Related Experiment Video
Updated: Feb 22, 2026

Author Spotlight: Novel Assay for Studying B-Cell Responses in Multiple Sclerosis Research
Published on: December 1, 2023
The Emerging Role of Zinc in the Pathogenesis of Multiple Sclerosis
Bo Young Choi1, Jong Won Jung2, Sang Won Suh3
1Department of Physiology, Hallym University, College of Medicine, Chuncheon 24252, Korea. bychoi@hallym.ac.kr.
Abstract:
Our lab has previously demonstrated that multiple sclerosis-induced spinal cord white matter damage and motor deficits are mediated by the pathological disruption of zinc homeostasis. Abnormal vesicular zinc release and intracellular zinc accumulation may mediate several steps in the pathophysiological processes of multiple sclerosis (MS), such as matrix metallopeptidase 9 (MMP-9) activation, blood-brain barrier (BBB) disruption, and subsequent immune cell infiltration from peripheral systems. Oral administration of a zinc chelator decreased BBB disruption, immune cell infiltration, and spinal white matter myelin destruction. Therefore, we hypothesized that zinc released into the extracellular space during MS progression is involved in destruction of the myelin sheath in spinal cord white mater and in generation of motor deficits. To confirm our previous study, we employed zinc transporter 3 (ZnT3) knockout mice to test whether vesicular zinc depletion shows protective effects on multiple sclerosis-induced white matter damage and motor deficits. ZnT3 gene deletion profoundly reduced the daily clinical score of experimental autoimmune encephalomyelitis (EAE) by suppression of inflammation and demyelination in the spinal cord. ZnT3 gene deletion also remarkably inhibited formation of multiple sclerosis-associated aberrant synaptic zinc patches, MMP-9 activation, and BBB disruption. These two studies strongly support our hypothesis that zinc release from presynaptic terminals may be involved in multiple sclerosis pathogenesis. Further studies will no doubt continue to add mechanistic detail to this process and with luck, clarify how these observations may lead to development of novel therapeutic approaches for the treatment of multiple sclerosis.
Insights
Zinc dysregulation contributes to multiple sclerosis (MS) pathogenesis. Depleting vesicular zinc via ZnT3 gene deletion protected against MS-induced spinal cord damage and motor deficits in mice.
Area of Science:
- Neuroscience
- Immunology
- Biochemistry
Background:
- Multiple sclerosis (MS) involves spinal cord white matter damage and motor deficits, linked to disrupted zinc homeostasis.
- Pathological zinc release and accumulation may drive MS processes like matrix metallopeptidase 9 (MMP-9) activation, blood-brain barrier (BBB) disruption, and immune cell infiltration.
Purpose of the Study:
- To investigate the role of extracellular zinc in MS-induced myelin sheath destruction and motor deficits.
- To confirm previous findings showing zinc chelators reduce MS pathology.
- To test the hypothesis that vesicular zinc depletion protects against MS-induced damage.
Main Methods:
- Utilized zinc transporter 3 (ZnT3) knockout mice, which have depleted vesicular zinc.
- Induced experimental autoimmune encephalomyelitis (EAE) to model MS in wild-type and ZnT3 knockout mice.
- Assessed clinical scores, spinal cord inflammation, demyelination, synaptic zinc patches, MMP-9 activation, and BBB integrity.
Main Results:
- ZnT3 gene deletion significantly reduced EAE clinical scores, indicating protection against MS-like disease.
- Vesicular zinc depletion suppressed spinal cord inflammation and demyelination.
- ZnT3 knockout mice showed inhibited formation of aberrant synaptic zinc patches, reduced MMP-9 activation, and decreased BBB disruption.
Conclusions:
- Zinc released from presynaptic terminals plays a critical role in multiple sclerosis pathogenesis.
- Vesicular zinc depletion via ZnT3 deletion demonstrates a protective effect against MS-induced white matter damage and motor deficits.
- These findings support targeting zinc homeostasis as a potential therapeutic strategy for multiple sclerosis.

