Biallelic variants in COX18 cause a mitochondrial disorder primarily manifesting as peripheral neuropathy

Camila Armirola-Ricaurte1,2, Laura Morant1,2, Isabelle Adant3,4

  • 1Molecular Neurogenomics Group, VIB Center for Molecular Neurology, VIB, Antwerp 2610, Belgium.

PubMed

Insights

This study identifies COX18 as a new gene causing Charcot-Marie-Tooth disease (CMT). Mutations in COX18 disrupt mitochondrial Complex IV assembly, leading to axonal neuropathy and potential central nervous system issues.

Area of Science:

  • Genetics
  • Mitochondrial Biology
  • Neuroscience

Background:

  • Mitochondrial dynamics defects are common in Charcot-Marie-Tooth disease (CMT), but primary mitochondrial respiratory chain (MRC) deficiencies are atypical.
  • COX18 is an assembly factor for mitochondrial Complex IV (CIV), crucial for mitochondrial function.

Purpose of the Study:

  • To identify novel genes responsible for Charcot-Marie-Tooth disease (CMT).
  • To investigate the role of COX18 in the etiology of autosomal recessive axonal CMT.

Main Methods:

  • Whole exome sequencing and homozygosity mapping were used to identify genetic variants in affected individuals from three families.
  • Functional studies in patient-derived lymphoblasts and a Drosophila melanogaster knockdown model were performed to assess the impact of identified COX18 variants.
  • Neurological and electrophysiological assessments were conducted on patients.

Main Results:

  • Biallelic deleterious variants in COX18 were identified in eight individuals across four families with axonal CMT, some exhibiting central nervous system symptoms.
  • A homozygous splice variant (c.435-6A>G) in COX18 led to an aberrant transcript, a stable but defective COX18 isoform, impaired CIV assembly and activity, and reduced mitochondrial membrane potential.
  • Knockdown of the COX18 homolog in Drosophila melanogaster resulted in neurodegeneration and locomotor deficits.

Conclusions:

  • COX18 is a newly identified gene associated with autosomal recessive axonal CMT, potentially with central nervous system involvement.
  • These findings highlight the role of mitochondrial Complex IV dysfunction in CMT pathogenesis and expand the spectrum of primary mitochondrial disorders.
  • This research provides critical insights for the diagnostic evaluation of CMT patients.

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