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Determining Immune System Suppression versus CNS Protection for Pharmacological Interventions in Autoimmune Demyelination
Published on: September 12, 2016
Siponimod (BAF312) prevents synaptic neurodegeneration in experimental multiple sclerosis
Antonietta Gentile1,2, Alessandra Musella1, Silvia Bullitta1
1Laboratory of Neuroimmunology and Synaptic Transmission, IRCCS Fondazione Santa Lucia, Centro Europeo di Ricerca sul Cervello (CERC), 00143, Rome, Italy.
Background:
Data from multiple sclerosis (MS) and the MS rodent model, experimental autoimmune encephalomyelitis (EAE), highlighted an inflammation-dependent synaptopathy at the basis of the neurodegenerative damage causing irreversible disability in these disorders. This synaptopathy is characterized by an imbalance between glutamatergic and GABAergic transmission and has been proposed to be a potential therapeutic target. Siponimod (BAF312), a selective sphingosine 1-phosphate1,5 receptor modulator, is currently under investigation in a clinical trial in secondary progressive MS patients. We investigated whether siponimod, in addition to its peripheral immune modulation, may exert direct neuroprotective effects in the central nervous system (CNS) of mice with chronic progressive EAE.
Methods:
Minipumps allowing continuous intracerebroventricular (icv) infusion of siponimod for 4 weeks were implanted into C57BL/6 mice subjected to MOG35-55-induced EAE. Electrophysiology, immunohistochemistry, western blot, qPCR experiments, and peripheral lymphocyte counts were performed. In addition, the effect of siponimod on activated microglia was assessed in vitro to confirm the direct effect of the drug on CNS-resident immune cells.
Results:
Siponimod administration (0.45 μg/day) induced a significant beneficial effect on EAE clinical scores with minimal effect on peripheral lymphocyte counts. Siponimod rescued defective GABAergic transmission in the striatum of EAE, without correcting the EAE-induced alterations of glutamatergic transmission. We observed a significant attenuation of astrogliosis and microgliosis together with reduced lymphocyte infiltration in the striatum of EAE mice treated with siponimod. Interestingly, siponimod reduced the release of IL-6 and RANTES from activated microglial cells in vitro, which might explain the reduced lymphocyte infiltration. Furthermore, the loss of parvalbumin-positive (PV+) GABAergic interneurons typical of EAE brains was rescued by siponimod treatment, providing a plausible explanation of the selective effects of this drug on inhibitory synaptic transmission.
Conclusions:
Altogether, our results show that siponimod has neuroprotective effects in the CNS of EAE mice, which are likely independent of its peripheral immune effect, suggesting that this drug could be effective in limiting neurodegenerative pathological processes in MS.
Insights
Siponimod demonstrates neuroprotective effects in the central nervous system (CNS) by improving GABAergic transmission and reducing neuroinflammation in experimental autoimmune encephalomyelitis (EAE) mice. These findings suggest siponimod may offer benefits for multiple sclerosis (MS) patients beyond peripheral immune modulation.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Multiple sclerosis (MS) involves inflammation-dependent synaptopathy, leading to neurodegeneration and disability.
- This synaptopathy is characterized by an imbalance in glutamatergic and GABAergic transmission, presenting a therapeutic target.
- Siponimod, a selective sphingosine 1-phosphate receptor modulator, is under investigation for secondary progressive MS.
Purpose of the Study:
- To investigate the direct neuroprotective effects of siponimod within the central nervous system (CNS) of mice with chronic progressive experimental autoimmune encephalomyelitis (EAE).
- To determine if siponimod's effects extend beyond peripheral immune modulation in the context of EAE.
Main Methods:
- Intracerebroventricular (icv) infusion of siponimod in MOG35-55-induced EAE mice.
- Electrophysiology, immunohistochemistry, western blot, and qPCR were employed.
- In vitro assessment of siponimod's effect on activated microglia.
Main Results:
- Siponimod treatment improved EAE clinical scores with minimal impact on peripheral lymphocytes.
- It rescued defective GABAergic transmission and rescued parvalbumin-positive interneurons in EAE mice.
- Siponimod reduced microgliosis, astrogliosis, and IL-6/RANTES release from activated microglia.
Conclusions:
- Siponimod exhibits neuroprotective effects in the CNS of EAE mice, likely independent of peripheral immune modulation.
- These CNS-specific effects suggest siponimod's potential to mitigate neurodegenerative processes in MS.
- The drug's ability to restore GABAergic transmission and reduce neuroinflammation highlights its therapeutic promise.
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