Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where F. Lucy Raymond is active.

Publication


Featured researches published by F. Lucy Raymond.


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.


Diabetes | 2006

Hyperphagia, severe obesity, impaired cognitive function, and hyperactivity associated with functional loss of one copy of the brain-derived neurotrophic factor (BDNF) gene

Juliette Gray; Giles S. H. Yeo; James J. Cox; Jenny Morton; Anna-Lynne R. Adlam; Julia M. Keogh; Jack A. Yanovski; Areeg El Gharbawy; Joan C. Han; Y.C. Loraine Tung; John R. Hodges; F. Lucy Raymond; Stephen O’Rahilly; I. Sadaf Farooqi

The neurotrophin brain-derived neurotrophic factor (BDNF) inhibits food intake, and rodent models of BDNF disruption all exhibit increased food intake and obesity, as well as hyperactivity. We report an 8-year-old girl with hyperphagia and severe obesity, impaired cognitive function, and hyperactivity who harbored a de novo chromosomal inversion, 46,XX,inv(11)(p13p15.3), a region encompassing the BDNF gene. We have identified the proximal inversion breakpoint that lies 850 kb telomeric of the 5′ end of the BDNF gene. The patient’s genomic DNA was heterozygous for a common coding polymorphism in BDNF, but monoallelic expression was seen in peripheral lymphocytes. Serum concentration of BDNF protein was reduced compared with age- and BMI-matched subjects. Haploinsufficiency for BDNF was associated with increased ad libitum food intake, severe early-onset obesity, hyperactivity, and cognitive impairment. These findings provide direct evidence for the role of the neurotrophin BDNF in human energy homeostasis, as well as in cognitive function, memory, and behavior.


American Journal of Human Genetics | 2006

Quantification of homozygosity in consanguineous individuals with autosomal recessive disease.

C. Geoffrey Woods; James J. Cox; Kelly Springell; Daniel J. Hampshire; Moin D. Mohamed; Martin McKibbin; Rowena Stern; F. Lucy Raymond; Richard Sandford; Saghira Malik Sharif; Gulshan Karbani; Mustaq Ahmed; Jacquelyn Bond; David G. Clayton; Chris F. Inglehearn

Individuals born of consanguineous union have segments of their genomes that are homozygous as a result of inheriting identical ancestral genomic segments through both parents. One consequence of this is an increased incidence of recessive disease within these sibships. Theoretical calculations predict that 6% (1/16) of the genome of a child of first cousins will be homozygous and that the average homozygous segment will be 20 cM in size. We assessed whether these predictions held true in populations that have preferred consanguineous marriage for many generations. We found that in individuals with a recessive disease whose parents were first cousins, on average, 11% of their genomes were homozygous (n = 38; range 5%-20%), with each individual bearing 20 homozygous segments exceeding 3 cM (n = 38; range of number of homozygous segments 7-32), and that the size of the homozygous segment associated with recessive disease was 26 cM (n = 100; range 5-70 cM). These data imply that prolonged parental inbreeding has led to a background level of homozygosity increased approximately 5% over and above that predicted by simple models of consanguinity. This has important clinical and research implications.


American Journal of Human Genetics | 2005

3q29 microdeletion syndrome: clinical and molecular characterization of a new syndrome

Lionel Willatt; James J. Cox; John C K Barber; Elisabet Dachs Cabanas; Amanda L. Collins; Dian Donnai; David Fitzpatrick; Eddy Maher; Howard Martin; Josep Parnau; Lesley Pindar; Jacqueline Ramsay; Charles Shaw-Smith; Erik A. Sistermans; Michael Tettenborn; Dorothy Trump; Bert B.A. de Vries; Kate Walker; F. Lucy Raymond

We report the identification of six patients with 3q29 microdeletion syndrome. The clinical phenotype is variable despite an almost identical deletion size. The phenotype includes mild-to-moderate mental retardation, with only slightly dysmorphic facial features that are similar in most patients: a long and narrow face, short philtrum, and high nasal bridge. Autism, gait ataxia, chest-wall deformity, and long and tapering fingers were noted in at least two of six patients. Additional features--including microcephaly, cleft lip and palate, horseshoe kidney and hypospadias, ligamentous laxity, recurrent middle ear infections, and abnormal pigmentation--were observed, but each feature was only found once, in a single patient. The microdeletion is approximately 1.5 Mb in length, with molecular boundaries mapping within the same or adjacent bacterial artificial chromosome (BAC) clones at either end of the deletion in all patients. The deletion encompasses 22 genes, including PAK2 and DLG1, which are autosomal homologues of two known X-linked mental retardation genes, PAK3 and DLG3. The presence of two nearly identical low-copy repeat sequences in BAC clones on each side of the deletion breakpoint suggests that nonallelic homologous recombination is the likely mechanism of disease causation in this syndrome.


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.


American Journal of Human Genetics | 2008

SLC9A6 Mutations Cause X-Linked Mental Retardation, Microcephaly, Epilepsy, and Ataxia, a Phenotype Mimicking Angelman Syndrome

Gregor D. Gilfillan; Kaja Kristine Selmer; Ingrid Roxrud; Raffaella Smith; Mårten Kyllerman; Kristin Eiklid; Mette Kroken; Morten Mattingsdal; Thore Egeland; Harald Stenmark; Hans Sjøholm; Andres Server; Lena Samuelsson; Arnold Christianson; Patrick Tarpey; Annabel Whibley; Michael R. Stratton; P. Andrew Futreal; Jon Teague; Sarah Edkins; Jozef Gecz; Gillian Turner; F. Lucy Raymond; Charles E. Schwartz; Roger E. Stevenson; Dag E. Undlien; Petter Strømme

Linkage analysis and DNA sequencing in a family exhibiting an X-linked mental retardation (XLMR) syndrome, characterized by microcephaly, epilepsy, ataxia, and absent speech and resembling Angelman syndrome, identified a deletion in the SLC9A6 gene encoding the Na(+)/H(+) exchanger NHE6. Subsequently, other mutations were found in a male with mental retardation (MR) who had been investigated for Angelman syndrome and in two XLMR families with epilepsy and ataxia, including the family designated as having Christianson syndrome. Therefore, mutations in SLC9A6 cause X-linked mental retardation. Additionally, males with findings suggestive of unexplained Angelman syndrome should be considered as potential candidates for SLC9A6 mutations.


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.


American Journal of Human Genetics | 2004

Mutations in the DLG3 Gene Cause Nonsyndromic X-Linked Mental Retardation

Patrick Tarpey; Josep Parnau; Matthew J. Blow; Hayley Woffendin; Graham R. Bignell; Charles Cox; James J. Cox; Helen Davies; Sarah Edkins; Simon Holden; Angelique Korny; Uma Mallya; Jenny Moon; Sarah O’Meara; Adrian Parker; Philip Stephens; Claire Stevens; Jon Teague; Andrew Donnelly; Marie Mangelsdorf; John C. Mulley; Michael Partington; Gillian Turner; Roger E. Stevenson; Charles E. Schwartz; Ian Young; Douglas F. Easton; Martin Bobrow; P. Andrew Futreal; Michael R. Stratton

We have identified truncating mutations in the human DLG3 (neuroendocrine dlg) gene in 4 of 329 families with moderate to severe X-linked mental retardation. DLG3 encodes synapse-associated protein 102 (SAP102), a member of the membrane-associated guanylate kinase protein family. Neuronal SAP102 is expressed during early brain development and is localized to the postsynaptic density of excitatory synapses. It is composed of three amino-terminal PDZ domains, an src homology domain, and a carboxyl-terminal guanylate kinase domain. The PDZ domains interact directly with the NR2 subunits of the NMDA glutamate receptor and with other proteins responsible for NMDA receptor localization, immobilization, and signaling. The mutations identified in this study all introduce premature stop codons within or before the third PDZ domain, and it is likely that this impairs the ability of SAP102 to interact with the NMDA receptor and/or other proteins involved in downstream NMDA receptor signaling pathways. NMDA receptors have been implicated in the induction of certain forms of synaptic plasticity, such as long-term potentiation and long-term depression, and these changes in synaptic efficacy have been proposed as neural mechanisms underlying memory and learning. The disruption of NMDA receptor targeting or signaling, as a result of the loss of SAP102, may lead to altered synaptic plasticity and may explain the intellectual impairment observed in individuals with DLG3 mutations.


Science Translational Medicine | 2010

Disruption at the PTCHD1 locus on Xp22.11 in autism spectrum disorder and intellectual disability

Abdul Noor; Annabel Whibley; Christian R. Marshall; Peter J. Gianakopoulos; Amélie Piton; Andrew R. Carson; Marija Orlic-Milacic; Anath C. Lionel; Daisuke Sato; Dalila Pinto; Irene Drmic; Carolyn Noakes; Lili Senman; Xiaoyun Zhang; Rong Mo; Julie Gauthier; Jennifer Crosbie; Alistair T. Pagnamenta; Jeffrey Munson; Annette Estes; Andreas Fiebig; Andre Franke; Stefan Schreiber; Alexandre F.R. Stewart; Robert Roberts; Ruth McPherson; Stephen J. Guter; Edwin H. Cook; Geraldine Dawson; Gerard D. Schellenberg

Mutations of the X-linked gene PTCHD1 are associated with autism spectrum disorders and intellectual disability. A Patch in the Fabric of Autism What causes autism? This disabling disorder is characterized by severe language and social impairment and is now included under the umbrella term “autism spectrum disorder” (ASD), which also includes milder deficits in communication and social development. Numerous theories have been advanced as to its causes. These have ranged from discredited concepts—“refrigerator” mothers and vaccines—to the modern idea of gene-environment interactions. Although no one gene simply explains the predisposition of patients for ASD, these disorders are wellknown to have a strong genetic component. Here, Noor et al. report the results of genetic analysis in thousands of patients and control subjects: Mutations at the PTCHD1 (patched-related gene) locus are associated with the inheritance of ASD and with intellectual disability in a small fraction of cases. In this study, the authors analyzed the PTCHD1 gene from 1896 patients with ASD and 246 with intellectual disability, and compared these to more than 10,000 control individuals, and found mutations in various parts of this gene in 25 affected individuals in 20 different families, but not in any of the controls. Some patients had large deletions, in one case spanning the entire gene, and in others the culprit was a missense mutation. A result of this gene’s location on the X chromosome, the affected patients were almost all male, and most had unaffected mothers and other female relatives. The authors also present evidence that the PTCHD1 gene may be part of the Hedgehog signaling pathway, which is important in embryonic development. Autism and intellectual disability are not straightforward disorders that can be attributed to mutations in a single gene. Even when candidate genes such as PTCHD1 are known, differences in the gene sequence do not perfectly correlate with phenotype, because there are many as yet undefined additional genes and environmental influences that dictate the ultimate characteristics of the person. Identifying some of these genes, as Noor et al. have done in this study, allows a better understanding of the disorder and the development of ways to compensate for its disabilities. Autism is a common neurodevelopmental disorder with a complex mode of inheritance. It is one of the most highly heritable of the complex disorders, although the underlying genetic factors remain largely unknown. Here, we report mutations in the X-chromosome PTCHD1 (patched-related) gene in seven families with autism spectrum disorder (ASD) and in three families with intellectual disability. A 167-kilobase microdeletion spanning exon 1 was found in two brothers, one with ASD and the other with a learning disability and ASD features; a 90-kilobase microdeletion spanning the entire gene was found in three males with intellectual disability in a second family. In 900 probands with ASD and 208 male probands with intellectual disability, we identified seven different missense changes (in eight male probands) that were inherited from unaffected mothers and not found in controls. Two of the ASD individuals with missense changes also carried a de novo deletion at another ASD susceptibility locus (DPYD and DPP6), suggesting complex genetic contributions. In additional males with ASD, we identified deletions in the 5′ flanking region of PTCHD1 that disrupted a complex noncoding RNA and potential regulatory elements; equivalent changes were not found in male control individuals. Thus, our systematic screen of PTCHD1 and its 5′ flanking regions suggests that this locus is involved in ~1% of individuals with ASD and intellectual disability.


Journal of Medical Genetics | 2007

The original Lujan syndrome family has a novel missense mutation (p.N1007S) in the MED12 gene

Charles E. Schwartz; Patrick Tarpey; Herbert A. Lubs; Alain Verloes; Melanie M. May; Hiba Risheg; Michael J. Friez; P. Andrew Futreal; Sarah Edkins; Jon Teague; Sylvain Briault; Cindy Skinner; Astrid Bauer-Carlin; Richard J. Simensen; Sumy M Joseph; Julie R. Jones; Jozef Gecz; Michael R. Stratton; F. Lucy Raymond; Roger E. Stevenson

A novel missense mutation in the mediator of RNA polymerase II transcription subunit 12 (MED12) gene has been found in the original family with Lujan syndrome and in a second family (K9359) that was initially considered to have Opitz–Kaveggia (FG) syndrome. A different missense mutation in the MED12 gene has been reported previously in the original family with FG syndrome and in five other families with compatible clinical findings. Neither sequence alteration has been found in over 1400 control X chromosomes. Lujan (Lujan–Fryns) syndrome is characterised by tall stature with asthenic habitus, macrocephaly, a tall narrow face, maxillary hypoplasia, a high narrow palate with dental crowding, a small or receding chin, long hands with hyperextensible digits, hypernasal speech, hypotonia, mild-to-moderate mental retardation, behavioural aberrations and dysgenesis of the corpus callosum. Although Lujan syndrome has not been previously considered to be in the differential diagnosis of FG syndrome, there are some overlapping clinical manifestations. Specifically, these are dysgenesis of the corpus callosum, macrocephaly/relative macrocephaly, a tall forehead, hypotonia, mental retardation and behavioural disturbances. Thus, it seems that these two X-linked mental retardation syndromes are allelic, with mutations in the MED12 gene.

Collaboration


Dive into the F. Lucy Raymond's collaboration.

Top Co-Authors

Avatar

Patrick Tarpey

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Charles E. Schwartz

Memorial Hospital of South Bend

View shared research outputs
Top Co-Authors

Avatar

Jozef Gecz

University of Adelaide

View shared research outputs
Top Co-Authors

Avatar

Michael R. Stratton

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Sarah Edkins

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Roger E. Stevenson

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Anna Hackett

University of Newcastle

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge