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Updated: Aug 4, 2025

Determining Immune System Suppression versus CNS Protection for Pharmacological Interventions in Autoimmune Demyelination
Published on: September 12, 2016
Monitoring recovery after CNS demyelination, a novel tool to de-risk pro-remyelinating strategies
Esther Henriet1, Elodie M Martin1, Pauline Jubin1
1Sorbonne Université, Inserm, CNRS, ICM-GH Pitié-Salpêtrière, F-75013 Paris, France.
Abstract:
In multiple sclerosis, while remarkable progress has been accomplished to control the inflammatory component of the disease, repair of demyelinated lesions is still an unmet need. Despite encouraging results generated in experimental models, several candidates favouring or promoting remyelination have not reached the expected outcomes in clinical trials. One possible reason for these failures is that, in most cases, during preclinical testing, efficacy was evaluated on histology only, while functional recovery had not been assessed. We have generated a Xenopus laevis transgenic model Tg(mbp:GFP-NTR) of conditional demyelination in which spontaneous remyelination can be accelerated using candidate molecules. Xenopus laevis is a classic model for in vivo studies of myelination because tadpoles are translucent. We reasoned that demyelination should translate into loss of sensorimotor functions followed by behavioural recovery upon remyelination. To this end, we measured the swimming speed and distance travelled before and after demyelination and during the ongoing spontaneous remyelination and have developed a functional assay based on the visual avoidance of a virtual collision. Here we show that alteration of these functional and clinical performances correlated well with the level of demyelination and that histological remyelination, assayed by counting in vivo the number of myelinating oligodendrocytes in the optic nerve, translated in clinical-functional recovery. This method was further validated in tadpoles treated with pro-remyelinating agents (clemastine, siponimod) showing that increased remyelination in the optic nerve was associated with functional improvement. Our data illustrate the potential interest of correlating histopathological parameters and functional-clinical parameters to screen molecules promoting remyelination in a simple in vivo model of conditional demyelination.
Insights
Researchers developed a new Xenopus laevis model to study remyelination in demyelinating diseases like multiple sclerosis. This model links histological repair with functional recovery, aiding the screening of pro-remyelination drugs.
Area of Science:
- Neuroscience
- Developmental Biology
- Regenerative Medicine
Background:
- Multiple sclerosis (MS) treatment has advanced in controlling inflammation, but repairing demyelinated lesions remains a significant challenge.
- Previous drug candidates for remyelination have shown limited success in clinical trials, potentially due to preclinical efficacy assessments focusing solely on histology without evaluating functional recovery.
Purpose of the Study:
- To develop and validate a Xenopus laevis transgenic model (Tg(mbp:GFP-NTR)) for conditional demyelination and assess remyelination efficacy.
- To establish functional assays that correlate with histological remyelination for improved preclinical screening of pro-remyelinating agents.
Main Methods:
- Generated a Xenopus laevis transgenic model for conditional demyelination.
- Assessed sensorimotor function using swimming speed, distance traveled, and a virtual collision avoidance assay.
- Quantified remyelination by counting myelinating oligodendrocytes in the optic nerve in vivo.
- Validated the model with pro-remyelinating agents (clemastine, siponimod).
Main Results:
- Functional and clinical performances in tadpoles correlated with the extent of demyelination.
- Histological remyelination in the optic nerve was directly linked to functional and clinical recovery.
- Treatment with clemastine and siponimod demonstrated improved remyelination and associated functional improvements.
Conclusions:
- The Xenopus laevis model provides a valuable platform for correlating histopathological and functional parameters in assessing remyelination.
- This approach can enhance the screening of molecules aimed at promoting myelin repair in demyelinating diseases.

