Experimental induction of myelin damage in post-mortem human brain slice cultures

The mechanisms that drive myelin damage as seen in demyelinating disorders such as multiple sclerosis remain incompletely understood. Much of our current knowledge is derived from animal models, but interspecies differences limit their relevance in the context of human pathology and could explain why various promising therapies failed during clinical translation. Human post-mortem organotypic brain slice cultures provide a unique platform to study human myelin biology, as they preserve genetic, cytoarchitectural, pathological and species-specific context. Here, we evaluated myelin integrity in a human post-mortem organotypic brain slice culture model and experimentally induced focal myelin damage. Human post-mortem organotypic brain slice cultures retain key features throughout the culturing period, but exhibit gradual cellular and myelin loss over time. Myelin fibres within the white matter remain detectable and display preserved structural and chemical integrity up to 13 days in vitro, as indicated by the conserved ultrastructure, paranodal and nodal organization, and stable myelin spectroscopic signature. Topical delivery of lysophosphatidylcholine using cryogel scaffolds enables focal drug administration throughout the full depth of the slice with minimal diffusion into surrounding tissue and induces localized demyelination. Similar focal application of β-scorpion toxin Cn2, a Na v 1.6 channel agonist, induces subtle myelin destabilization. Overall, our results demonstrate human post-mortem organotypic brain slice culture model as an adequate platform for studying myelin damage in a human context.

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Publication Details

Journal
Acta Neuropathologica Communications
Published
2026-08-25
DOI
https://doi.org/10.1186/s40478-026-02398-5
Primary Topic
Neurogenesis and neuroplasticity mechanisms
Type
article
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0.00

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article

Experimental induction of myelin damage in post-mortem human brain slice cultures

Marianna Bugiani, Antonio Luchicchi, Geert J. Schenk, Peter K. Stys et al.
Acta Neuropathologica Communications
Neurogenesis and neuroplasticity mechanisms
article

Experimental induction of myelin damage in post-mortem human brain slice cultures

Marianna Bugiani, Antonio Luchicchi, Geert J. Schenk, Peter K. Stys, Gijs Kooij, Bonnie C. Plug, Ben Newland, Kasra Roya-Kouchaki, Sabine Stolker, Bert ’t Hart, Gema Muñoz González, Sophie Hill, Wulin Teo, Oznur Bilir, Anita Grootemaat, Niels Reinder Coenraad Meijns, Nicole van der Wel
article en

Abstract

The mechanisms that drive myelin damage as seen in demyelinating disorders such as multiple sclerosis remain incompletely understood. Much of our current knowledge is derived from animal models, but interspecies differences limit their relevance in the context of human pathology and could explain why various promising therapies failed during clinical translation. Human post-mortem organotypic brain slice cultures provide a unique platform to study human myelin biology, as they preserve genetic, cytoarchitectural, pathological and species-specific context. Here, we evaluated myelin integrity in a human post-mortem organotypic brain slice culture model and experimentally induced focal myelin damage. Human post-mortem organotypic brain slice cultures retain key features throughout the culturing period, but exhibit gradual cellular and myelin loss over time. Myelin fibres within the white matter remain detectable and display preserved structural and chemical integrity up to 13 days in vitro, as indicated by the conserved ultrastructure, paranodal and nodal organization, and stable myelin spectroscopic signature. Topical delivery of lysophosphatidylcholine using cryogel scaffolds enables focal drug administration throughout the full depth of the slice with minimal diffusion into surrounding tissue and induces localized demyelination. Similar focal application of β-scorpion toxin Cn2, a Na v 1.6 channel agonist, induces subtle myelin destabilization. Overall, our results demonstrate human post-mortem organotypic brain slice culture model as an adequate platform for studying myelin damage in a human context.

Acta Neuropathologica Communications
University of Calgary (CA), Emma Kinderziekenhuis (NL), Amsterdam Neuroscience (NL), Amsterdam University Medical Centers (NL), Cardiff University (GB), University of Amsterdam (NL), Amsterdam UMC Location Vrije Universiteit Amsterdam (NL)
International Progressive MS Alliance, Academy of Medical Sciences, National Centre for the Replacement, Refinement and Reduction of Animals in Research, Stichting MS Research
Good health and well-being
Openalex Percentile: Top 15%
Neurogenesis and neuroplasticity mechanisms
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