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Updated: Jun 12, 2025

Preparation and Immunostaining of Myelinating Organotypic Cerebellar Slice Cultures
Published on: March 20, 2019
Palmitoylation regulates myelination by modulating the ZDHHC3-Cadm4 axis in the central nervous system
Yanli Chang1,2, Jiangli Zhu1,3, Xiaopeng Li1
1The Third Affiliated Hospital of Xinxiang Medical University, Xinxiang, China.
Abstract:
The downregulation of Cadm4 (Cell adhesion molecular 4) is a prominent feature in demyelination diseases, yet, the underlying molecular mechanism remains elusive. Here, we reveal that Cadm4 undergoes specific palmitoylation at cysteine-347 (C347), which is crucial for its stable localization on the plasma membrane (PM). Mutation of C347 to alanine (C347A), blocking palmitoylation, causes Cadm4 internalization from the PM and subsequent degradation. In vivo experiments introducing the C347A mutation (Cadm4-KI) lead to severe myelin abnormalities in the central nervous system (CNS), characterized by loss, demyelination, and hypermyelination. We further identify ZDHHC3 (Zinc finger DHHC-type palmitoyltransferase 3) as the enzyme responsible for catalyzing Cadm4 palmitoylation. Depletion of ZDHHC3 reduces Cadm4 palmitoylation and diminishes its PM localization. Remarkably, genetic deletion of ZDHHC3 results in decreased Cadm4 palmitoylation and defects in CNS myelination, phenocopying the Cadm4-KI mouse model. Consequently, altered Cadm4 palmitoylation impairs neuronal transmission and cognitive behaviors in both Cadm4-KI and ZDHHC3 knockout mice. Importantly, attenuated ZDHHC3-Cadm4 signaling significantly influences neuroinflammation in diverse demyelination diseases. Mechanistically, we demonstrate the predominant expression of Cadm4 in the oligodendrocyte lineage and its potential role in modulating cell differentiation via the WNT-β-Catenin pathway. Together, our findings propose that dysregulated ZDHHC3-Cadm4 signaling contributes to myelin abnormalities, suggesting a common pathological mechanism underlying demyelination diseases associated with neuroinflammation.
Insights
Cadm4 palmitoylation by ZDHHC3 is vital for myelin stability. Impaired signaling causes demyelination, neuroinflammation, and cognitive deficits in CNS diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Cell adhesion molecular 4 (Cadm4) downregulation is observed in demyelination diseases.
- The molecular mechanisms behind Cadm4's role in these conditions are not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanism of Cadm4 regulation in demyelination.
- To identify the enzyme responsible for Cadm4 post-translational modification and its role in myelin integrity.
Main Methods:
- Site-directed mutagenesis to block Cadm4 palmitoylation at Cysteine-347 (C347A).
- In vivo studies using Cadm4-C347A knock-in (Cadm4-KI) and ZDHHC3 knockout mouse models.
- Analysis of myelin structure, neuronal transmission, cognitive behavior, and neuroinflammation.
Main Results:
- Cadm4 palmitoylation at C347 is essential for its plasma membrane localization; blocking it causes internalization and degradation.
- Cadm4-KI and ZDHHC3 knockout mice exhibit severe CNS myelin abnormalities, impaired neuronal function, and cognitive deficits.
- ZDHHC3-Cadm4 signaling is implicated in neuroinflammation and oligodendrocyte differentiation via the WNT-β-Catenin pathway.
Conclusions:
- Dysregulated ZDHHC3-mediated Cadm4 palmitoylation is a key contributor to myelin defects in demyelination diseases.
- This signaling pathway represents a potential therapeutic target for conditions involving neuroinflammation and myelin damage.
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