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Determining Immune System Suppression versus CNS Protection for Pharmacological Interventions in Autoimmune Demyelination
Published on: September 12, 2016
Siponimod Attenuates Neuronal Cell Death Triggered by Neuroinflammation via NFκB and Mitochondrial Pathways
Mikel Gurrea-Rubio1, Qin Wang2,3, Elizabeth A Mills2
1Division of Rheumatology, Department of Internal Medicine, University of Michigan, Ann Arbor, MI 48109, USA.
Abstract:
Multiple sclerosis (MS) is the most common autoimmune demyelinating disease of the central nervous system (CNS), consisting of heterogeneous clinical courses varying from relapsing-remitting MS (RRMS), in which disability is linked to bouts of inflammation, to progressive disease such as primary progressive MS (PPMS) and secondary progressive MS (SPMS), in which neurological disability is thought to be linked to neurodegeneration. As a result, successful therapeutics for progressive MS likely need to have both anti-inflammatory and direct neuroprotective properties. The modulation of sphingosine-1-phosphate (S1P) receptors has been implicated in neuroprotection in preclinical animal models. Siponimod/BAF312, the first oral treatment approved for SPMS, may have direct neuroprotective benefits mediated by its activity as a selective (S1P receptor 1) S1P1 and (S1P receptor 5) S1P5 modulator. We showed that S1P1 was mainly present in cortical neurons in lesioned areas of the MS brain. To gain a better understanding of the neuroprotective effects of siponimod in MS, we used both rat neurons and human-induced pluripotent stem cell (iPSC)-derived neurons treated with the neuroinflammatory cytokine tumor necrosis factor-alpha (TNF-α). Cell survival/apoptotic assays using flow cytometry and IncuCyte live cell analyses showed that siponimod decreased TNF-α induced neuronal cell apoptosis in both rat and human iPSCs. Importantly, a transcriptomic analysis revealed that mitochondrial oxidative phosphorylation, NFκB and cytokine signaling pathways contributed to siponimod's neuroprotective effects. Our data suggest that the neuroprotection of siponimod/BAF312 likely involves the relief of oxidative stress in neuronal cells. Further studies are needed to explore the molecular mechanisms of such interactions to determine the relationship between mitochondrial dysfunction and neuroinflammation/neurodegeneration.
Insights
Siponimod, an oral treatment for progressive multiple sclerosis (MS), demonstrates neuroprotective effects by reducing neuronal cell death. Its mechanism involves modulating sphingosine-1-phosphate receptors and relieving oxidative stress in brain cells.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Multiple sclerosis (MS) is a CNS autoimmune demyelinating disease with varied clinical courses, including progressive forms linked to neurodegeneration.
- Effective treatments for progressive MS require both anti-inflammatory and neuroprotective actions.
- Sphingosine-1-phosphate (S1P) receptor modulation shows promise for neuroprotection in preclinical MS models.
Purpose of the Study:
- To investigate the direct neuroprotective effects of siponimod (BAF312) in multiple sclerosis (MS).
- To understand the molecular mechanisms underlying siponimod's neuroprotection, particularly its role as an S1P1 and S1P5 receptor modulator.
Main Methods:
- Utilized rat and human induced pluripotent stem cell (iPSC)-derived neurons exposed to tumor necrosis factor-alpha (TNF-α).
- Assessed cell survival and apoptosis using flow cytometry and IncuCyte live cell analysis.
- Performed transcriptomic analysis to identify molecular pathways involved in siponimod's effects.
Main Results:
- Siponimod significantly decreased TNF-α-induced neuronal apoptosis in both rat and human iPSC-derived neurons.
- Transcriptomic analysis indicated that mitochondrial oxidative phosphorylation, NFκB, and cytokine signaling pathways are implicated in siponimod's neuroprotective action.
- Siponimod's neuroprotection appears to involve the alleviation of oxidative stress in neuronal cells.
Conclusions:
- Siponimod exhibits direct neuroprotective properties against inflammatory insults in neuronal cells relevant to MS.
- The drug's mechanism may involve the regulation of mitochondrial function and oxidative stress pathways.
- Further research is warranted to elucidate the intricate molecular interactions between mitochondrial dysfunction, neuroinflammation, and neurodegeneration in MS treatment.

