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Published on: June 15, 2018
A Novel ENU-Induced Mfn2 Mutation Causes Motor Deficits in Mice without Causing Peripheral Neuropathy
Timothy J Hines1, Janice Bailey2, Hedi Liu2
1The Jackson Laboratory, Bar Harbor, ME 04609, USA.
Abstract:
Mitochondrial fission and fusion are required for maintaining functional mitochondria. The mitofusins (MFN1 and MFN2) are known for their roles in mediating mitochondrial fusion. Recently, MFN2 has been implicated in other important cellular functions, such as mitophagy, mitochondrial motility, and coordinating endoplasmic reticulum-mitochondria communication. In humans, over 100 MFN2 mutations are associated with a form of inherited peripheral neuropathy, Charcot-Marie-Tooth disease type 2A (CMT2A). Here we describe an ENU-induced mutant mouse line with a recessive neuromuscular phenotype. Behavioral screening showed progressive weight loss and rapid deterioration of motor function beginning at 8 weeks. Mapping and sequencing revealed a missense mutation in exon 18 of Mfn2 (T1928C; Leu643Pro), within the transmembrane domain. Compared to wild-type and heterozygous littermates, Mfn2L643P/L643P mice exhibited diminished rotarod performance and decreases in activity in the open field test, muscular endurance, mean mitochondrial diameter, sensory tests, mitochondrial DNA content, and MFN2 protein levels. However, tests of peripheral nerve physiology and histology were largely normal. Mutant leg bones had reduced cortical bone thickness and bone area fraction. Together, our data indicate that Mfn2L643P causes a recessive motor phenotype with mild bone and mitochondrial defects in mice. Lack of apparent nerve pathology notwithstanding, this is the first reported mouse model with a mutation in the transmembrane domain of the protein, which may be valuable for researchers studying MFN2 biology.
Insights
A new mouse model with a mutation in the MFN2 gene exhibits a recessive motor disorder, impacting weight, activity, and muscle function. This model offers insights into MFN2
Area of Science:
- Mitochondrial biology
- Neurogenetics
- Molecular cell biology
Background:
- Mitochondrial dynamics, including fission and fusion, are crucial for cellular health.
- Mitofusins (MFN1 and MFN2) are key regulators of mitochondrial fusion.
- MFN2 mutations are linked to Charcot-Marie-Tooth disease type 2A (CMT2A) in humans.
Purpose of the Study:
- To characterize a novel ENU-induced mouse mutant with a recessive neuromuscular phenotype.
- To investigate the functional consequences of a specific MFN2 transmembrane domain mutation.
- To establish a new mouse model for studying MFN2-related disorders.
Main Methods:
- Phenotypic analysis of a novel ENU-induced mutant mouse line.
- Genetic mapping and sequencing to identify the causative mutation in Mfn2.
- Behavioral testing (rotarod, open field), physiological assays, and histological examination.
- Mitochondrial and bone analyses in mutant mice.
Main Results:
- Identified a missense mutation (Leu643Pro) in the MFN2 transmembrane domain.
- Mfn2 mutant mice displayed progressive motor deficits, weight loss, and reduced activity.
- Observed decreased mitochondrial diameter, mitochondrial DNA content, and MFN2 protein levels.
- Mutant mice showed mild bone defects (reduced cortical thickness) but largely normal nerve pathology.
Conclusions:
- The MFN2 Leu643Pro mutation causes a recessive motor phenotype in mice, accompanied by mitochondrial and bone abnormalities.
- This mouse model, despite lacking overt nerve pathology, is valuable for studying MFN2 function and related diseases.
- Highlights the role of the MFN2 transmembrane domain in motor function and mitochondrial integrity.

