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1.
Neuromuscul Disord ; 31(10): 1081-1089, 2021 10.
Article in English | MEDLINE | ID: mdl-34736628

ABSTRACT

The major advances in genetic neuromuscular disorders in the last 30 years have been: (a) identification of the genetic basis for hundreds of these disorders, (b) through knowing the genes, understanding their pathobiology and (c) subsequent implementation of evidence-based treatments for some of the disorders. New genomic technologies are providing precision diagnosis, mode of inheritance and likely prognosis for more patients than ever before. Parents of children with a genetic diagnosis can then use preimplantation or prenatal diagnosis to avoid having further affected children if they wish. But is this the best we can do for genetic neuromuscular disorders? Since the 1980s, it has been argued it would be better to identify Duchenne muscular dystrophy carrier mothers, rather than diagnose their affected sons. Carrier screening for recessive disorders can identify couples with a high chance of having affected children. It allows couples reproductive choice and can prevent infant morbidity and mortality and significant distress for families. Professional bodies in many countries now recommend prospective parents should be informed about carrier screening. Implementing and funding expensive therapies increases the cost-effectiveness of carrier screening, increasing its attractiveness to governments. Best practice for genetic neuromuscular disorders should include equitable access to carrier screening.


Subject(s)
Neuromuscular Diseases/diagnosis , Child , Female , Genetic Carrier Screening , Genetic Counseling , Humans , Muscular Dystrophy, Duchenne/genetics , Neuromuscular Diseases/genetics , Parents , Pregnancy , Preimplantation Diagnosis , Prenatal Diagnosis
2.
Am J Hum Genet ; 102(3): 505-514, 2018 03 01.
Article in English | MEDLINE | ID: mdl-29499166

ABSTRACT

Although mutations in more than 90 genes are known to cause CMT, the underlying genetic cause of CMT remains unknown in more than 50% of affected individuals. The discovery of additional genes that harbor CMT2-causing mutations increasingly depends on sharing sequence data on a global level. In this way-by combining data from seven countries on four continents-we were able to define mutations in ATP1A1, which encodes the alpha1 subunit of the Na+,K+-ATPase, as a cause of autosomal-dominant CMT2. Seven missense changes were identified that segregated within individual pedigrees: c.143T>G (p.Leu48Arg), c.1775T>C (p.Ile592Thr), c.1789G>A (p.Ala597Thr), c.1801_1802delinsTT (p.Asp601Phe), c.1798C>G (p.Pro600Ala), c.1798C>A (p.Pro600Thr), and c.2432A>C (p.Asp811Ala). Immunostaining peripheral nerve axons localized ATP1A1 to the axolemma of myelinated sensory and motor axons and to Schmidt-Lanterman incisures of myelin sheaths. Two-electrode voltage clamp measurements on Xenopus oocytes demonstrated significant reduction in Na+ current activity in some, but not all, ouabain-insensitive ATP1A1 mutants, suggesting a loss-of-function defect of the Na+,K+ pump. Five mutants fall into a remarkably narrow motif within the helical linker region that couples the nucleotide-binding and phosphorylation domains. These findings identify a CMT pathway and a potential target for therapy development in degenerative diseases of peripheral nerve axons.


Subject(s)
Charcot-Marie-Tooth Disease/genetics , Genes, Dominant , Mutation/genetics , Sodium-Potassium-Exchanging ATPase/genetics , Adult , Aged , Aged, 80 and over , Amino Acid Sequence , Child , Family , Female , Humans , Male , Middle Aged , Pedigree , Sodium-Potassium-Exchanging ATPase/chemistry , Young Adult
3.
Am J Hum Genet ; 96(6): 955-61, 2015 Jun 04.
Article in English | MEDLINE | ID: mdl-26004201

ABSTRACT

Arthrogryposis multiplex congenita is defined by the presence of contractures across two or more major joints and results from reduced or absent fetal movement. Here, we present three consanguineous families affected by lethal arthrogryposis multiplex congenita. By whole-exome or targeted exome sequencing, it was shown that the probands each harbored a different homozygous mutation (one missense, one nonsense, and one frameshift mutation) in GPR126. GPR126 encodes G-protein-coupled receptor 126, which has been shown to be essential for myelination of axons in the peripheral nervous system in fish and mice. A previous study reported that Gpr126(-/-) mice have a lethal arthrogryposis phenotype. We have shown that the peripheral nerves in affected individuals from one family lack myelin basic protein, suggesting that this disease in affected individuals is due to defective myelination of the peripheral axons during fetal development. Previous work has suggested that autoproteolytic cleavage is important for activating GPR126 signaling, and our biochemical assays indicated that the missense substitution (p.Val769Glu [c.2306T>A]) impairs autoproteolytic cleavage of GPR126. Our data indicate that GPR126 is critical for myelination of peripheral nerves in humans. This study adds to the literature implicating defective axoglial function as a key cause of severe arthrogryposis multiplex congenita and suggests that GPR126 mutations should be investigated in individuals affected by this disorder.


Subject(s)
Arthrogryposis/genetics , Arthrogryposis/pathology , Mutation, Missense/genetics , Receptors, G-Protein-Coupled/genetics , Amino Acid Sequence , Base Sequence , Exome/genetics , Humans , Immunohistochemistry , Molecular Sequence Data , Nerve Fibers, Myelinated/pathology , Pedigree , Sequence Alignment , Sequence Analysis, DNA
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