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Published on: July 16, 2021
Role of Rho Kinase and Fasudil on Synaptic Plasticity in Multiple Sclerosis
Chan Chen1,2, Jie-Zhong Yu3, Qiong Zhang1
1Institute of Neurology, Huashan Hospital, Institutes of Brain Science and State Key Laboratory of Medical Neurobiology, Fudan University, 12 Middle Wulumuqi Road, Shanghai, China.
Abstract:
In addition to myelin loss and oligodendrocyte injury, axonal damage is a major cause of irreversible neurological disability in multiple sclerosis (MS). A series of studies have demonstrated that Rho kinase (ROCK) is involved in synaptic plasticity of neurons. Here, we found that ROCK activity in MS serum was elevated compared with serum from healthy controls. In experimental autoimmune encephalomyelitis (EAE), ROCK activity was also increased in serum, spleen, brain and spinal cord. Neuron injury with scratch and TNF-α stimulation induced the up-regulation of ROCK activity. When serum of MS patients was co-cultured with mouse cortical neurons in vitro, MS serum caused neurite shortening and reduction of cell viability, while the addition of Fasudil partially restored synaptic morphology of neurons, revealing that MS sera inhibited neurite outgrowth and synapse formation. The expression of synaptophysin was decreased in MS serum-neurons, and elevated in the presence of Fasudil. In contrast, the expression of phosphorylated collapsin response mediator protein-2 (CRMP-2) was elevated in MS serum-neurons and decreased in the presence of Fasudil. However, the addition of anti-ROCK I/II mixed antibodies in MS serum partially declined ROCK activity, but did not improve neurite outgrowth of neurons, revealing that Fasudil should prevent synaptic damage possibly through inhibiting intracellular ROCK activation mediated with MS serum. Our results indicate that axonal loss in MS may be related to increased ROCK activity. Fasudil could promote synaptogenesis and thus may contribute to preventing irreversible neurological disability associated with MS.
Insights
Elevated Rho kinase (ROCK) activity in multiple sclerosis (MS) serum damages neurons. The drug Fasudil may protect against this axonal damage by inhibiting ROCK, potentially preventing irreversible neurological disability in MS patients.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Axonal damage is a primary cause of irreversible neurological disability in multiple sclerosis (MS).
- Rho kinase (ROCK) plays a role in neuronal synaptic plasticity.
- ROCK activity is elevated in MS patients and in an experimental autoimmune encephalomyelitis (EAE) model.
Purpose of the Study:
- To investigate the role of ROCK activity in MS-related axonal damage.
- To evaluate the therapeutic potential of ROCK inhibition (Fasudil) in MS.
Main Methods:
- Measured ROCK activity in serum from MS patients and healthy controls.
- Assessed ROCK activity in various tissues during EAE.
- Co-cultured mouse cortical neurons with MS serum and Fasudil.
- Analyzed neurite outgrowth, cell viability, and expression of synaptophysin and phosphorylated CRMP-2.
Main Results:
- ROCK activity was significantly higher in MS serum and EAE tissues compared to controls.
- MS serum reduced neurite outgrowth and neuronal viability, which Fasudil partially reversed.
- Fasudil treatment increased synaptophysin and decreased phosphorylated CRMP-2 expression.
- Anti-ROCK antibodies partially reduced ROCK activity but did not improve neurite outgrowth.
Conclusions:
- Increased ROCK activity in MS serum contributes to axonal damage and neurite dysfunction.
- Fasudil may protect against MS-related synaptic damage by inhibiting ROCK.
- ROCK inhibition shows potential for preventing irreversible neurological disability in MS.

