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Published on: August 15, 2019
Biallelic variants in COX18 cause a mitochondrial disorder primarily manifesting as peripheral neuropathy
Abstract:
Defects in mitochondrial dynamics are a common cause of Charcot-Marie-Tooth disease (CMT), while primary deficiencies in the mitochondrial respiratory chain (MRC) are rare and atypical for this etiology. This study aims to report COX18 as a novel CMT-causing gene. This gene encodes an assembly factor of mitochondrial Complex IV (CIV) that translocates the C-terminal tail of MTCO2 across the mitochondrial inner membrane. Exome sequencing was performed in four affected individuals. The patients and available family members underwent thorough neurological and electrophysiological assessment. The impact of one of the identified variants on splicing, protein levels, and mitochondrial bioenergetics was investigated in patient-derived lymphoblasts. The functionality of the mutant protein was assessed using a Proteinase K protection assay and immunoblotting. Neuronal relevance of COX18 was assessed in a Drosophila melanogaster knockdown model. Exome sequencing coupled with homozygosity mapping revealed a homozygous splice variant c.435-6A>G in COX18 in two siblings with early-onset progressive axonal sensory-motor peripheral neuropathy. By querying external databases, we identified two additional families with rare deleterious biallelic variants in COX18 . All affected individuals presented with axonal CMT and some patients also exhibited central nervous system symptoms, such as dystonia and spasticity. Functional characterization of the c.435-6A>G variant demonstrated that it leads to the expression of an alternative transcript that lacks exon 2, resulting in a stable but defective COX18 isoform. The mutant protein impairs CIV assembly and activity, leading to a reduction in mitochondrial membrane potential. Downregulation of the COX18 homolog in Drosophila melanogaster displayed signs of neurodegeneration, including locomotor deficit and progressive axonal degeneration of sensory neurons. Our study presents genetic and functional evidence that supports COX18 as a newly identified gene candidate for autosomal recessive axonal CMT with or without central nervous system involvement. These findings emphasize the significance of peripheral neuropathy within the spectrum of primary mitochondrial disorders and the role of mitochondrial CIV in the development of CMT. Our research has important implications for the diagnostic workup of CMT patients.
Insights
Charcot-Marie-Tooth disease (CMT) can be caused by novel gene COX18, which is crucial for mitochondrial Complex IV assembly. This discovery expands the understanding of CMT
Area of Science:
- Genetics and Molecular Biology
- Neuroscience
- Mitochondrial Biology
Background:
- Mitochondrial dynamics defects are common in Charcot-Marie-Tooth disease (CMT), but primary mitochondrial respiratory chain (MRC) deficiencies are rare.
- COX18 encodes an assembly factor for mitochondrial Complex IV (CIV), essential for mitochondrial function.
Purpose of the Study:
- To identify novel genes causing Charcot-Marie-Tooth disease (CMT).
- To investigate the role of COX18 in the etiology of axonal CMT.
Main Methods:
- Exome sequencing and homozygosity mapping in affected individuals and families.
- Functional studies in patient-derived lymphoblasts and a Drosophila melanogaster model.
- Neurological and electrophysiological assessments.
Main Results:
- Identified biallelic deleterious variants in COX18 in four families with axonal CMT, some exhibiting central nervous system symptoms.
- Demonstrated that a specific COX18 variant impairs CIV assembly and activity, reducing mitochondrial membrane potential.
- Showcased neurodegenerative phenotypes in Drosophila melanogaster upon COX18 homolog knockdown.
Conclusions:
- COX18 is a newly identified gene responsible for autosomal recessive axonal CMT, with or without CNS involvement.
- Highlights the importance of mitochondrial CIV dysfunction in CMT pathogenesis.
- Suggests considering mitochondrial CIV assembly factors in the diagnostic workup of CMT patients.
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