disease severity was monitored daily; ex vivo analyses assessed CNS inflammation and damage.
Main Results:
- Anti-FXI antibody treatment significantly reduced the clinical severity of EAE compared to vehicle control.
- Treatment decreased mononuclear cell infiltration in the brain, including macrophages/microglia and T cells.
- Pharmacological targeting of FXI reduced blood-brain barrier disruption, evidenced by decreased axonal damage and fibrin(ogen) accumulation.
Conclusions:
- Pharmacological inhibition of FXI effectively reduces disease severity and CNS damage in a murine model of MS.
- Targeting FXI ameliorates immune cell migration, axonal damage, and BBB disruption.
- Therapeutic strategies targeting FXI and FXII warrant further investigation for treating autoimmune and neurological disorders.

