Myelin-associated glycoprotein gene mutation causes Pelizaeus-Merzbacher disease-like disorder
Alexander Lossos1, Nimrod Elazar2, Israela Lerer3
11 Department of Neurology and Agnes Ginges Centre for Human Neurogenetics, Hebrew University-Hadassah Medical Centre, Jerusalem, Israel vmeiner@hadassah.org.il also@hadassah.org.il peles@weizmann.ac.il.
Abstract:
Pelizaeus-Merzbacher disease is an X-linked hypomyelinating leukodystrophy caused by mutations or rearrangements in PLP1. It presents in infancy with nystagmus, jerky head movements, hypotonia and developmental delay evolving into spastic tetraplegia with optic atrophy and variable movement disorders. A clinically similar phenotype caused by recessive mutations in GJC2 is known as Pelizaeus-Merzbacher-like disease. Both genes encode proteins associated with myelin. We describe three siblings of a consanguineous family manifesting the typical infantile-onset Pelizaeus-Merzbacher disease-like phenotype slowly evolving into a form of complicated hereditary spastic paraplegia with mental retardation, dysarthria, optic atrophy and peripheral neuropathy in adulthood. Magnetic resonance imaging and spectroscopy were consistent with a demyelinating leukodystrophy. Using genetic linkage and exome sequencing, we identified a homozygous missense c.399C>G; p.S133R mutation in MAG. This gene, previously associated with hereditary spastic paraplegia, encodes myelin-associated glycoprotein, which is involved in myelin maintenance and glia-axon interaction. This mutation is predicted to destabilize the protein and affect its tertiary structure. Examination of the sural nerve biopsy sample obtained in childhood in the oldest sibling revealed complete absence of myelin-associated glycoprotein accompanied by ill-formed onion-bulb structures and a relatively thin myelin sheath of the affected axons. Immunofluorescence, cell surface labelling, biochemical analysis and mass spectrometry-based proteomics studies in a variety of cell types demonstrated a devastating effect of the mutation on post-translational processing, steady state expression and subcellular localization of myelin-associated glycoprotein. In contrast to the wild-type protein, the p.S133R mutant was retained in the endoplasmic reticulum and was subjected to endoplasmic reticulum-associated protein degradation by the proteasome. Our findings identify involvement of myelin-associated glycoprotein in this family with a disorder affecting the central and peripheral nervous system, and suggest that loss of the protein function is responsible for the unique clinical phenotype.
Insights
A novel mutation in the myelin-associated glycoprotein (MAG) gene causes a Pelizaeus-Merzbacher disease-like disorder. This genetic defect leads to central and peripheral nervous system dysfunction, impacting myelin maintenance and glia-axon interactions.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Pelizaeus-Merzbacher disease (PMD) is an X-linked hypomyelinating leukodystrophy typically caused by PLP1 mutations.
- A similar phenotype, Pelizaeus-Merzbacher-like disease, results from recessive GJC2 mutations.
- Both PLP1 and GJC2 encode proteins crucial for myelin formation and maintenance.
Purpose of the Study:
- To investigate the genetic basis of a Pelizaeus-Merzbacher disease-like phenotype in a consanguineous family.
- To identify the specific gene and mutation responsible for the observed neurological disorder.
- To elucidate the molecular mechanisms underlying the disease pathology.
Main Methods:
- Clinical evaluation of three affected siblings with infantile-onset neurological symptoms.
- Magnetic resonance imaging (MRI) and spectroscopy to assess brain and spinal cord abnormalities.
- Genetic linkage analysis and exome sequencing to identify causative mutations.
- Sural nerve biopsy analysis.
- In vitro studies including immunofluorescence, cell surface labeling, biochemical analysis, and mass spectrometry-based proteomics.
Main Results:
- A homozygous missense mutation (c.399C>G; p.S133R) in the myelin-associated glycoprotein (MAG) gene was identified.
- The mutation is predicted to destabilize the MAG protein structure.
- Sural nerve biopsy showed a complete absence of MAG and abnormal myelin structures.
- In vitro studies revealed that the MAG mutation impairs protein processing, expression, and localization, leading to endoplasmic reticulum retention and degradation.
- The mutant MAG protein was retained in the endoplasmic reticulum and degraded via the proteasome.
Conclusions:
- This study identifies MAG as a novel gene involved in a Pelizaeus-Merzbacher disease-like disorder affecting both the central and peripheral nervous systems.
- Loss of MAG function due to the identified mutation is responsible for the severe neurological phenotype.
- The findings highlight the critical role of MAG in myelin maintenance and glia-axon interactions, expanding the spectrum of myelin disorders.
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