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Rat Model of Widespread Cerebral Cortical Demyelination Induced by an Intracerebral Injection of Pro-Inflammatory Cytokines
Published on: September 21, 2021
A mutation in the gene encoding mitochondrial Mg²+ channel MRS2 results in demyelination in the rat
Takashi Kuramoto1, Mitsuru Kuwamura, Satoko Tokuda
1Institute of Laboratory Animals, Graduate School of Medicine, Kyoto University, Kyoto, Japan. tkuramot@anim.med.kyoto-u.ac.jp
Abstract:
The rat demyelination (dmy) mutation serves as a unique model system to investigate the maintenance of myelin, because it provokes severe myelin breakdown in the central nervous system (CNS) after normal postnatal completion of myelination. Here, we report the molecular characterization of this mutation and discuss the possible pathomechanisms underlying demyelination. By positional cloning, we found that a G-to-A transition, 177 bp downstream of exon 3 of the Mrs2 (MRS2 magnesium homeostasis factor (Saccharomyces cerevisiae)) gene, generated a novel splice acceptor site which resulted in functional inactivation of the mutant allele. Transgenic rescue with wild-type Mrs2-cDNA validated our findings. Mrs2 encodes an essential component of the major Mg²+ influx system in mitochondria of yeast as well as human cells. We showed that the dmy/dmy rats have major mitochondrial deficits with a markedly elevated lactic acid concentration in the cerebrospinal fluid, a 60% reduction in ATP, and increased numbers of mitochondria in the swollen cytoplasm of oligodendrocytes. MRS2-GFP recombinant BAC transgenic rats showed that MRS2 was dominantly expressed in neurons rather than oligodendrocytes and was ultrastructurally observed in the inner membrane of mitochondria. Our observations led to the conclusion that dmy/dmy rats suffer from a mitochondrial disease and that the maintenance of myelin has a different mechanism from its initial production. They also established that Mg²+ homeostasis in CNS mitochondria is essential for the maintenance of myelin.
Insights
The demyelination (dmy) mutation in rats reveals that mitochondrial magnesium (Mg2+) homeostasis is crucial for maintaining central nervous system myelin. This finding highlights a distinct mechanism for myelin maintenance versus its initial formation.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- The demyelination (dmy) mutation in rats causes severe central nervous system (CNS) myelin breakdown post-development.
- Understanding the molecular basis of this mutation is key to elucidating myelin maintenance mechanisms.
Purpose of the Study:
- To molecularly characterize the dmy mutation.
- To investigate the pathomechanisms of demyelination in dmy rats.
- To explore the role of magnesium homeostasis in myelin maintenance.
Main Methods:
- Positional cloning to identify the genetic mutation.
- Transgenic rescue experiments using wild-type Mrs2-cDNA.
- Biochemical analysis of cerebrospinal fluid and cellular ATP levels.
- Mitochondrial localization studies using MRS2-GFP BAC transgenic rats.
Main Results:
- A G-to-A transition in the Mrs2 gene created a splice acceptor site, leading to functional inactivation.
- dmy/dmy rats exhibited significant mitochondrial deficits, including elevated lactic acid, reduced ATP, and increased mitochondria in oligodendrocytes.
- MRS2 is predominantly expressed in neurons and localized to mitochondrial inner membranes.
Conclusions:
- dmy/dmy rats present with a mitochondrial disease affecting myelin maintenance.
- Myelin maintenance involves distinct mechanisms from initial myelin production.
- Magnesium (Mg2+) homeostasis within CNS mitochondria is essential for preserving myelin integrity.
