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Featured researches published by Mark Corbett.


Nature Genetics | 2009

A systematic, large-scale resequencing screen of X-chromosome coding exons in mental retardation

Patrick Tarpey; Raffaella Smith; Erin Pleasance; Annabel Whibley; Sarah Edkins; Claire Hardy; Sarah O'Meara; Calli Latimer; Ed Dicks; Andrew Menzies; Phil Stephens; Matt Blow; Christopher Greenman; Yali Xue; Chris Tyler-Smith; Deborah Thompson; Kristian Gray; Jenny Andrews; Syd Barthorpe; Gemma Buck; Jennifer Cole; Rebecca Dunmore; David Jones; Mark Maddison; Tatiana Mironenko; Rachel Turner; Kelly Turrell; Jennifer Varian; Sofie West; Sara Widaa

Large-scale systematic resequencing has been proposed as the key future strategy for the discovery of rare, disease-causing sequence variants across the spectrum of human complex disease. We have sequenced the coding exons of the X chromosome in 208 families with X-linked mental retardation (XLMR), the largest direct screen for constitutional disease-causing mutations thus far reported. The screen has discovered nine genes implicated in XLMR, including SYP, ZNF711 and CASK reported here, confirming the power of this strategy. The study has, however, also highlighted issues confronting whole-genome sequencing screens, including the observation that loss of function of 1% or more of X-chromosome genes is compatible with apparently normal existence.


The FASEB Journal | 2013

Paternal obesity initiates metabolic disturbances in two generations of mice with incomplete penetrance to the F2 generation and alters the transcriptional profile of testis and sperm microRNA content

Tod Fullston; E. Maria C. Ohlsson Teague; Nicole O. Palmer; Miles J. DeBlasio; M. Mitchell; Mark Corbett; Cristin G. Print; Julie A. Owens; Michelle Lane

Obesity is highly prevalent, and its incidence is increasing. The previous study showing a major effect of paternal obesity on metabolic health of offspring is confounded by comorbidity with diabetes. Therefore, we investigated the effect of diet‐induced paternal obesity, in the absence of diabetes, on the metabolic health of two resultant generations and the molecular profiles of the testes and sperm. Founder (F0) male C57BL6 mice were fed either a high‐fat diet (HFD) or a control diet (CD); n = 10/diet for a period of 10 wk. Testis expression of mRNA/microRNAs was analyzed by microarray and qPCR and sperm microRNA abundance by qPCR Two subsequent generations were generated by mating F0 and then F1 mice to CD mice, and their metabolic health was investigated. All mice, other than F0 males, were maintained on a CD. HFD feeding induced paternal obesity with a 21% increase in adiposity, but not overt diabetes, and initiated intergenerational transmission of obesity and insulin resistance in two generations of offspring. This distinct phenotypic constellation is either partially or fully transmitted to both female and male F1 offspring and further transmitted through both parental lineages to the F2 generation, with a heightened effect on female F1 offspring (+67% in adiposity) and their F2 sons (+24% in adiposity). Founder male obesity altered the testes expression of 414 mRNAs by microarray and 11 microRNAs by qPCR, concomitant with alterations in sperm microRNA content and a 25% reduction in global methylation of germ cell DNA Diet‐induced paternal obesity modulates sperm microRNA content and germ cell methylation status, which are potential signals that program offspring health and initiate the transmission of obesity and impaired metabolic health to future generations. This study implicates paternal obesity in the transgenerational amplification of obesity and type 2 diabetes in humans.—Fullston, T., Ohlsson Teague, E. M. C., Palmer, N. O., DeBlasio, M. J., Mitchell, M., Corbett, M., Print, C. G., Owens, J. A., Lane, M., Paternal obesity initiates metabolic disturbances in two generations of mice with incomplete penetrance to the F2 generation and alters the transcriptional profile of testis and sperm microRNA content. FASEBJ. 27, 4226‐4243 (2013). www.fasebj.org


Nature Genetics | 2008

X-linked protocadherin 19 mutations cause female-limited epilepsy and cognitive impairment.

Leanne M. Dibbens; Patrick Tarpey; Kim Hynes; Marta A. Bayly; Ingrid E. Scheffer; Raffaella Smith; Jamee M. Bomar; Edwina Sutton; Lucianne Vandeleur; Cheryl Shoubridge; Sarah Edkins; Samantha J. Turner; Claire Stevens; Sarah O'Meara; Calli Tofts; Syd Barthorpe; Gemma Buck; Jennifer Cole; Kelly Halliday; David Jones; Rebecca Lee; Mark Madison; Tatiana Mironenko; Jennifer Varian; Sofie West; Sara Widaa; Paul Wray; J Teague; Ed Dicks; Adam Butler

Epilepsy and mental retardation limited to females (EFMR) is a disorder with an X-linked mode of inheritance and an unusual expression pattern. Disorders arising from mutations on the X chromosome are typically characterized by affected males and unaffected carrier females. In contrast, EFMR spares transmitting males and affects only carrier females. Aided by systematic resequencing of 737 X chromosome genes, we identified different protocadherin 19 (PCDH19) gene mutations in seven families with EFMR. Five mutations resulted in the introduction of a premature termination codon. Study of two of these demonstrated nonsense-mediated decay of PCDH19 mRNA. The two missense mutations were predicted to affect adhesiveness of PCDH19 through impaired calcium binding. PCDH19 is expressed in developing brains of human and mouse and is the first member of the cadherin superfamily to be directly implicated in epilepsy or mental retardation.


Molecular Cell | 2011

Identification of a MicroRNA that Activates Gene Expression by Repressing Nonsense-Mediated RNA Decay

Ivone G. Bruno; Rachid Karam; Lulu Huang; Anjana Bhardwaj; Chih H. Lou; Eleen Y. Shum; Hye Won Song; Mark Corbett; Wesley D. Gifford; Jozef Gecz; Samuel L. Pfaff; Miles F. Wilkinson

Nonsense-mediated decay (NMD) degrades both normal and aberrant transcripts harboring stop codons in particular contexts. Mutations that perturb NMD cause neurological disorders in humans, suggesting that NMD has roles in the brain. Here, we identify a brain-specific microRNA-miR-128-that represses NMD and thereby controls batteries of transcripts in neural cells. miR-128 represses NMD by targeting the RNA helicase UPF1 and the exon-junction complex core component MLN51. The ability of miR-128 to regulate NMD is a conserved response occurring in frogs, chickens, and mammals. miR-128 levels are dramatically increased in differentiating neuronal cells and during brain development, leading to repressed NMD and upregulation of mRNAs normally targeted for decay by NMD; overrepresented are those encoding proteins controlling neuron development and function. Together, these results suggest the existence of a conserved RNA circuit linking the microRNA and NMD pathways that induces cell type-specific transcripts during development.


Nature Genetics | 2007

Mutations in UPF3B , a member of the nonsense-mediated mRNA decay complex, cause syndromic and nonsyndromic mental retardation

Patrick Tarpey; F. Lucy Raymond; Lam Son Nguyen; Jayson Rodriguez; Anna Hackett; Lucianne Vandeleur; Raffaella Smith; Cheryl Shoubridge; Sarah Edkins; Claire Stevens; Sarah O'Meara; Calli Tofts; Syd Barthorpe; Gemma Buck; Jennifer Cole; Kelly Halliday; Katy Hills; David Jones; Tatiana Mironenko; Janet Perry; Jennifer Varian; Sofie West; Sara Widaa; J Teague; Ed Dicks; Adam Butler; Andrew Menzies; David C. Richardson; Andrew M. Jenkinson; Rebecca Shepherd

Nonsense-mediated mRNA decay (NMD) is of universal biological significance. It has emerged as an important global RNA, DNA and translation regulatory pathway. By systematically sequencing 737 genes (annotated in the Vertebrate Genome Annotation database) on the human X chromosome in 250 families with X-linked mental retardation, we identified mutations in the UPF3 regulator of nonsense transcripts homolog B (yeast) (UPF3B) leading to protein truncations in three families: two with the Lujan-Fryns phenotype and one with the FG phenotype. We also identified a missense mutation in another family with nonsyndromic mental retardation. Three mutations lead to the introduction of a premature termination codon and subsequent NMD of mutant UPF3B mRNA. Protein blot analysis using lymphoblastoid cell lines from affected individuals showed an absence of the UPF3B protein in two families. The UPF3B protein is an important component of the NMD surveillance machinery. Our results directly implicate abnormalities of NMD in human disease and suggest at least partial redundancy of NMD pathways.


Nature Genetics | 2013

Mutations in DEPDC5 cause familial focal epilepsy with variable foci

Leanne M. Dibbens; Boukje de Vries; Simona Donatello; Sarah E. Heron; Bree L. Hodgson; Satyan Chintawar; Douglas E. Crompton; James N. Hughes; Susannah T. Bellows; Karl Martin Klein; Petra M.C. Callenbach; Mark Corbett; Alison Gardner; Sara Kivity; Xenia Iona; Brigid M. Regan; Claudia M. Weller; Denis Crimmins; Terence J. O'Brien; Rosa Guerrero-López; John C. Mulley; François Dubeau; Laura Licchetta; Francesca Bisulli; Patrick Cossette; Paul Q. Thomas; Jozef Gecz; José M. Serratosa; Oebele F. Brouwer; Frederick Andermann

The majority of epilepsies are focal in origin, with seizures emanating from one brain region. Although focal epilepsies often arise from structural brain lesions, many affected individuals have normal brain imaging. The etiology is unknown in the majority of individuals, although genetic factors are increasingly recognized. Autosomal dominant familial focal epilepsy with variable foci (FFEVF) is notable because family members have seizures originating from different cortical regions. Using exome sequencing, we detected DEPDC5 mutations in two affected families. We subsequently identified mutations in five of six additional published large families with FFEVF. Study of families with focal epilepsy that were too small for conventional clinical diagnosis with FFEVF identified DEPDC5 mutations in approximately 12% of families (10/82). This high frequency establishes DEPDC5 mutations as a common cause of familial focal epilepsies. Shared homology with G protein signaling molecules and localization in human neurons suggest a role of DEPDC5 in neuronal signal transduction.


American Journal of Human Genetics | 2012

PRRT2 mutations cause benign familial infantile epilepsy and infantile convulsions with choreoathetosis syndrome.

Sarah E. Heron; Bronwyn E. Grinton; Sara Kivity; Zaid Afawi; Sameer M. Zuberi; James N. Hughes; Clair Pridmore; Bree L. Hodgson; Xenia Iona; Lynette G. Sadleir; James T. Pelekanos; Eric Herlenius; Hadassa Goldberg-Stern; Haim Bassan; Eric Haan; Amos D. Korczyn; Alison Gardner; Mark Corbett; Jozef Gecz; Paul Q. Thomas; John C. Mulley; Samuel F. Berkovic; Ingrid E. Scheffer; Leanne M. Dibbens

Benign familial infantile epilepsy (BFIE) is a self-limited seizure disorder that occurs in infancy and has autosomal-dominant inheritance. We have identified heterozygous mutations in PRRT2, which encodes proline-rich transmembrane protein 2, in 14 of 17 families (82%) affected by BFIE, indicating that PRRT2 mutations are the most frequent cause of this disorder. We also report PRRT2 mutations in five of six (83%) families affected by infantile convulsions and choreoathetosis (ICCA) syndrome, a familial syndrome in which infantile seizures and an adolescent-onset movement disorder, paroxysmal kinesigenic choreoathetosis (PKC), co-occur. These findings show that mutations in PRRT2 cause both epilepsy and a movement disorder. Furthermore, PRRT2 mutations elicit pleiotropy in terms of both age of expression (infancy versus later childhood) and anatomical substrate (cortex versus basal ganglia).


Trends in Genetics | 2009

The genetic landscape of intellectual disability arising from chromosome X.

Jozef Gecz; Cheryl Shoubridge; Mark Corbett

X-linked mental retardation (XLMR) or intellectual disability (ID) is a common, clinically complex and genetically heterogeneous disease arising from many mutations along the X chromosome. It affects between 1/600-1/1000 males and a substantial number of females. Research during the past decade has identified >90 different XLMR genes, affecting a wide range of cellular processes. Many more genes remain uncharacterized, especially for the non-syndromic XLMR forms. Currently, approximately 11% of X-chromosome genes are implicated in XLMR; however, apart from a few notable exceptions, most contribute individually to <0.1% of the total landscape, which arguably remains only about half complete. There remain many hills to climb and valleys to cross before the ID landscape is fully triangulated.


American Journal of Human Genetics | 2008

Submicroscopic Duplications of the Hydroxysteroid Dehydrogenase HSD17B10 and the E3 Ubiquitin Ligase HUWE1 Are Associated with Mental Retardation

Guy Froyen; Mark Corbett; Joke Vandewalle; Irma Järvelä; O Lawrence; Cliff Meldrum; Marijke Bauters; Karen Govaerts; Lucianne Vandeleur; Hilde Van Esch; Jamel Chelly; Damien Sanlaville; Hans van Bokhoven; Hans-Hilger Ropers; Frédéric Laumonnier; Enzo Ranieri; Charles E. Schwartz; Fatima Abidi; Patrick Tarpey; P. Andrew Futreal; Annabel Whibley; F. Lucy Raymond; Michael R. Stratton; Jean Pierre Fryns; Rodney J. Scott; Maarit Peippo; Marjatta Sipponen; Michael Partington; David Mowat; Michael Field

Submicroscopic copy-number imbalances contribute significantly to the genetic etiology of human disease. Here, we report a novel microduplication hot spot at Xp11.22 identified in six unrelated families with predominantly nonsyndromic XLMR. All duplications segregate with the disease, including the large families MRX17 and MRX31. The minimal, commonly duplicated region contains three genes: RIBC1, HSD17B10, and HUWE1. RIBC1 could be excluded on the basis of its absence of expression in the brain and because it escapes X inactivation in females. For the other genes, expression array and quantitative PCR analysis in patient cell lines compared to controls showed a significant upregulation of HSD17B10 and HUWE1 as well as several important genes in their molecular pathways. Loss-of-function mutations of HSD17B10 have previously been associated with progressive neurological disease and XLMR. The E3 ubiquitin ligase HUWE1 has been implicated in TP53-associated regulation of the neuronal cell cycle. Here, we also report segregating sequence changes of highly conserved residues in HUWE1 in three XLMR families; these changes are possibly associated with the phenotype. Our findings demonstrate that an increased gene dosage of HSD17B10, HUWE1, or both contribute to the etiology of XLMR and suggest that point mutations in HUWE1 are associated with this disease too.


Molecular Psychiatry | 2016

X-exome sequencing of 405 unresolved families identifies seven novel intellectual disability genes

Hao Hu; Stefan A. Haas; Jamel Chelly; H. Van Esch; Martine Raynaud; A.P.M. de Brouwer; Stefanie Weinert; Guy Froyen; Suzanne Frints; Frédéric Laumonnier; Tomasz Zemojtel; Michael I. Love; Hugues Richard; Anne-Katrin Emde; Melanie Bienek; Corinna Jensen; Melanie Hambrock; Utz Fischer; C. Langnick; M. Feldkamp; Willemijn Wissink-Lindhout; Nicolas Lebrun; Laetitia Castelnau; J. Rucci; R. Montjean; Olivier Dorseuil; Pierre Billuart; Till Stuhlmann; Marie Shaw; Mark Corbett

X-linked intellectual disability (XLID) is a clinically and genetically heterogeneous disorder. During the past two decades in excess of 100 X-chromosome ID genes have been identified. Yet, a large number of families mapping to the X-chromosome remained unresolved suggesting that more XLID genes or loci are yet to be identified. Here, we have investigated 405 unresolved families with XLID. We employed massively parallel sequencing of all X-chromosome exons in the index males. The majority of these males were previously tested negative for copy number variations and for mutations in a subset of known XLID genes by Sanger sequencing. In total, 745 X-chromosomal genes were screened. After stringent filtering, a total of 1297 non-recurrent exonic variants remained for prioritization. Co-segregation analysis of potential clinically relevant changes revealed that 80 families (20%) carried pathogenic variants in established XLID genes. In 19 families, we detected likely causative protein truncating and missense variants in 7 novel and validated XLID genes (CLCN4, CNKSR2, FRMPD4, KLHL15, LAS1L, RLIM and USP27X) and potentially deleterious variants in 2 novel candidate XLID genes (CDK16 and TAF1). We show that the CLCN4 and CNKSR2 variants impair protein functions as indicated by electrophysiological studies and altered differentiation of cultured primary neurons from Clcn4−/− mice or after mRNA knock-down. The newly identified and candidate XLID proteins belong to pathways and networks with established roles in cognitive function and intellectual disability in particular. We suggest that systematic sequencing of all X-chromosomal genes in a cohort of patients with genetic evidence for X-chromosome locus involvement may resolve up to 58% of Fragile X-negative cases.

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Jozef Gecz

University of Adelaide

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Lesley Kay

Newcastle upon Tyne Hospitals NHS Foundation Trust

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