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1.
Acta Neuropathol ; 138(6): 1013-1031, 2019 12.
Article in English | MEDLINE | ID: mdl-31463572

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.


Subject(s)
Cell Cycle Proteins/genetics , Cerebellar Diseases/genetics , Cytoskeletal Proteins/genetics , DNA, Mitochondrial , Mitochondrial Diseases/genetics , Muscular Dystrophies/genetics , Mutation , Adolescent , Adult , Atrophy , Cells, Cultured , Cerebellar Diseases/diagnostic imaging , Cerebellar Diseases/pathology , Cerebellar Diseases/physiopathology , Child , DNA Copy Number Variations , Female , Fibroblasts/metabolism , Fibroblasts/pathology , Humans , Male , Middle Aged , Mitochondrial Diseases/diagnostic imaging , Mitochondrial Diseases/pathology , Mitochondrial Diseases/physiopathology , Muscles/pathology , Muscular Dystrophies/diagnostic imaging , Muscular Dystrophies/pathology , Muscular Dystrophies/physiopathology , Phenotype , Young Adult
2.
Ann Neurol ; 78(6): 982-994, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26418456

ABSTRACT

OBJECTIVE: Mutations in TPM3, encoding Tpm3.12, cause a clinically and histopathologically diverse group of myopathies characterized by muscle weakness. We report two patients with novel de novo Tpm3.12 single glutamic acid deletions at positions ΔE218 and ΔE224, resulting in a significant hypercontractile phenotype with congenital muscle stiffness, rather than weakness, and respiratory failure in one patient. METHODS: The effect of the Tpm3.12 deletions on the contractile properties in dissected patient myofibers was measured. We used quantitative in vitro motility assay to measure Ca(2+) sensitivity of thin filaments reconstituted with recombinant Tpm3.12 ΔE218 and ΔE224. RESULTS: Contractility studies on permeabilized myofibers demonstrated reduced maximal active tension from both patients with increased Ca(2+) sensitivity and altered cross-bridge cycling kinetics in ΔE224 fibers. In vitro motility studies showed a two-fold increase in Ca(2+) sensitivity of the fraction of filaments motile and the filament sliding velocity concentrations for both mutations. INTERPRETATION: These data indicate that Tpm3.12 deletions ΔE218 and ΔE224 result in increased Ca(2+) sensitivity of the troponin-tropomyosin complex, resulting in abnormally active interaction of the actin and myosin complex. Both mutations are located in the charged motifs of the actin-binding residues of tropomyosin 3, thus disrupting the electrostatic interactions that facilitate accurate tropomyosin binding with actin necessary to prevent the on-state. The mutations destabilize the off-state and result in excessively sensitized excitation-contraction coupling of the contractile apparatus. This work expands the phenotypic spectrum of TPM3-related disease and provides insights into the pathophysiological mechanisms of the actin-tropomyosin complex.


Subject(s)
Muscle Contraction , Muscle Fibers, Skeletal/pathology , Muscular Diseases/genetics , Tropomyosin/genetics , Child, Preschool , Exome , Female , Humans , Male , Muscular Diseases/pathology , Muscular Diseases/physiopathology , Mutation , Phenotype , Respiratory Insufficiency , Sequence Deletion
3.
Clin Lab Haematol ; 26(1): 57-64, 2004 Feb.
Article in English | MEDLINE | ID: mdl-14738439

ABSTRACT

Surface plasmon resonance was employed to establish a quantitative assay for recombinant FVIII (rFVIII) products using rFVIII as standard. The anti-FVIII monoclonal antibody ESH4 was immobilized onto a carboxymethyldextran surface. A range of rFVIII concentrations were injected over the surface and the binding response enhanced by the addition of a further monoclonal antibody ESH8. Validation using National Institute of Biological Standards and Controls (NIBSC) sixth International rFVIII concentrate standard gave inter- and intra-assay coefficient of variations (CVs) of 7.5 and 3.68% respectively for ESH4-rFVIII binding alone. Enhancement of the binding signal by secondary addition of ESH8 produced inter- and intra-assay CVs of 2.75 and 1.5%. The ESH4 immobilized chip was found to retain binding capacity following regeneration for at least 75 cycles. The assay was found to be unsuitable for quantitation of plasma derived FVIII product but may prove useful for monitoring of rFVIII production.


Subject(s)
Factor VIII/analysis , Antibodies, Monoclonal/immunology , Factor VIII/immunology , Humans , Protein Array Analysis/methods , Protein Binding/immunology , Recombinant Proteins/analysis , Recombinant Proteins/immunology , Reference Standards , Reproducibility of Results , Surface Plasmon Resonance/methods
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