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.

Biology
|July 29, 2023
PubMed

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.