M. Scoto
UCL Institute of Child Health
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by M. Scoto.
Neurology | 2012
Matthew B. Harms; Kassandra M. Ori-McKenney; M. Scoto; E.P. Tuck; Shaughn Bell; Duanduan Ma; S. Masi; Peggy Allred; M. T. Al-Lozi; Mary M. Reilly; Lindsey J. Miller; Agnes Jani-Acsadi; Alan Pestronk; Michael E. Shy; Francesco Muntoni; Richard B. Vallee; Robert H. Baloh
Objective: To identify the gene responsible for 14q32-linked dominant spinal muscular atrophy with lower extremity predominance (SMA-LED, OMIM 158600). Methods: Target exon capture and next generation sequencing was used to analyze the 73 genes in the 14q32 linkage interval in 3 SMA-LED family members. Candidate gene sequencing in additional dominant SMA families used PCR and pooled target capture methods. Patient fibroblasts were biochemically analyzed. Results: Regional exome sequencing of all candidate genes in the 14q32 interval in the original SMA-LED family identified only one missense mutation that segregated with disease state—a mutation in the tail domain of DYNC1H1 (I584L). Sequencing of DYNC1H1 in 32 additional probands with lower extremity predominant SMA found 2 additional heterozygous tail domain mutations (K671E and Y970C), confirming that multiple different mutations in the same domain can cause a similar phenotype. Biochemical analysis of dynein purified from patient-derived fibroblasts demonstrated that the I584L mutation dominantly disrupted dynein complex stability and function. Conclusions: We demonstrate that mutations in the tail domain of the heavy chain of cytoplasmic dynein (DYNC1H1) cause spinal muscular atrophy and provide experimental evidence that a human DYNC1H1 mutation disrupts dynein complex assembly and function. DYNC1H1 mutations were recently found in a family with Charcot-Marie-Tooth disease (type 2O) and in a child with mental retardation. Both of these phenotypes show partial overlap with the spinal muscular atrophy patients described here, indicating that dynein dysfunction is associated with a range of phenotypes in humans involving neuronal development and maintenance.
American Journal of Human Genetics | 2013
Emily C. Oates; Alexander M. Rossor; Majid Hafezparast; Michael Gonzalez; Fiorella Speziani; Daniel G. MacArthur; Monkol Lek; Ellen Cottenie; M. Scoto; A. Reghan Foley; Henry Houlden; Linda Greensmith; Michaela Auer-Grumbach; Thomas R. Pieber; Tim M. Strom; Rebecca Schüle; David N. Herrmann; Janet Sowden; Gyula Acsadi; Manoj P. Menezes; Nigel F. Clarke; Stephan Züchner; Francesco Muntoni; Kathryn N. North; Mary M. Reilly
Dominant congenital spinal muscular atrophy (DCSMA) is a disorder of developing anterior horn cells and shows lower-limb predominance and clinical overlap with hereditary spastic paraplegia (HSP), a lower-limb-predominant disorder of corticospinal motor neurons. We have identified four mutations in bicaudal D homolog 2 (Drosophila) (BICD2) in six kindreds affected by DCSMA, DCSMA with upper motor neuron features, or HSP. BICD2 encodes BICD2, a key adaptor protein that interacts with the dynein-dynactin motor complex, which facilitates trafficking of cellular cargos that are critical to motor neuron development and maintenance. We demonstrate that mutations resulting in amino acid substitutions in two binding regions of BICD2 increase its binding affinity for the cytoplasmic dynein-dynactin complex, which might result in the perturbation of BICD2-dynein-dynactin-mediated trafficking, and impair neurite outgrowth. These findings provide insight into the mechanism underlying both the static and the slowly progressive clinical features and the motor neuron pathology that characterize BICD2-associated diseases, and underscore the importance of the dynein-dynactin transport pathway in the development and survival of both lower and upper motor neurons.
Brain | 2014
A. Reghan Foley; Manoj P. Menezes; Amelie Pandraud; Michael Gonzalez; Ahmad Al-Odaib; Alexander J. Abrams; Kumiko Sugano; Atsushi Yonezawa; Adnan Y. Manzur; Joshua Burns; Imelda Hughes; B. Gary McCullagh; Heinz Jungbluth; Ming Lim; Jean-Pierre Lin; André Mégarbané; J. Andoni Urtizberea; Ayaz H. Shah; Jayne Antony; Richard Webster; Alexander Broomfield; Joanne Ng; Ann Agnes Mathew; James J. O’Byrne; Eva Forman; M. Scoto; Manish Prasad; Katherine O’Brien; S. E. Olpin; Marcus Oppenheim
Childhood onset motor neuron diseases or neuronopathies are a clinically heterogeneous group of disorders. A particularly severe subgroup first described in 1894, and subsequently called Brown-Vialetto-Van Laere syndrome, is characterized by progressive pontobulbar palsy, sensorineural hearing loss and respiratory insufficiency. There has been no treatment for this progressive neurodegenerative disorder, which leads to respiratory failure and usually death during childhood. We recently reported the identification of SLC52A2, encoding riboflavin transporter RFVT2, as a new causative gene for Brown-Vialetto-Van Laere syndrome. We used both exome and Sanger sequencing to identify SLC52A2 mutations in patients presenting with cranial neuropathies and sensorimotor neuropathy with or without respiratory insufficiency. We undertook clinical, neurophysiological and biochemical characterization of patients with mutations in SLC52A2, functionally analysed the most prevalent mutations and initiated a regimen of high-dose oral riboflavin. We identified 18 patients from 13 families with compound heterozygous or homozygous mutations in SLC52A2. Affected individuals share a core phenotype of rapidly progressive axonal sensorimotor neuropathy (manifesting with sensory ataxia, severe weakness of the upper limbs and axial muscles with distinctly preserved strength of the lower limbs), hearing loss, optic atrophy and respiratory insufficiency. We demonstrate that SLC52A2 mutations cause reduced riboflavin uptake and reduced riboflavin transporter protein expression, and we report the response to high-dose oral riboflavin therapy in patients with SLC52A2 mutations, including significant and sustained clinical and biochemical improvements in two patients and preliminary clinical response data in 13 patients with associated biochemical improvements in 10 patients. The clinical and biochemical responses of this SLC52A2-specific cohort suggest that riboflavin supplementation can ameliorate the progression of this neurodegenerative condition, particularly when initiated soon after the onset of symptoms.
Human Mutation | 2012
Andrea Klein; Suzanne Lillis; Iulia Munteanu; M. Scoto; Haiyan Zhou; R. Quinlivan; Volker Straub; Adnan Y. Manzur; Helen Roper; Pierre-Yves Jeannet; Wojtek Rakowicz; David Hilton Jones; Uffe Birk Jensen; Elizabeth Wraige; Natalie Trump; Ulrike Schara; Hanns Lochmüller; Anna Sarkozy; Helen Kingston; Fiona Norwood; Maxwell S Damian; Janbernd Kirschner; Cheryl Longman; Mark Roberts; Michaela Auer-Grumbach; Imelda Hughes; Kate Bushby; C. Sewry; S. Robb; Stephen Abbs
Ryanodine receptor 1 (RYR1) mutations are a common cause of congenital myopathies associated with both dominant and recessive inheritance. Histopathological findings frequently feature central cores or multi‐minicores, more rarely, type 1 predominance/uniformity, fiber‐type disproportion, increased internal nucleation, and fatty and connective tissue. We describe 71 families, 35 associated with dominant RYR1 mutations and 36 with recessive inheritance. Five of the dominant mutations and 35 of the 55 recessive mutations have not been previously reported. Dominant mutations, typically missense, were frequently located in recognized mutational hotspot regions, while recessive mutations were distributed throughout the entire coding sequence. Recessive mutations included nonsense and splice mutations expected to result in reduced RyR1 protein. There was wide clinical variability. As a group, dominant mutations were associated with milder phenotypes; patients with recessive inheritance had earlier onset, more weakness, and functional limitations. Extraocular and bulbar muscle involvement was almost exclusively observed in the recessive group. In conclusion, our study reports a large number of novel RYR1 mutations and indicates that recessive variants are at least as frequent as the dominant ones. Assigning pathogenicity to novel mutations is often difficult, and interpretation of genetic results in the context of clinical, histological, and muscle magnetic resonance imaging findings is essential. Hum Mutat 33:981–988, 2012.
PLOS ONE | 2013
I. Zaharieva; Mattia Calissano; M. Scoto; Mark D. Preston; Sebahattin Cirak; L. Feng; James J. Collins; Ryszard Kole; M. Guglieri; Volker Straub; Kate Bushby; Alessandra Ferlini; Jennifer E. Morgan; Francesco Muntoni
Duchenne muscular Dystrophy (DMD) is an inherited disease caused by mutations in the dystrophin gene that disrupt the open reading frame, while in frame mutations result in Becker muscular dystrophy (BMD). Ullrich congenital muscular dystrophy (UCMD) is due to mutations affecting collagen VI genes. Specific muscle miRNAs (dystromirs) are potential non-invasive biomarkers for monitoring the outcome of therapeutic interventions and disease progression. We quantified miR-1, miR-133a,b, miR-206 and miR-31 in serum from patients with DMD, BMD, UCMD and healthy controls. MiR-1, miR-133a,b and miR-206 were upregulated in DMD, but unchanged in UCMD compared to controls. Milder DMD patients had higher levels of dystromirs than more severely affected patients. Patients with low forced vital capacity (FVC) values, indicating respiratory muscle weakness, had low levels of serum miR-1 and miR-133b. There was no significant difference in the level of the dystromirs in BMD compared to controls. We also assessed the effect of dystrophin restoration on the expression of the five dystromirs in serum of DMD patients treated systemically for 12 weeks with antisense oligomer eteplirsen that induces skipping of exon 51 in the dystrophin gene. The dystromirs were also analysed in muscle biopsies of DMD patients included in a single dose intramuscular eteplirsen clinical trial. Our analysis detected a trend towards normalization of these miRNA between the pre- and post-treatment samples of the systemic trial, which however failed to reach statistical significance. This could possibly be due to the small number of patients and the short duration of these clinical trials. Although longer term studies are needed to clarify the relationship between dystrophin restoration following therapeutic intervention and the level of circulating miRNAs, our results indicate that miR-1 and miR-133 can be considered as exploratory biomarkers for monitoring the progression of muscle weakness and indirectly the remaining muscle mass in DMD.
Neuromuscular Disorders | 2013
Lorenzo Maggi; M. Scoto; Sebahattin Cirak; S. Robb; Andrea Klein; Suzanne Lillis; T. Cullup; L. Feng; Adnan Y. Manzur; C. Sewry; Stephen Abbs; Heinz Jungbluth; Francesco Muntoni
The congenital myopathies are a group of inherited neuromuscular disorders mainly defined on the basis of characteristic histopathological features. We analysed 66 patients assessed at a single centre over a 5 year period. Of the 54 patients where muscle biopsy was available, 29 (54%) had a core myopathy (central core disease, multi-minicore disease), 9 (17%) had nemaline myopathy, 7 (13%) had myotubular/centronuclear myopathy, 2 (4%) had congenital fibre type disproportion, 6 (11%) had isolated type 1 predominance and 1 (2%) had a mixed core-rod myopathy. Of the 44 patients with a genetic diagnosis, RYR1 was mutated in 26 (59%), ACTA1 in 7 (16%), SEPN1 in 7 (16%), MTM1 in 2 (5%), NEB in 1 (2%) and TPM3 in 1 (2%). Clinically, 77% of patients older than 18 months could walk independently. 35% of all patients required ventilatory support and/or enteral feeding. Clinical course was stable or improved in 57/66 (86%) patients, whilst 4 (6%) got worse and 5 (8%) died. These findings indicate that core myopathies are the most common form of congenital myopathies and that more than half can be attributed to RYR1 mutations. The underlying genetic defect remains to be identified in 1/3 of congenital myopathies cases.
Nature Genetics | 2011
Clare V. Logan; Barbara Lucke; Caroline Pottinger; Zakia Abdelhamed; David A. Parry; Katarzyna Szymanska; Christine P. Diggle; Anne van Riesen; J.E. Morgan; Grace Markham; Ian Ellis; Adnan Y. Manzur; Alexander F. Markham; Mike Shires; Tim Helliwell; M. Scoto; Christoph Hübner; David T. Bonthron; Graham R. Taylor; Eamonn Sheridan; Francesco Muntoni; Ian M. Carr; Markus Schuelke; Colin A. Johnson
Infantile myopathies with diaphragmatic paralysis are genetically heterogeneous, and clinical symptoms do not assist in differentiating between them. We used phased haplotype analysis with subsequent targeted exome sequencing to identify MEGF10 mutations in a previously unidentified type of infantile myopathy with diaphragmatic weakness, areflexia, respiratory distress and dysphagia. MEGF10 is highly expressed in activated satellite cells and regulates their proliferation as well as their differentiation and fusion into multinucleated myofibers, which are greatly reduced in muscle from individuals with early onset myopathy, areflexia, respiratory distress and dysphagia.
Developmental Medicine & Child Neurology | 2016
Valeria Ricotti; William Mandy; M. Scoto; Marika Pane; Nicolas Deconinck; Sonia Messina; Eugenio E Mercuri; David Skuse; Francesco Muntoni
Duchenne muscular dystrophy (DMD) is associated with neuropsychiatric disorders. The aim of the study was to characterize the DMD neuropsychiatric profile fully and to explore underlying genotype/phenotype associations.
Neurology | 2015
M. Scoto; Alexander M. Rossor; Matthew B. Harms; Sebahattin Cirak; Mattia Calissano; S. Robb; Adnan Y. Manzur; Amaia Martínez Arroyo; Aida Rodriguez Sanz; Sahar Mansour; Penny Fallon; Irene Hadjikoumi; Andrea Klein; Michele Yang; Marianne de Visser; W.C.G. (Truus) Overweg-Plandsoen; Frank Baas; J. Paul Taylor; Michael Benatar; Anne M. Connolly; Muhammad Al-Lozi; John Nixon; Christian de Goede; A. Reghan Foley; Catherine McWilliam; Matthew Pitt; C. Sewry; Rahul Phadke; Majid Hafezparast; W.K. “Kling” Chong
Objective: To expand the clinical phenotype of autosomal dominant congenital spinal muscular atrophy with lower extremity predominance (SMA-LED) due to mutations in the dynein, cytoplasmic 1, heavy chain 1 (DYNC1H1) gene. Methods: Patients with a phenotype suggestive of a motor, non–length-dependent neuronopathy predominantly affecting the lower limbs were identified at participating neuromuscular centers and referred for targeted sequencing of DYNC1H1. Results: We report a cohort of 30 cases of SMA-LED from 16 families, carrying mutations in the tail and motor domains of DYNC1H1, including 10 novel mutations. These patients are characterized by congenital or childhood-onset lower limb wasting and weakness frequently associated with cognitive impairment. The clinical severity is variable, ranging from generalized arthrogryposis and inability to ambulate to exclusive and mild lower limb weakness. In many individuals with cognitive impairment (9/30 had cognitive impairment) who underwent brain MRI, there was an underlying structural malformation resulting in polymicrogyric appearance. The lower limb muscle MRI shows a distinctive pattern suggestive of denervation characterized by sparing and relative hypertrophy of the adductor longus and semitendinosus muscles at the thigh level, and diffuse involvement with relative sparing of the anterior-medial muscles at the calf level. Proximal muscle histopathology did not always show classic neurogenic features. Conclusion: Our report expands the clinical spectrum of DYNC1H1-related SMA-LED to include generalized arthrogryposis. In addition, we report that the neurogenic peripheral pathology and the CNS neuronal migration defects are often associated, reinforcing the importance of DYNC1H1 in both central and peripheral neuronal functions.
Neurology | 2011
M. Scoto; Sebahattin Cirak; Rachael Mein; L. Feng; A. Manzur; S. Robb; Anne-Marie Childs; R. Quinlivan; Helen Roper; David Hilton Jones; Cheryl Longman; G. Chow; Marika Pane; M. Main; Michael G. Hanna; K. Bushby; C. Sewry; Steve Abbs; Eugenio Mercuri; Francesco Muntoni
Objective: To assess the clinical course and genotype–phenotype correlations in patients with selenoprotein-related myopathy (SEPN1-RM) due to selenoprotein N1 gene (SEPN1) mutations for a retrospective cross-sectional study. Methods: Forty-one patients aged 1–60 years were included. Clinical data including scoliosis, respiratory function, and growth measurements were collected by case note review. Results: Mean age at onset was 2.7 years, ranging from birth to the second decade of life. All but 2 remained independently ambulant: one lost ambulation at age 5 years and another in his late 50s. The mean age of starting nocturnal noninvasive ventilation (NIV) was 13.9 years. One child required full-time NIV at the age of 1 year while in 2 cases NIV was started at 33 years. Two patients died from respiratory failure at the age of 10 and 22 years, respectively. The mean age at scoliosis onset was 10 years, in most cases preceded by rigidity of the spine. Fourteen patients had successful spinal surgery (mean age 13.9 years). Twenty-one were underweight; however, overt feeding difficulties were not a feature. Conclusions: This study describes the largest population affected by SEPN1-RM reported so far. Our findings show that the spectrum of severity is wider than previously reported. Respiratory insufficiency generally develops by 14 years but may occur as early as in infancy or not until the fourth decade. Motor abilities remain essentially static over time even in patients with early presentation. Most adult patients remain ambulant and fully employed.