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Dive into the research topics where Ed Dicks is active.

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Featured researches published by Ed Dicks.


Nature | 2002

Mutations of the BRAF gene in human cancer

Helen Davies; Graham R. Bignell; Charles Cox; Philip Stephens; Sarah Edkins; S. M. Clegg; Jon Teague; Hayley Woffendin; Mathew J. Garnett; William Bottomley; Neil Davis; Ed Dicks; Rebecca Ewing; Yvonne Floyd; Kristian Gray; Sarah Hall; Rachel Hawes; Jaime Hughes; Vivian Kosmidou; Andrew Menzies; Catherine Mould; Adrian Parker; Claire Stevens; Stephen Watt; Steven Hooper; Rebecca Wilson; Hiran Jayatilake; Barry A. Gusterson; Colin S. Cooper; Janet Shipley

Cancers arise owing to the accumulation of mutations in critical genes that alter normal programmes of cell proliferation, differentiation and death. As the first stage of a systematic genome-wide screen for these genes, we have prioritized for analysis signalling pathways in which at least one gene is mutated in human cancer. The RAS–RAF–MEK–ERK–MAP kinase pathway mediates cellular responses to growth signals. RAS is mutated to an oncogenic form in about 15% of human cancer. The three RAF genes code for cytoplasmic serine/threonine kinases that are regulated by binding RAS. Here we report BRAF somatic missense mutations in 66% of malignant melanomas and at lower frequency in a wide range of human cancers. All mutations are within the kinase domain, with a single substitution (V599E) accounting for 80%. Mutated BRAF proteins have elevated kinase activity and are transforming in NIH3T3 cells. Furthermore, RAS function is not required for the growth of cancer cell lines with the V599E mutation. As BRAF is a serine/threonine kinase that is commonly activated by somatic point mutation in human cancer, it may provide new therapeutic opportunities in malignant melanoma.


Nature | 2007

Patterns of somatic mutation in human cancer genomes

Christopher Greenman; Philip Stephens; Raffaella Smith; Gillian L. Dalgliesh; Chris Hunter; Graham R. Bignell; Helen Davies; Jon Teague; Adam Butler; Claire Stevens; Sarah Edkins; Sarah O’Meara; Imre Vastrik; Esther Schmidt; Tim Avis; Syd Barthorpe; Gurpreet Bhamra; Gemma Buck; Bhudipa Choudhury; Jody Clements; Jennifer Cole; Ed Dicks; Simon A. Forbes; Kris Gray; Kelly Halliday; Rachel Harrison; Katy Hills; Jon Hinton; Andy Jenkinson; David Jones

Cancers arise owing to mutations in a subset of genes that confer growth advantage. The availability of the human genome sequence led us to propose that systematic resequencing of cancer genomes for mutations would lead to the discovery of many additional cancer genes. Here we report more than 1,000 somatic mutations found in 274 megabases (Mb) of DNA corresponding to the coding exons of 518 protein kinase genes in 210 diverse human cancers. There was substantial variation in the number and pattern of mutations in individual cancers reflecting different exposures, DNA repair defects and cellular origins. Most somatic mutations are likely to be ‘passengers’ that do not contribute to oncogenesis. However, there was evidence for ‘driver’ mutations contributing to the development of the cancers studied in approximately 120 genes. Systematic sequencing of cancer genomes therefore reveals the evolutionary diversity of cancers and implicates a larger repertoire of cancer genes than previously anticipated.


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.


Molecular Cancer Therapeutics | 2006

Mutation analysis of 24 known cancer genes in the NCI-60 cell line set

Ogechi N. Ikediobi; Helen Davies; Graham R. Bignell; Sarah Edkins; Claire Stevens; Sarah O'Meara; Thomas Santarius; Tim Avis; Syd Barthorpe; Lisa Brackenbury; Gemma Buck; Adam Butler; Jody Clements; Jennifer Cole; Ed Dicks; Simon A. Forbes; Kristian Gray; Kelly Halliday; Rachel Harrison; Katy Hills; Jonathan Hinton; Chris Hunter; Andy Jenkinson; David Jones; Vivienne Kosmidou; Richard Lugg; Andrew Menzies; Tatiana Mironenko; Adrian Parker; Janet Perry

The panel of 60 human cancer cell lines (the NCI-60) assembled by the National Cancer Institute for anticancer drug discovery is a widely used resource. The NCI-60 has been characterized pharmacologically and at the molecular level more extensively than any other set of cell lines. However, no systematic mutation analysis of genes causally implicated in oncogenesis has been reported. This study reports the sequence analysis of 24 known cancer genes in the NCI-60 and an assessment of 4 of the 24 genes for homozygous deletions. One hundred thirty-seven oncogenic mutations were identified in 14 (APC, BRAF, CDKN2, CTNNB1, HRAS, KRAS, NRAS, SMAD4, PIK3CA, PTEN, RB1, STK11, TP53, and VHL) of the 24 genes. All lines have at least one mutation among the cancer genes examined, with most lines (73%) having more than one. Identification of those cancer genes mutated in the NCI-60, in combination with pharmacologic and molecular profiles of the cells, will allow for more informed interpretation of anticancer agent screening and will enhance the use of the NCI-60 cell lines for molecularly targeted screens. [Mol Cancer Ther 2006;5(11):2606–12]


Proceedings of the National Academy of Sciences of the United States of America | 2008

Subclonal phylogenetic structures in cancer revealed by ultra-deep sequencing

Peter J. Campbell; Erin Pleasance; Philip Stephens; Ed Dicks; Richard Rance; Ian Goodhead; George A. Follows; Anthony R. Green; P. Andy Futreal; Michael R. Stratton

During the clonal expansion of cancer from an ancestral cell with an initiating oncogenic mutation to symptomatic neoplasm, the occurrence of somatic mutations (both driver and passenger) can be used to track the on-going evolution of the neoplasm. All subclones within a cancer are phylogenetically related, with the prevalence of each subclone determined by its evolutionary fitness and the timing of its origin relative to other subclones. Recently developed massively parallel sequencing platforms promise the ability to detect rare subclones of genetic variants without a priori knowledge of the mutations involved. We used ultra-deep pyrosequencing to investigate intraclonal diversification at the Ig heavy chain locus in 22 patients with B-cell chronic lymphocytic leukemia. Analysis of a non-polymorphic control locus revealed artifactual insertions and deletions resulting from sequencing errors and base substitutions caused by polymerase misincorporation during PCR amplification. We developed an algorithm to differentiate genuine haplotypes of somatic hypermutations from such artifacts. This proved capable of detecting multiple rare subclones with frequencies as low as 1 in 5000 copies and allowed the characterization of phylogenetic interrelationships among subclones within each patient. This study demonstrates the potential for ultra-deep resequencing to recapitulate the dynamics of clonal evolution in cancer cell populations.


Nature Genetics | 2005

A screen of the complete protein kinase gene family identifies diverse patterns of somatic mutations in human breast cancer

Philip Stephens; Sarah Edkins; Helen Davies; Christopher Greenman; Charles Cox; Chris Hunter; Graham R. Bignell; Jon Teague; Raffaella Smith; Claire Stevens; Sarah O'Meara; Adrian Parker; Patrick Tarpey; Tim Avis; Andy Barthorpe; Lisa Brackenbury; Gemma Buck; Adam Butler; Jody Clements; Jennifer Cole; Ed Dicks; Ken Edwards; Simon A. Forbes; Matthew Gorton; Kristian Gray; Kelly Halliday; Rachel Harrison; Katy Hills; Jonathon Hinton; David Jones

We examined the coding sequence of 518 protein kinases, ∼1.3 Mb of DNA per sample, in 25 breast cancers. In many tumors, we detected no somatic mutations. But a few had numerous somatic mutations with distinctive patterns indicative of either a mutator phenotype or a past exposure.


Cancer Research | 2006

A Hypermutation Phenotype and Somatic MSH6 Mutations in Recurrent Human Malignant Gliomas after Alkylator Chemotherapy

Chris Hunter; Raffaella Smith; Daniel P. Cahill; Philip Stephens; Claire Stevens; Jon Teague; Christopher Greenman; Sarah Edkins; Graham R. Bignell; Helen Davies; Sarah O'Meara; Adrian Parker; Tim Avis; Syd Barthorpe; Lisa Brackenbury; Gemma Buck; Adam Butler; Jody Clements; Jennifer Cole; Ed Dicks; Simon A. Forbes; Matthew Gorton; Kristian Gray; Kelly Halliday; Rachel Harrison; Katy Hills; Jonathon Hinton; Andy Jenkinson; David Jones; Vivienne Kosmidou

Malignant gliomas have a very poor prognosis. The current standard of care for these cancers consists of extended adjuvant treatment with the alkylating agent temozolomide after surgical resection and radiotherapy. Although a statistically significant increase in survival has been reported with this regimen, nearly all gliomas recur and become insensitive to further treatment with this class of agents. We sequenced 500 kb of genomic DNA corresponding to the kinase domains of 518 protein kinases in each of nine gliomas. Large numbers of somatic mutations were observed in two gliomas recurrent after alkylating agent treatment. The pattern of mutations in these cases showed strong similarity to that induced by alkylating agents in experimental systems. Further investigation revealed inactivating somatic mutations of the mismatch repair gene MSH6 in each case. We propose that inactivating somatic mutations of MSH6 confer resistance to alkylating agents in gliomas in vivo and concurrently unleash accelerated mutagenesis in resistant clones as a consequence of continued exposure to alkylating agents in the presence of defective mismatch repair. The evidence therefore suggests that when MSH6 is inactivated in gliomas, alkylating agents convert from induction of tumor cell death to promotion of neoplastic progression. These observations highlight the potential of large scale sequencing for revealing and elucidating mutagenic processes operative in individual human cancers.


Nature Genetics | 2009

A genome-wide association study identifies a new ovarian cancer susceptibility locus on 9p22.2

Honglin Song; Susan J. Ramus; Jonathan Tyrer; Kelly L. Bolton; Aleksandra Gentry-Maharaj; Eva Wozniak; Hoda Anton-Culver; Jenny Chang-Claude; Daniel W. Cramer; Richard A. DiCioccio; Thilo Dörk; Ellen L. Goode; Marc T. Goodman; Joellen M. Schildkraut; Thomas A. Sellers; Laura Baglietto; Matthias W. Beckmann; Jonathan Beesley; Jan Blaakær; Michael E. Carney; Stephen J. Chanock; Zhihua Chen; Julie M. Cunningham; Ed Dicks; Jennifer A. Doherty; Matthias Dürst; Arif B. Ekici; David Fenstermacher; Brooke L. Fridley; Graham G. Giles

Epithelial ovarian cancer has a major heritable component, but the known susceptibility genes explain less than half the excess familial risk. We performed a genome-wide association study (GWAS) to identify common ovarian cancer susceptibility alleles. We evaluated 507,094 SNPs genotyped in 1,817 cases and 2,353 controls from the UK and ∼2 million imputed SNPs. We genotyped the 22,790 top ranked SNPs in 4,274 cases and 4,809 controls of European ancestry from Europe, USA and Australia. We identified 12 SNPs at 9p22 associated with disease risk (P < 10−8). The most significant SNP (rs3814113; P = 2.5 × 10−17) was genotyped in a further 2,670 ovarian cancer cases and 4,668 controls, confirming its association (combined data odds ratio (OR) = 0.82, 95% confidence interval (CI) 0.79–0.86, Ptrend = 5.1 × 10−19). The association differs by histological subtype, being strongest for serous ovarian cancers (OR 0.77, 95% CI 0.73–0.81, Ptrend = 4.1 × 10−21).


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.


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.

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Sarah Edkins

Wellcome Trust Sanger Institute

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Claire Stevens

Wellcome Trust Sanger Institute

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Adam Butler

Wellcome Trust Sanger Institute

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Jennifer Cole

Wellcome Trust Sanger Institute

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David Jones

Wellcome Trust Sanger Institute

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Gemma Buck

Wellcome Trust Sanger Institute

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Kelly Halliday

Wellcome Trust Sanger Institute

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Kristian Gray

Wellcome Trust Sanger Institute

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Paul Pharoah

University of Cambridge

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Jon Teague

Wellcome Trust Sanger Institute

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