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1.
Am J Hum Genet ; 107(6): 1078-1095, 2020 12 03.
Article in English | MEDLINE | ID: mdl-33217308

ABSTRACT

The myosin-directed chaperone UNC-45B is essential for sarcomeric organization and muscle function from Caenorhabditis elegans to humans. The pathological impact of UNC-45B in muscle disease remained elusive. We report ten individuals with bi-allelic variants in UNC45B who exhibit childhood-onset progressive muscle weakness. We identified a common UNC45B variant that acts as a complex hypomorph splice variant. Purified UNC-45B mutants showed changes in folding and solubility. In situ localization studies further demonstrated reduced expression of mutant UNC-45B in muscle combined with abnormal localization away from the A-band towards the Z-disk of the sarcomere. The physiological relevance of these observations was investigated in C. elegans by transgenic expression of conserved UNC-45 missense variants, which showed impaired myosin binding for one and defective muscle function for three. Together, our results demonstrate that UNC-45B impairment manifests as a chaperonopathy with progressive muscle pathology, which discovers the previously unknown conserved role of UNC-45B in myofibrillar organization.


Subject(s)
Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/physiology , Molecular Chaperones/genetics , Molecular Chaperones/physiology , Muscular Diseases/genetics , Mutation, Missense , Adolescent , Adult , Alleles , Animals , Caenorhabditis elegans , Female , Genetic Variation , Humans , Loss of Function Mutation , Male , Muscle, Skeletal/pathology , Myofibrils , Myosins , Sarcomeres/metabolism , Sequence Analysis, RNA , Transgenes , Exome Sequencing , Young Adult
2.
Neuropathol Appl Neurobiol ; : e12952, 2023 Dec 20.
Article in English | MEDLINE | ID: mdl-38124360

ABSTRACT

AIMS: Limb-girdle congenital myasthenic syndrome (LG-CMS) is a genetically heterogeneous disorder characterized by muscle weakness and fatigability. The LG-CMS gene DPAGT1 codes for an essential enzyme of the glycosylation pathway, a posttranslational modification mechanism shaping the structure and function of proteins. In DPAGT1-related LG-CMS, reduced glycosylation of the acetylcholine receptor (AChR) reduces its localization at the neuromuscular junction (NMJ), and results in diminished neuromuscular transmission. LG-CMS patients also show tubular aggregates on muscle biopsy, but the origin and potential contribution of the aggregates to disease development are not understood. Here, we describe two LG-CMS patients with the aim of providing a molecular diagnosis and to shed light on the pathways implicated in tubular aggregate formation. METHODS: Following clinical examination of the patients, we performed next-generation sequencing (NGS) to identify the genetic causes, analysed the biopsies at the histological and ultrastructural levels, investigated the composition of the tubular aggregates, and performed experiments on protein glycosylation. RESULTS: We identified novel pathogenic DPAGT1 variants in both patients, and pyridostigmine treatment quantitatively improved muscle force and function. The tubular aggregates contained proteins of the sarcoplasmic reticulum (SR) and structurally conformed to the aggregates observed in tubular aggregate myopathy (TAM). TAM arises from overactivation of the plasma membrane calcium channel ORAI1, and functional studies on muscle extracts from our LG-CMS patients evidenced abnormal ORAI1 glycosylation. CONCLUSIONS: We expand the genetic variant spectrum of LG-CMS and provide a genotype/phenotype correlation for pathogenic DPAGT1 variants. The discovery of ORAI1 hypoglycosylation in our patients highlights a physiopathological link between LG-CMS and TAM.

3.
Ann Neurol ; 88(2): 274-282, 2020 08.
Article in English | MEDLINE | ID: mdl-32386344

ABSTRACT

OBJECTIVE: Glycogen storage diseases (GSDs) are severe human disorders resulting from abnormal glucose metabolism, and all previously described GSDs segregate as autosomal recessive or X-linked traits. In this study, we aimed to molecularly characterize the first family with a dominant GSD. METHODS: We describe a dominant GSD family with 13 affected members presenting with adult-onset muscle weakness, and we provide clinical, metabolic, histological, and ultrastructural data. We performed exome sequencing to uncover the causative gene, and functional experiments in the cell model and on recombinant proteins to investigate the pathogenic effect of the identified mutation. RESULTS: We identified a heterozygous missense mutation in PYGM segregating with the disease in the family. PYGM codes for myophosphorylase, the enzyme catalyzing the initial step of glycogen breakdown. Enzymatic tests revealed that the PYGM mutation impairs the AMP-independent myophosphorylase activity, whereas the AMP-dependent activity was preserved. Further functional investigations demonstrated an altered conformation and aggregation of mutant myophosphorylase, and the concurrent accumulation of the intermediate filament desmin in the myofibers of the patients. INTERPRETATION: Overall, this study describes the first example of a dominant glycogen storage disease in humans, and elucidates the underlying pathomechanisms by deciphering the sequence of events from the PYGM mutation to the accumulation of glycogen in the muscle fibers. ANN NEUROL 2020;88:274-282.


Subject(s)
Glycogen Phosphorylase, Muscle Form/genetics , Glycogen Storage Disease/diagnosis , Glycogen Storage Disease/genetics , Mutation/genetics , Adult , Female , Humans , Male , Middle Aged , Pedigree
4.
Ann Neurol ; 87(2): 217-232, 2020 02.
Article in English | MEDLINE | ID: mdl-31794073

ABSTRACT

OBJECTIVE: Recently, the ASC-1 complex has been identified as a mechanistic link between amyotrophic lateral sclerosis and spinal muscular atrophy (SMA), and 3 mutations of the ASC-1 gene TRIP4 have been associated with SMA or congenital myopathy. Our goal was to define ASC-1 neuromuscular function and the phenotypical spectrum associated with TRIP4 mutations. METHODS: Clinical, molecular, histological, and magnetic resonance imaging studies were made in 5 families with 7 novel TRIP4 mutations. Fluorescence activated cell sorting and Western blot were performed in patient-derived fibroblasts and muscles and in Trip4 knocked-down C2C12 cells. RESULTS: All mutations caused ASC-1 protein depletion. The clinical phenotype was purely myopathic, ranging from lethal neonatal to mild ambulatory adult patients. It included early onset axial and proximal weakness, scoliosis, rigid spine, dysmorphic facies, cutaneous involvement, respiratory failure, and in the older cases, dilated cardiomyopathy. Muscle biopsies showed multiminicores, nemaline rods, cytoplasmic bodies, caps, central nuclei, rimmed fibers, and/or mild endomysial fibrosis. ASC-1 depletion in C2C12 and in patient-derived fibroblasts and muscles caused accelerated proliferation, altered expression of cell cycle proteins, and/or shortening of the G0/G1 cell cycle phase leading to cell size reduction. INTERPRETATION: Our results expand the phenotypical and molecular spectrum of TRIP4-associated disease to include mild adult forms with or without cardiomyopathy, associate ASC-1 depletion with isolated primary muscle involvement, and establish TRIP4 as a causative gene for several congenital muscle diseases, including nemaline, core, centronuclear, and cytoplasmic-body myopathies. They also identify ASC-1 as a novel cell cycle regulator with a key role in cell proliferation, and underline transcriptional coregulation defects as a novel pathophysiological mechanism. ANN NEUROL 2020;87:217-232.


Subject(s)
Amino Acid Transport System y+/physiology , Cell Cycle/physiology , Muscular Diseases/physiopathology , Transcription Factors/genetics , Adult , Amino Acid Transport System y+/metabolism , Cells, Cultured , Child , Child, Preschool , Female , Fibroblasts/physiology , Humans , Infant , Male , Middle Aged , Muscle Proteins/genetics , Muscle, Skeletal/pathology , Muscle, Skeletal/physiopathology , Muscular Diseases/genetics , Mutation , Pedigree , Phenotype
5.
Acta Neuropathol ; 142(2): 375-393, 2021 08.
Article in English | MEDLINE | ID: mdl-33974137

ABSTRACT

Using deep phenotyping and high-throughput sequencing, we have identified a novel type of distal myopathy caused by mutations in the Small muscle protein X-linked (SMPX) gene. Four different missense mutations were identified in ten patients from nine families in five different countries, suggesting that this disease could be prevalent in other populations as well. Haplotype analysis of patients with similar ancestry revealed two different founder mutations in Southern Europe and France, indicating that the prevalence in these populations may be higher. In our study all patients presented with highly similar clinical features: adult-onset, usually distal more than proximal limb muscle weakness, slowly progressing over decades with preserved walking. Lower limb muscle imaging showed a characteristic pattern of muscle involvement and fatty degeneration. Histopathological and electron microscopic analysis of patient muscle biopsies revealed myopathic findings with rimmed vacuoles and the presence of sarcoplasmic inclusions, some with amyloid-like characteristics. In silico predictions and subsequent cell culture studies showed that the missense mutations increase aggregation propensity of the SMPX protein. In cell culture studies, overexpressed SMPX localized to stress granules and slowed down their clearance.


Subject(s)
Distal Myopathies/pathology , Muscle Proteins/genetics , Muscle, Skeletal/pathology , Mutation, Missense/genetics , Adult , Distal Myopathies/genetics , Humans , Inclusion Bodies/pathology , Middle Aged , Muscle Weakness/pathology , Pedigree , Stress Granules
6.
Hum Mol Genet ; 26(19): 3736-3748, 2017 10 01.
Article in English | MEDLINE | ID: mdl-28934386

ABSTRACT

Myotubularins (MTMs) are active or dead phosphoinositides phosphatases defining a large protein family conserved through evolution and implicated in different neuromuscular diseases. Loss-of-function mutations in MTM1 cause the severe congenital myopathy called myotubular myopathy (or X-linked centronuclear myopathy) while mutations in the MTM1-related protein MTMR2 cause a recessive Charcot-Marie-Tooth peripheral neuropathy. Here we aimed to determine the functional specificity and redundancy of MTM1 and MTMR2, and to assess their abilities to compensate for a potential therapeutic strategy. Using molecular investigations and heterologous expression of human MTMs in yeast cells and in Mtm1 knockout mice, we characterized several naturally occurring MTMR2 isoforms with different activities. We identified the N-terminal domain as responsible for functional differences between MTM1 and MTMR2. An N-terminal extension observed in MTMR2 is absent in MTM1, and only the short MTMR2 isoform lacking this N-terminal extension behaved similarly to MTM1 in yeast and mice. Moreover, adeno-associated virus-mediated exogenous expression of several MTMR2 isoforms ameliorates the myopathic phenotype owing to MTM1 loss, with increased muscle force, reduced myofiber atrophy, and reduction of the intracellular disorganization hallmarks associated with myotubular myopathy. Noteworthy, the short MTMR2 isoform provided a better rescue when compared with the long MTMR2 isoform. In conclusion, these results point to the molecular basis for MTMs functional specificity. They also provide the proof-of-concept that expression of the neuropathy-associated MTMR2 gene improves the MTM1-associated myopathy, thus identifying MTMR2 as a novel therapeutic target for myotubular myopathy.


Subject(s)
Myopathies, Structural, Congenital/genetics , Protein Tyrosine Phosphatases, Non-Receptor/metabolism , Animals , Humans , Male , Mice , Mice, Knockout , Mutation , Myopathies, Structural, Congenital/enzymology , Myopathies, Structural, Congenital/metabolism , Phenotype , Protein Domains , Protein Isoforms , Protein Tyrosine Phosphatases, Non-Receptor/genetics
7.
Ann Neurol ; 83(2): 269-282, 2018 02.
Article in English | MEDLINE | ID: mdl-29328520

ABSTRACT

OBJECTIVE: Nemaline myopathy (NM) is one of the most common congenital nondystrophic myopathies and is characterized by muscle weakness, often from birth. Mutations in ACTA1 are a frequent cause of NM (ie, NEM3). ACTA1 encodes alpha-actin 1, the main constituent of the sarcomeric thin filament. The mechanisms by which mutations in ACTA1 contribute to muscle weakness in NEM3 are incompletely understood. We hypothesized that sarcomeric dysfunction contributes to muscle weakness in NEM3 patients. METHODS: To test this hypothesis, we performed contractility measurements in individual muscle fibers and myofibrils obtained from muscle biopsies of 14 NEM3 patients with different ACTA1 mutations. To identify the structural basis for impaired contractility, low angle X-ray diffraction and stimulated emission-depletion microscopy were applied. RESULTS: Our findings reveal that muscle fibers of NEM3 patients display a reduced maximal force-generating capacity, which is caused by dysfunctional sarcomere contractility in the majority of patients, as revealed by contractility measurements in myofibrils. Low angle X-ray diffraction and stimulated emission-depletion microscopy indicate that dysfunctional sarcomere contractility in NEM3 patients involves a lower number of myosin heads binding to actin during muscle activation. This lower number is not the result of reduced thin filament length. Interestingly, the calcium sensitivity of force is unaffected in some patients, but decreased in others. INTERPRETATION: Dysfunctional sarcomere contractility is an important contributor to muscle weakness in the majority of NEM3 patients. This information is crucial for patient stratification in future clinical trials. Ann Neurol 2018;83:269-282.


Subject(s)
Actins/genetics , Muscle Contraction/physiology , Muscle Weakness/genetics , Myopathies, Structural, Congenital/physiopathology , Sarcomeres/pathology , Adult , Female , Humans , Male , Middle Aged , Muscle Weakness/physiopathology , Muscle, Skeletal/pathology , Myopathies, Structural, Congenital/genetics , Sarcomeres/physiology , Young Adult
8.
Acta Neuropathol ; 137(3): 501-519, 2019 03.
Article in English | MEDLINE | ID: mdl-30701273

ABSTRACT

The identification of genes implicated in myopathies is essential for diagnosis and for revealing novel therapeutic targets. Here we characterize a novel subclass of congenital myopathy at the morphological, molecular, and functional level. Through exome sequencing, we identified de novo ACTN2 mutations, a missense and a deletion, in two unrelated patients presenting with progressive early-onset muscle weakness and respiratory involvement. Morphological and ultrastructural analyses of muscle biopsies revealed a distinctive pattern with the presence of muscle fibers containing small structured cores and jagged Z-lines. Deeper analysis of the missense mutation revealed mutant alpha-actinin-2 properly localized to the Z-line in differentiating myotubes and its level was not altered in muscle biopsy. Modelling of the disease in zebrafish and mice by exogenous expression of mutated alpha-actinin-2 recapitulated the abnormal muscle function and structure seen in the patients. Motor deficits were noted in zebrafish, and muscle force was impaired in isolated muscles from AAV-transduced mice. In both models, sarcomeric disorganization was evident, while expression of wild-type alpha-actinin-2 did not result in muscle anomalies. The murine muscles injected with mutant ACTN2 displayed cores and Z-line defects. Dominant ACTN2 mutations were previously associated with cardiomyopathies, and our data demonstrate that specific mutations in the well-known Z-line regulator alpha-actinin-2 can cause a skeletal muscle disorder.


Subject(s)
Actinin/genetics , Muscle, Skeletal/pathology , Myotonia Congenita/genetics , Myotonia Congenita/pathology , Animals , Female , Humans , Male , Mice , Mutation , Zebrafish
9.
Muscle Nerve ; 59(1): 137-141, 2019 01.
Article in English | MEDLINE | ID: mdl-30025162

ABSTRACT

INTRODUCTION: Mutations in the EXOSC3 gene are responsible for type 1 pontocerebellar hypoplasia, an autosomal recessive congenital disorder characterized by cerebellar atrophy, developmental delay, and anterior horn motor neuron degeneration. Muscle biopsies of these patients often show characteristics resembling classic spinal muscle atrophy, but to date, no distinct features have been identified. METHODS: Clinical data and muscle biopsy findings of 3 unrelated patients with EXOSC3 mutations are described. RESULTS: All patients presented as a severe congenital cognitive and neuromuscular phenotype with short survival, harboring the same point mutation (c.92G>C; p.Gly31Ala). Muscle biopsies consistently showed variable degrees of sarcomeric disorganization with myofibrillar remnants, Z-line thickening, and small nemaline bodies. CONCLUSIONS: In this uniform genetic cohort of patients with EXOSC3 mutations, sarcomeric disruption and rod structures were prominent features of muscle biopsies. In the context of neonatal hypotonia, ultrastructural studies might provide early clues for the diagnosis of EXOSC3-related pontocerebellar hypoplasia. Muscle Nerve 59:137-141, 2019.


Subject(s)
Exosome Multienzyme Ribonuclease Complex/genetics , Muscle, Skeletal/pathology , Mutation/genetics , Olivopontocerebellar Atrophies/genetics , Olivopontocerebellar Atrophies/pathology , RNA-Binding Proteins/genetics , Sarcoma/pathology , Biopsy , Child, Preschool , Cohort Studies , Female , Humans , Infant, Newborn , Male , Muscle, Skeletal/ultrastructure , Myopathies, Nemaline , Sarcoma/ultrastructure
10.
Hum Mutat ; 39(12): 1980-1994, 2018 12.
Article in English | MEDLINE | ID: mdl-30168660

ABSTRACT

SH3 and cysteine-rich domain-containing protein 3 (STAC3) is an essential component of the skeletal muscle excitation-contraction coupling (ECC) machinery, though its role and function are not yet completely understood. Here, we report 18 patients carrying a homozygous p.(Trp284Ser) STAC3 variant in addition to a patient compound heterozygous for the p.(Trp284Ser) and a novel splice site change (c.997-1G > T). Clinical severity ranged from prenatal onset with severe features at birth, to a milder and slowly progressive congenital myopathy phenotype. A malignant hyperthermia (MH)-like reaction had occurred in several patients. The functional analysis demonstrated impaired ECC. In particular, KCl-induced membrane depolarization resulted in significantly reduced sarcoplasmic reticulum Ca2+ release. Co-immunoprecipitation of STAC3 with CaV 1.1 in patients and control muscle samples showed that the protein interaction between STAC3 and CaV 1.1 was not significantly affected by the STAC3 variants. This study demonstrates that STAC3 gene analysis should be included in the diagnostic work up of patients of any ethnicity presenting with congenital myopathy, in particular if a history of MH-like episodes is reported. While the precise pathomechanism remains to be elucidated, our functional characterization of STAC3 variants revealed that defective ECC is not a result of CaV 1.1 sarcolemma mislocalization or impaired STAC3-CaV 1.1 interaction.


Subject(s)
Adaptor Proteins, Signal Transducing/genetics , Adaptor Proteins, Signal Transducing/metabolism , Amino Acid Substitution , Malignant Hyperthermia/genetics , Myotonia Congenita/genetics , Adaptor Proteins, Signal Transducing/chemistry , Adolescent , Calcium/metabolism , Child , Child, Preschool , Excitation Contraction Coupling , Female , Genetic Predisposition to Disease , Humans , Infant , Large-Conductance Calcium-Activated Potassium Channel alpha Subunits , Male , Malignant Hyperthermia/etiology , Malignant Hyperthermia/metabolism , Myotonia Congenita/complications , Myotonia Congenita/metabolism , Pedigree , Phenotype , Protein Binding , Protein Transport , Sarcoplasmic Reticulum/metabolism , Severity of Illness Index , Exome Sequencing , Young Adult
11.
Ann Neurol ; 81(3): 467-473, 2017 Mar.
Article in English | MEDLINE | ID: mdl-28220527

ABSTRACT

Congenital myopathies are phenotypically and genetically heterogeneous. We describe homozygous truncating mutations in MYPN in 2 unrelated families with a slowly progressive congenital cap myopathy. MYPN encodes the Z-line protein myopalladin implicated in sarcomere integrity. Functional experiments demonstrate that the mutations lead to mRNA defects and to a strong reduction in full-length protein expression. Myopalladin signals accumulate in the caps together with alpha-actinin. Dominant MYPN mutations were previously reported in cardiomyopathies. Our data uncover that mutations in MYPN cause either a cardiac or a congenital skeletal muscle disorder through different modes of inheritance. Ann Neurol 2017;81:467-473.


Subject(s)
Muscle Proteins/genetics , Myopathies, Structural, Congenital/genetics , Adult , Consanguinity , Exome , Female , Humans , Male , Mutation , Myopathies, Structural, Congenital/pathology , Myopathies, Structural, Congenital/physiopathology , Pedigree
12.
Brain ; 140(1): 37-48, 2017 01.
Article in English | MEDLINE | ID: mdl-27816943

ABSTRACT

Congenital myopathies define a heterogeneous group of neuromuscular diseases with neonatal or childhood hypotonia and muscle weakness. The genetic cause is still unknown in many patients, precluding genetic counselling and better understanding of the physiopathology. To identify novel genetic causes of congenital myopathies, exome sequencing was performed in three consanguineous families. We identified two homozygous frameshift mutations and a homozygous nonsense mutation in the mitogen-activated protein triple kinase ZAK. In total, six affected patients carry these mutations. Reverse transcription polymerase chain reaction and transcriptome analyses suggested nonsense mRNA decay as a main impact of mutations. The patients demonstrated a generalized slowly progressive muscle weakness accompanied by decreased vital capacities. A combination of proximal contractures with distal joint hyperlaxity is a distinct feature in one family. The low endurance and compound muscle action potential amplitude were strongly ameliorated on treatment with anticholinesterase inhibitor in another patient. Common histopathological features encompassed fibre size variation, predominance of type 1 fibre and centralized nuclei. A peculiar subsarcolemmal accumulation of mitochondria pointing towards the centre of the fibre was a novel histological hallmark in one family. These findings will improve the molecular diagnosis of congenital myopathies and implicate the mitogen-activated protein kinase (MAPK) signalling as a novel pathway altered in these rare myopathies.


Subject(s)
Muscle Fibers, Fast-Twitch/pathology , Muscle Fibers, Slow-Twitch/pathology , Myopathies, Structural, Congenital , Protein Kinases/genetics , Adult , Consanguinity , Exome , Female , Humans , MAP Kinase Kinase Kinases , Male , Mutation , Myopathies, Structural, Congenital/genetics , Myopathies, Structural, Congenital/pathology , Myopathies, Structural, Congenital/physiopathology , Pedigree
13.
Ann Neurol ; 79(6): 959-69, 2016 06.
Article in English | MEDLINE | ID: mdl-27074222

ABSTRACT

OBJECTIVE: Thin filament myopathies are among the most common nondystrophic congenital muscular disorders, and are caused by mutations in genes encoding proteins that are associated with the skeletal muscle thin filament. Mechanisms underlying muscle weakness are poorly understood, but might involve the length of the thin filament, an important determinant of force generation. METHODS: We investigated the sarcomere length-dependence of force, a functional assay that provides insights into the contractile strength of muscle fibers as well as the length of the thin filaments, in muscle fibers from 51 patients with thin filament myopathy caused by mutations in NEB, ACTA1, TPM2, TPM3, TNNT1, KBTBD13, KLHL40, and KLHL41. RESULTS: Lower force generation was observed in muscle fibers from patients of all genotypes. In a subset of patients who harbor mutations in NEB and ACTA1, the lower force was associated with downward shifted force-sarcomere length relations, indicative of shorter thin filaments. Confocal microscopy confirmed shorter thin filaments in muscle fibers of these patients. A conditional Neb knockout mouse model, which recapitulates thin filament myopathy, revealed a compensatory mechanism; the lower force generation that was associated with shorter thin filaments was compensated for by increasing the number of sarcomeres in series. This allowed muscle fibers to operate at a shorter sarcomere length and maintain optimal thin-thick filament overlap. INTERPRETATION: These findings might provide a novel direction for the development of therapeutic strategies for thin filament myopathy patients with shortened thin filament lengths. Ann Neurol 2016;79:959-969.


Subject(s)
Cytoskeleton/genetics , Muscle Proteins/genetics , Muscular Diseases/genetics , Muscular Diseases/physiopathology , Sarcomeres/genetics , Actins/genetics , Animals , Case-Control Studies , Cytoskeleton/physiology , Humans , Mice, Knockout , Muscle Contraction/genetics , Muscle Contraction/physiology , Muscle Proteins/metabolism , Muscle Proteins/physiology , Muscle, Skeletal/metabolism , Mutation , Sarcomeres/physiology
14.
Acta Neuropathol ; 134(6): 889-904, 2017 Dec.
Article in English | MEDLINE | ID: mdl-28685322

ABSTRACT

X-linked myotubular myopathy (XLMTM), a severe congenital myopathy, is caused by mutations in the MTM1 gene located on the X chromosome. A majority of affected males die in the early postnatal period, whereas female carriers are believed to be usually asymptomatic. Nevertheless, several affected females have been reported. To assess the phenotypic and pathological spectra of carrier females and to delineate diagnostic clues, we characterized 17 new unrelated affected females and performed a detailed comparison with previously reported cases at the clinical, muscle imaging, histological, ultrastructural and molecular levels. Taken together, the analysis of this large cohort of 43 cases highlights a wide spectrum of clinical severity ranging from severe neonatal and generalized weakness, similar to XLMTM male, to milder adult forms. Several females show a decline in respiratory function. Asymmetric weakness is a noteworthy frequent specific feature potentially correlated to an increased prevalence of highly skewed X inactivation. Asymmetry of growth was also noted. Other diagnostic clues include facial weakness, ptosis and ophthalmoplegia, skeletal and joint abnormalities, and histopathological signs that are hallmarks of centronuclear myopathy such as centralized nuclei and necklace fibers. The histopathological findings also demonstrate a general disorganization of muscle structure in addition to these specific hallmarks. Thus, MTM1 mutations in carrier females define a specific myopathy, which may be independent of the presence of an XLMTM male in the family. As several of the reported affected females carry large heterozygous MTM1 deletions not detectable by Sanger sequencing, and as milder phenotypes present as adult-onset limb-girdle myopathy, the prevalence of this myopathy is likely to be greatly underestimated. This report should aid diagnosis and thus the clinical management and genetic counseling of MTM1 carrier females. Furthermore, the clinical and pathological history of this cohort may be useful for therapeutic projects in males with XLMTM, as it illustrates the spectrum of possible evolution of the disease in patients surviving long term.


Subject(s)
Heterozygote , Mutation , Myopathies, Structural, Congenital/diagnosis , Protein Tyrosine Phosphatases, Non-Receptor/genetics , Adolescent , Adult , Aged , Child , Child, Preschool , Cohort Studies , Diagnosis, Differential , Female , Humans , Middle Aged , Myopathies, Structural, Congenital/genetics , Myopathies, Structural, Congenital/pathology , Myopathies, Structural, Congenital/physiopathology , Phenotype , Protein Tyrosine Phosphatases, Non-Receptor/metabolism , Severity of Illness Index
15.
Acta Neuropathol ; 133(4): 517-533, 2017 04.
Article in English | MEDLINE | ID: mdl-28012042

ABSTRACT

Muscle contraction upon nerve stimulation relies on excitation-contraction coupling (ECC) to promote the rapid and generalized release of calcium within myofibers. In skeletal muscle, ECC is performed by the direct coupling of a voltage-gated L-type Ca2+ channel (dihydropyridine receptor; DHPR) located on the T-tubule with a Ca2+ release channel (ryanodine receptor; RYR1) on the sarcoplasmic reticulum (SR) component of the triad. Here, we characterize a novel class of congenital myopathy at the morphological, molecular, and functional levels. We describe a cohort of 11 patients from 7 families presenting with perinatal hypotonia, severe axial and generalized weakness. Ophthalmoplegia is present in four patients. The analysis of muscle biopsies demonstrated a characteristic intermyofibrillar network due to SR dilatation, internal nuclei, and areas of myofibrillar disorganization in some samples. Exome sequencing revealed ten recessive or dominant mutations in CACNA1S (Cav1.1), the pore-forming subunit of DHPR in skeletal muscle. Both recessive and dominant mutations correlated with a consistent phenotype, a decrease in protein level, and with a major impairment of Ca2+ release induced by depolarization in cultured myotubes. While dominant CACNA1S mutations were previously linked to malignant hyperthermia susceptibility or hypokalemic periodic paralysis, our findings strengthen the importance of DHPR for perinatal muscle function in human. These data also highlight CACNA1S and ECC as therapeutic targets for the development of treatments that may be facilitated by the previous knowledge accumulated on DHPR.


Subject(s)
Calcium Channels/genetics , Calcium Channels/metabolism , Myotonia Congenita/genetics , Myotonia Congenita/metabolism , Adolescent , Adult , Calcium/metabolism , Calcium Channels, L-Type , Cells, Cultured , Child , Cohort Studies , Family , Female , Humans , Male , Middle Aged , Muscle Cells/metabolism , Muscle Cells/pathology , Muscle, Skeletal/diagnostic imaging , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Mutation , Myotonia Congenita/diagnostic imaging , Myotonia Congenita/pathology , Phenotype , Sequence Homology, Amino Acid , Young Adult
16.
Am J Hum Genet ; 92(2): 271-8, 2013 Feb 07.
Article in English | MEDLINE | ID: mdl-23332920

ABSTRACT

Tubular aggregates are regular arrays of membrane tubules accumulating in muscle with age. They are found as secondary features in several muscle disorders, including alcohol- and drug-induced myopathies, exercise-induced cramps, and inherited myasthenia, but also exist as a pure genetic form characterized by slowly progressive muscle weakness. We identified dominant STIM1 mutations as a genetic cause of tubular-aggregate myopathy (TAM). Stromal interaction molecule 1 (STIM1) is the main Ca(2+) sensor in the endoplasmic reticulum, and all mutations were found in the highly conserved intraluminal Ca(2+)-binding EF hands. Ca(2+) stores are refilled through a process called store-operated Ca(2+) entry (SOCE). Upon Ca(2+)-store depletion, wild-type STIM1 oligomerizes and thereby triggers extracellular Ca(2+) entry. In contrast, the missense mutations found in our four TAM-affected families induced constitutive STIM1 clustering, indicating that Ca(2+) sensing was impaired. By monitoring the calcium response of TAM myoblasts to SOCE, we found a significantly higher basal Ca(2+) level in TAM cells and a dysregulation of intracellular Ca(2+) homeostasis. Because recessive STIM1 loss-of-function mutations were associated with immunodeficiency, we conclude that the tissue-specific impact of STIM1 loss or constitutive activation is different and that a tight regulation of STIM1-dependent SOCE is fundamental for normal skeletal-muscle structure and function.


Subject(s)
Calcium/metabolism , Membrane Proteins/metabolism , Myopathies, Structural, Congenital/pathology , Neoplasm Proteins/metabolism , Adolescent , Adult , Aged , Amino Acid Sequence , Animals , Base Sequence , Cell Line , Child , Female , Homeostasis , Humans , Male , Membrane Proteins/chemistry , Membrane Proteins/genetics , Mice , Middle Aged , Molecular Sequence Data , Muscles/pathology , Muscles/ultrastructure , Mutation/genetics , Myoblasts/metabolism , Myoblasts/pathology , Myopathies, Structural, Congenital/genetics , Neoplasm Proteins/chemistry , Neoplasm Proteins/genetics , Pedigree , Phenotype , Stromal Interaction Molecule 1 , Young Adult
17.
Am J Hum Genet ; 93(1): 6-18, 2013 Jul 11.
Article in English | MEDLINE | ID: mdl-23746549

ABSTRACT

Nemaline myopathy (NEM) is a common congenital myopathy. At the very severe end of the NEM clinical spectrum are genetically unresolved cases of autosomal-recessive fetal akinesia sequence. We studied a multinational cohort of 143 severe-NEM-affected families lacking genetic diagnosis. We performed whole-exome sequencing of six families and targeted gene sequencing of additional families. We identified 19 mutations in KLHL40 (kelch-like family member 40) in 28 apparently unrelated NEM kindreds of various ethnicities. Accounting for up to 28% of the tested individuals in the Japanese cohort, KLHL40 mutations were found to be the most common cause of this severe form of NEM. Clinical features of affected individuals were severe and distinctive and included fetal akinesia or hypokinesia and contractures, fractures, respiratory failure, and swallowing difficulties at birth. Molecular modeling suggested that the missense substitutions would destabilize the protein. Protein studies showed that KLHL40 is a striated-muscle-specific protein that is absent in KLHL40-associated NEM skeletal muscle. In zebrafish, klhl40a and klhl40b expression is largely confined to the myotome and skeletal muscle, and knockdown of these isoforms results in disruption of muscle structure and loss of movement. We identified KLHL40 mutations as a frequent cause of severe autosomal-recessive NEM and showed that it plays a key role in muscle development and function. Screening of KLHL40 should be a priority in individuals who are affected by autosomal-recessive NEM and who present with prenatal symptoms and/or contractures and in all Japanese individuals with severe NEM.


Subject(s)
Muscle Proteins/metabolism , Muscle, Skeletal/pathology , Mutation, Missense , Myopathies, Nemaline/genetics , Amino Acid Substitution , Animals , Asian People/genetics , Cohort Studies , Frameshift Mutation , Genes, Recessive , Genetic Association Studies , Genetic Predisposition to Disease , Humans , Muscle Proteins/genetics , Myopathies, Nemaline/ethnology , Myopathies, Nemaline/pathology , Pedigree , Polymorphism, Single Nucleotide , Severity of Illness Index , Zebrafish/genetics
18.
Muscle Nerve ; 54(2): 192-202, 2016 08.
Article in English | MEDLINE | ID: mdl-26670690

ABSTRACT

INTRODUCTION: We sought to define the whole-body MRI (WB-MRI) fingerprint of muscle involvement in pediatric LMNA-related dystrophy (LMNA-RD) and to compare it with SEPN1-related myopathy (SEPN1-RM). METHODS: Signal abnormality and atrophy in 109 muscles were scored by semiquantitative scales in 8 children with LMNA-RD and represented by heatmaps. These features were compared with those from 9 SEPN1-RM patients by random forests. RESULTS: LMNA-RD showed predominant signal abnormalities in erector spinae, serratus anterior, subscapularis, gluteus medius and minimus, vastii, adductor magnus and longus, semimembranosus, medial gastrocnemius, and soleus muscles. Psoas, sternocleidomastoid, gracilis, and sartorius muscles often had normal signal but showed atrophy. Cranial, flexor digitorum longus, and tibialis posterior muscles were spared. According to random forests, atrophied semimembranosus in SEPN1-RM was the most relevant feature to distinguish these patients from LMNA-RD. CONCLUSIONS: A selective pattern in WB-MRI for pediatric LMNA-RD exists and can be differentiated from SEPN1-RM by machine learning. Muscle Nerve 54: 192-202, 2016.


Subject(s)
Lamin Type A/genetics , Magnetic Resonance Imaging/methods , Muscle Proteins/genetics , Muscular Diseases/diagnostic imaging , Muscular Diseases/genetics , Selenoproteins/genetics , Whole Body Imaging/methods , Adolescent , Child , Child, Preschool , Female , Humans , Male , Retrospective Studies
19.
Ann Neurol ; 76(6): 891-8, 2014 Dec.
Article in English | MEDLINE | ID: mdl-25272951

ABSTRACT

We describe a slowly progressive myopathy in 7 unrelated adult patients with storage of polyglucosan in muscle fibers. Genetic investigation revealed homozygous or compound heterozygous deleterious variants in the glycogenin-1 gene (GYG1). Most patients showed depletion of glycogenin-1 in skeletal muscle, whereas 1 showed presence of glycogenin-1 lacking the C-terminal that normally binds glycogen synthase. Our results indicate that either depletion of glycogenin-1 or impaired interaction with glycogen synthase underlies this new form of glycogen storage disease that differs from a previously reported patient with GYG1 mutations who showed profound glycogen depletion in skeletal muscle and accumulation of glycogenin-1.


Subject(s)
Glucosyltransferases/deficiency , Glycogen Storage Disease/diagnosis , Glycogen Storage Disease/metabolism , Glycoproteins/deficiency , Muscle, Skeletal/metabolism , Adult , Aged , Female , Glucosyltransferases/genetics , Glycogen Storage Disease/genetics , Glycogen Synthase/metabolism , Glycoproteins/genetics , Humans , Male , Middle Aged
20.
Muscle Nerve ; 52(5): 895-9, 2015 Nov.
Article in English | MEDLINE | ID: mdl-25959956

ABSTRACT

INTRODUCTION: Cylindrical spirals are characteristic muscular inclusions consisting of spiraling double-laminated membranes. They are found in heterogeneous clinical conditions. METHODS: We obtained muscle biopsies from 2 young sisters with severe congenital hypotonia, muscle weakness, and epileptic encephalopathy, and identified cylindrical spirals. RESULTS: We found an association between congenital encephalomyopathy and cylindrical spirals. CONCLUSIONS: In this morphological and ultrastructural study, we speculate on the origin of these peculiar structures.


Subject(s)
Hyperventilation/complications , Hyperventilation/diagnosis , Intellectual Disability/complications , Intellectual Disability/diagnosis , Muscle Weakness/complications , Muscle Weakness/diagnosis , Sarcolemma/pathology , Adolescent , Child , Facies , Female , Humans , Muscular Diseases/complications , Muscular Diseases/diagnosis
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