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Published on: December 29, 2017
MSTO1 mutations cause mtDNA depletion, manifesting as muscular dystrophy with cerebellar involvement
S Donkervoort1, R Sabouny2, P Yun1
1Neuromuscular and Neurogenetic Disorders of Childhood Section, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD, USA.
Abstract:
MSTO1 encodes a cytosolic mitochondrial fusion protein, misato homolog 1 or MSTO1. While the full genotype-phenotype spectrum remains to be explored, pathogenic variants in MSTO1 have recently been reported in a small number of patients presenting with a phenotype of cerebellar ataxia, congenital muscle involvement with histologic findings ranging from myopathic to dystrophic and pigmentary retinopathy. The proposed underlying pathogenic mechanism of MSTO1-related disease is suggestive of impaired mitochondrial fusion secondary to a loss of function of MSTO1. Disorders of mitochondrial fusion and fission have been shown to also lead to mitochondrial DNA (mtDNA) depletion, linking them to the mtDNA depletion syndromes, a clinically and genetically diverse class of mitochondrial diseases characterized by a reduction of cellular mtDNA content. However, the consequences of pathogenic variants in MSTO1 on mtDNA maintenance remain poorly understood. We present extensive phenotypic and genetic data from 12 independent families, including 15 new patients harbouring a broad array of bi-allelic MSTO1 pathogenic variants, and we provide functional characterization from seven MSTO1-related disease patient fibroblasts. Bi-allelic loss-of-function variants in MSTO1 manifest clinically with a remarkably consistent phenotype of childhood-onset muscular dystrophy, corticospinal tract dysfunction and early-onset non-progressive cerebellar atrophy. MSTO1 protein was not detectable in the cultured fibroblasts of all seven patients evaluated, suggesting that pathogenic variants result in a loss of protein expression and/or affect protein stability. Consistent with impaired mitochondrial fusion, mitochondrial networks in fibroblasts were found to be fragmented. Furthermore, all fibroblasts were found to have depletion of mtDNA ranging from 30 to 70% along with alterations to mtDNA nucleoids. Our data corroborate the role of MSTO1 as a mitochondrial fusion protein and highlight a previously unrecognized link to mtDNA regulation. As impaired mitochondrial fusion is a recognized cause of mtDNA depletion syndromes, this novel link to mtDNA depletion in patient fibroblasts suggests that MSTO1-deficiency should also be considered a mtDNA depletion syndrome. Thus, we provide mechanistic insight into the disease pathogenesis associated with MSTO1 mutations and further define the clinical spectrum and the natural history of MSTO1-related disease.
Insights
Pathogenic variants in the MSTO1 gene cause a consistent phenotype of childhood muscular dystrophy and cerebellar atrophy. This study reveals MSTO1 deficiency impairs mitochondrial fusion and leads to mitochondrial DNA depletion, classifying it as a mitochondrial DNA depletion syndrome.
Area of Science:
- Genetics
- Mitochondrial Biology
- Neurology
Background:
- Pathogenic variants in MSTO1 (misato homolog 1) have been linked to cerebellar ataxia, muscle disease, and retinopathy.
- The mechanism involves impaired mitochondrial fusion, but the impact on mitochondrial DNA (mtDNA) maintenance is unclear.
Purpose of the Study:
- To investigate the clinical spectrum and pathogenesis of MSTO1-related disease.
- To determine the effect of MSTO1 variants on mitochondrial fusion and mtDNA maintenance.
Main Methods:
- Clinical and genetic analysis of 15 patients from 12 families with MSTO1 variants.
- Functional studies using patient-derived fibroblasts to assess MSTO1 protein levels, mitochondrial network morphology, and mtDNA content.
Main Results:
- Bi-allelic loss-of-function MSTO1 variants cause a consistent phenotype: childhood muscular dystrophy, corticospinal tract dysfunction, and cerebellar atrophy.
- MSTO1 protein was undetectable in patient fibroblasts, which showed fragmented mitochondrial networks.
- Fibroblasts exhibited significant mtDNA depletion (30-70%) and altered mtDNA nucleoids.
Conclusions:
- MSTO1 deficiency impairs mitochondrial fusion and directly impacts mtDNA regulation, leading to mtDNA depletion.
- MSTO1-related disorder should be classified as a mitochondrial DNA depletion syndrome.
- This study provides mechanistic insight into MSTO1-related disease pathogenesis and defines its clinical spectrum.
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