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Updated: Mar 24, 2026

Mouse Models of Periventricular Leukomalacia
Published on: May 18, 2010
Increased apoptosis and hypomyelination in cerebral white matter of macular mutant mouse brain
Shoichi Takikita1, Tomoyuki Takano2, Tsutomu Narita1
1Department of Pediatrics, Takatsuki Red Cross Hospital, Takatsuki 569-1096, Japan.
Abstract:
Hypomyelination in developing brain is often accompanied by congenital metabolic disorders. Menkes kinky hair disease is an X-linked neurodegenerative disease of impaired copper transport, resulting from a mutation of the Menkes disease gene, a transmembrane copper-transporting p-type ATPase gene (ATP7A). In a macular mutant mouse model, the murine ortholog of Menkes gene (mottled gene) is mutated, and widespread neurodegeneration and subsequent death are observed. Although some biochemical analysis of myelin protein in macular mouse has been reported, detailed histological study of myelination in this mouse model is currently lacking. Since myelin abnormality is one of the neuropathologic findings of human Menkes disease, in this study early myelination in macular mouse brain was evaluated by immunohistochemistry. Two-week-old macular mice and normal littermates were perfused with 4% paraformaldehyde. Immunohistochemical staining of paraffin embedded and vibratome sections was performed using antibodies against either CNPase, cleaved caspase-3 or O4 (marker of immature oligodendrocytes). This staining showed that cerebral myelination in macular mouse was generally hypoplastic and that hypomyelination was remarkable in internal capsule, corpus callosum, and cingulate cortex. In addition, an increased number of cleaved caspase-3 positive cells were observed in corpus callosum and internal capsule. Copper deficiency induced by low copper diet has been reported to induce oligodendrocyte dysfunction and leads to hypomyelination in this mouse model. Taken together, hypomyelination observed in this study in a mouse model of Menkes disease is assumed to be induced by increased apoptosis of immature oligodendrocytes in developing cerebrum, through deficient intracellular copper metabolism.
Insights
Hypomyelination in a mouse model of Menkes disease results from increased immature oligodendrocyte apoptosis due to impaired copper metabolism. This study details the histological findings of this neurodegenerative condition.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Menkes kinky hair disease is an X-linked neurodegenerative disorder caused by mutations in the ATP7A gene, leading to impaired copper transport.
- Hypomyelination is a common feature in the developing brain, often associated with congenital metabolic disorders.
- The macular mutant mouse model (mottled gene mutation) mimics Menkes disease, exhibiting neurodegeneration, but lacks detailed myelination histology.
Purpose of the Study:
- To investigate and histologically characterize early myelination defects in the macular mouse model of Menkes disease.
- To evaluate the role of oligodendrocyte apoptosis in the observed hypomyelination.
Main Methods:
- Immunohistochemistry was performed on brain sections from 2-week-old macular mice and normal littermates.
- Antibodies against CNPase, cleaved caspase-3, and O4 (immature oligodendrocyte marker) were used to assess myelination and cell death.
- Paraffin-embedded and vibratome sections were analyzed.
Main Results:
- Macular mice exhibited generalized cerebral hypomyelination, particularly in the internal capsule, corpus callosum, and cingulate cortex.
- An increased number of cleaved caspase-3 positive cells (indicating apoptosis) were found in the corpus callosum and internal capsule.
- These findings suggest a link between copper deficiency, oligodendrocyte apoptosis, and hypomyelination.
Conclusions:
- The study demonstrates significant hypomyelination in the macular mouse model of Menkes disease.
- Increased apoptosis of immature oligodendrocytes in the developing cerebrum, driven by deficient intracellular copper metabolism, is the likely cause of hypomyelination.
- This histological evaluation provides crucial insights into the neuropathology of Menkes disease in a relevant animal model.
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