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Progesterone antagonist therapy in a Pelizaeus-Merzbacher mouse model
Thomas Prukop1, Dirk B Epplen1, Tobias Nientiedt1
1Department of Neurogenetics, Max-Planck-Institute of Experimental Medicine, 37075 Göttingen, Germany.
Abstract:
Pelizaeus-Merzbacher disease (PMD) is a severe hypomyelinating disease, characterized by ataxia, intellectual disability, epilepsy, and premature death. In the majority of cases, PMD is caused by duplication of PLP1 that is expressed in myelinating oligodendrocytes. Despite detailed knowledge of PLP1, there is presently no curative therapy for PMD. We used a Plp1 transgenic PMD mouse model to test the therapeutic effect of Lonaprisan, an antagonist of the nuclear progesterone receptor, in lowering Plp1 mRNA overexpression. We applied placebo-controlled Lonaprisan therapy to PMD mice for 10 weeks and performed the grid slip analysis to assess the clinical phenotype. Additionally, mRNA expression and protein accumulation as well as histological analysis of the central nervous system were performed. Although Plp1 mRNA levels are increased 1.8-fold in PMD mice compared to wild-type controls, daily Lonaprisan treatment reduced overexpression at the RNA level to about 1.5-fold, which was sufficient to significantly improve the poor motor phenotype. Electron microscopy confirmed a 25% increase in the number of myelinated axons in the corticospinal tract when compared to untreated PMD mice. Microarray analysis revealed the upregulation of proapoptotic genes in PMD mice that could be partially rescued by Lonaprisan treatment, which also reduced microgliosis, astrogliosis, and lymphocyte infiltration.
Insights
Lonaprisan therapy improved motor function in a mouse model of Pelizaeus-Merzbacher disease (PMD). Treatment reduced PLP1 overexpression and increased myelinated axons, offering a potential therapeutic strategy for this severe hypomyelinating disorder.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Pelizaeus-Merzbacher disease (PMD) is a severe, fatal hypomyelinating disorder.
- Most PMD cases result from PLP1 gene duplication, leading to oligodendrocyte dysfunction.
- Current treatments for PMD are lacking.
Purpose of the Study:
- To investigate Lonaprisan's therapeutic potential in a Plp1 transgenic PMD mouse model.
- To assess Lonaprisan's efficacy in reducing Plp1 mRNA overexpression and improving clinical phenotype.
Main Methods:
- Placebo-controlled Lonaprisan treatment in PMD mice for 10 weeks.
- Grid slip analysis for motor phenotype assessment.
- mRNA expression, protein levels, and central nervous system histology were analyzed.
Main Results:
- Lonaprisan treatment reduced Plp1 mRNA overexpression from 1.8-fold to 1.5-fold.
- Significant improvement in motor phenotype was observed.
- Electron microscopy showed a 25% increase in myelinated axons.
- Lonaprisan partially rescued proapoptotic gene upregulation and reduced neuroinflammation.
Conclusions:
- Lonaprisan demonstrates therapeutic efficacy in a PMD mouse model.
- The drug effectively reduces Plp1 overexpression and ameliorates key pathological features.
- Lonaprisan represents a promising therapeutic candidate for Pelizaeus-Merzbacher disease.
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