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Dive into the research topics where Daniah Trabzuni is active.

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Featured researches published by Daniah Trabzuni.


Nature Neuroscience | 2014

Genetic variability in the regulation of gene expression in ten regions of the human brain

Adaikalavan Ramasamy; Daniah Trabzuni; Sebastian Guelfi; Vibin Varghese; Colin Smith; Robert Walker; Tisham De; Lachlan Coin; Rohan de Silva; Mark R. Cookson; Andrew Singleton; John Hardy; Mina Ryten; Michael E. Weale

Germ-line genetic control of gene expression occurs via expression quantitative trait loci (eQTLs). We present a large, exon-specific eQTL data set covering ten human brain regions. We found that cis-eQTL signals (within 1 Mb of their target gene) were numerous, and many acted heterogeneously among regions and exons. Co-regulation analysis of shared eQTL signals produced well-defined modules of region-specific co-regulated genes, in contrast to standard coexpression analysis of the same samples. We report cis-eQTL signals for 23.1% of catalogued genome-wide association study hits for adult-onset neurological disorders. The data set is publicly available via public data repositories and via http://www.braineac.org/. Our study increases our understanding of the regulation of gene expression in the human brain and will be of value to others pursuing functional follow-up of disease-associated variants.


Nature | 2014

Rare coding variants in the phospholipase D3 gene confer risk for Alzheimer's disease

Carlos Cruchaga; Celeste M. Karch; Sheng Chih Jin; Bruno A. Benitez; Yefei Cai; Rita Guerreiro; Oscar Harari; Joanne Norton; John Budde; Sarah Bertelsen; Amanda T. Jeng; Breanna Cooper; Tara Skorupa; David Carrell; Denise Levitch; Simon Hsu; Jiyoon Choi; Mina Ryten; John Hardy; Daniah Trabzuni; Michael E. Weale; Adaikalavan Ramasamy; Colin Smith; Celeste Sassi; Jose Bras; J. Raphael Gibbs; Dena Hernandez; Michelle K. Lupton; John Powell; Paola Forabosco

Genome-wide association studies (GWAS) have identified several risk variants for late-onset Alzheimers disease (LOAD). These common variants have replicable but small effects on LOAD risk and generally do not have obvious functional effects. Low-frequency coding variants, not detected by GWAS, are predicted to include functional variants with larger effects on risk. To identify low-frequency coding variants with large effects on LOAD risk, we carried out whole-exome sequencing (WES) in 14 large LOAD families and follow-up analyses of the candidate variants in several large LOAD case–control data sets. A rare variant in PLD3 (phospholipase D3; Val232Met) segregated with disease status in two independent families and doubled risk for Alzheimer’s disease in seven independent case–control series with a total of more than 11,000 cases and controls of European descent. Gene-based burden analyses in 4,387 cases and controls of European descent and 302 African American cases and controls, with complete sequence data for PLD3, reveal that several variants in this gene increase risk for Alzheimer’s disease in both populations. PLD3 is highly expressed in brain regions that are vulnerable to Alzheimer’s disease pathology, including hippocampus and cortex, and is expressed at significantly lower levels in neurons from Alzheimer’s disease brains compared to control brains. Overexpression of PLD3 leads to a significant decrease in intracellular amyloid-β precursor protein (APP) and extracellular Aβ42 and Aβ40 (the 42- and 40-residue isoforms of the amyloid-β peptide), and knockdown of PLD3 leads to a significant increase in extracellular Aβ42 and Aβ40. Together, our genetic and functional data indicate that carriers of PLD3 coding variants have a twofold increased risk for LOAD and that PLD3 influences APP processing. This study provides an example of how densely affected families may help to identify rare variants with large effects on risk for disease or other complex traits.


Nature Genetics | 2013

Genome-wide meta-analysis identifies new susceptibility loci for migraine

Verneri Anttila; Bendik S. Winsvold; Padhraig Gormley; Tobias Kurth; Francesco Bettella; George McMahon; Mikko Kallela; Rainer Malik; Boukje de Vries; Gisela M. Terwindt; Sarah E. Medland; Unda Todt; Wendy L. McArdle; Lydia Quaye; Markku Koiranen; M. Arfan Ikram; Terho Lehtimäki; Anine H. Stam; Lannie Ligthart; Juho Wedenoja; Ian Dunham; Benjamin M. Neale; Priit Palta; Eija Hämäläinen; Markus Schuerks; Lynda M. Rose; Julie E. Buring; Paul M. Ridker; Stacy Steinberg; Hreinn Stefansson

Migraine is the most common brain disorder, affecting approximately 14% of the adult population, but its molecular mechanisms are poorly understood. We report the results of a meta-analysis across 29 genome-wide association studies, including a total of 23,285 individuals with migraine (cases) and 95,425 population-matched controls. We identified 12 loci associated with migraine susceptibility (P < 5 × 10−8). Five loci are new: near AJAP1 at 1p36, near TSPAN2 at 1p13, within FHL5 at 6q16, within C7orf10 at 7p14 and near MMP16 at 8q21. Three of these loci were identified in disease subgroup analyses. Brain tissue expression quantitative trait locus analysis suggests potential functional candidate genes at four loci: APOA1BP, TBC1D7, FUT9, STAT6 and ATP5B.


Journal of Neurochemistry | 2011

Quality control parameters on a large dataset of regionally dissected human control brains for whole genome expression studies

Daniah Trabzuni; Mina Ryten; Robert Walker; Colin Smith; Sabaena Imran; Adaikalavan Ramasamy; Michael E. Weale; John Hardy

J. Neurochem. (2011) 119, 275–282.


American Journal of Human Genetics | 2012

Mutations in ANO3 Cause Dominant Craniocervical Dystonia: Ion Channel Implicated in Pathogenesis

Gavin Charlesworth; Vincent Plagnol; Kira M. Holmström; Jose Bras; Una-Marie Sheerin; Elisavet Preza; Ignacio Rubio-Agusti; Mina Ryten; Susanne A. Schneider; Maria Stamelou; Daniah Trabzuni; Andrey Y. Abramov; Kailash P. Bhatia; Nicholas W. Wood

In this study, we combined linkage analysis with whole-exome sequencing of two individuals to identify candidate causal variants in a moderately-sized UK kindred exhibiting autosomal-dominant inheritance of craniocervical dystonia. Subsequent screening of these candidate causal variants in a large number of familial and sporadic cases of cervical dystonia led to the identification of a total of six putatively pathogenic mutations in ANO3, a gene encoding a predicted Ca(2+)-gated chloride channel that we show to be highly expressed in the striatum. Functional studies using Ca(2+) imaging in case and control fibroblasts demonstrated clear abnormalities in endoplasmic-reticulum-dependent Ca(2+) signaling. We conclude that mutations in ANO3 are a cause of autosomal-dominant craniocervical dystonia. The locus DYT23 has been reserved as a synonym for this gene. The implication of an ion channel in the pathogenesis of dystonia provides insights into an alternative mechanism that opens fresh avenues for further research.


Annals of Neurology | 2013

Mutations in the autoregulatory domain of β-tubulin 4a cause hereditary dystonia

Joshua Hersheson; Niccolo E. Mencacci; Mary B. Davis; Nicola MacDonald; Daniah Trabzuni; Mina Ryten; Alan Pittman; Reema Paudel; Eleanna Kara; Katherine Fawcett; Vincent Plagnol; Kailash P. Bhatia; Alan Medlar; Horia Stanescu; John Hardy; Robert Kleta; Nicholas W. Wood; Henry Houlden

Dystonia type 4 (DYT4) was first described in a large family from Heacham in Norfolk with an autosomal dominantly inherited whispering dysphonia, generalized dystonia, and a characteristic hobby horse ataxic gait. We carried out a genetic linkage analysis in the extended DYT4 family that spanned 7 generations from England and Australia, revealing a single LOD score peak of 6.33 on chromosome 19p13.12‐13. Exome sequencing in 2 cousins identified a single cosegregating mutation (p.R2G) in the β‐tubulin 4a (TUBB4a) gene that was absent in a large number of controls. The mutation is highly conserved in the β‐tubulin autoregulatory MREI (methionine–arginine–glutamic acid–isoleucine) domain, highly expressed in the central nervous system, and extensive in vitro work has previously demonstrated that substitutions at residue 2, specifically R2G, disrupt the autoregulatory capability of the wild‐type β‐tubulin peptide, affirming the role of the cytoskeleton in dystonia pathogenesis. Ann Neurol 2013;73:546–553


Nature Communications | 2013

Widespread sex differences in gene expression and splicing in the adult human brain

Daniah Trabzuni; Adaikalavan Ramasamy; Sabaena Imran; Robert Walker; Colin Smith; Michael E. Weale; John Hardy; Mina Ryten

There is strong evidence to show that men and women differ in terms of neurodevelopment, neurochemistry and susceptibility to neurodegenerative and neuropsychiatric disease. The molecular basis of these differences remains unclear. Progress in this field has been hampered by the lack of genome-wide information on sex differences in gene expression and in particular splicing in the human brain. Here we address this issue by using post-mortem adult human brain and spinal cord samples originating from 137 neuropathologically confirmed control individuals to study whole-genome gene expression and splicing in 12 CNS regions. We show that sex differences in gene expression and splicing are widespread in adult human brain, being detectable in all major brain regions and involving 2.5% of all expressed genes. We give examples of genes where sex-biased expression is both disease-relevant and likely to have functional consequences, and provide evidence suggesting that sex biases in expression may reflect sex-biased gene regulatory structures.


Human Molecular Genetics | 2012

MAPT expression and splicing is differentially regulated by brain region: relation to genotype and implication for tauopathies

Daniah Trabzuni; Selina Wray; Jana Vandrovcova; Adaikalavan Ramasamy; Robert Walker; Colin Smith; Connie Luk; J. Raphael Gibbs; Allissa Dillman; Dena Hernandez; Sampath Arepalli; Andrew Singleton; Mark R. Cookson; Alan Pittman; Rohan de Silva; Michael E. Weale; John Hardy; Mina Ryten

The MAPT (microtubule-associated protein tau) locus is one of the most remarkable in neurogenetics due not only to its involvement in multiple neurodegenerative disorders, including progressive supranuclear palsy, corticobasal degeneration, Parksinsons disease and possibly Alzheimers disease, but also due its genetic evolution and complex alternative splicing features which are, to some extent, linked and so all the more intriguing. Therefore, obtaining robust information regarding the expression, splicing and genetic regulation of this gene within the human brain is of immense importance. In this study, we used 2011 brain samples originating from 439 individuals to provide the most reliable and coherent information on the regional expression, splicing and regulation of MAPT available to date. We found significant regional variation in mRNA expression and splicing of MAPT within the human brain. Furthermore, at the gene level, the regional distribution of mRNA expression and total tau protein expression levels were largely in agreement, appearing to be highly correlated. Finally and most importantly, we show that while the reported H1/H2 association with gene level expression is likely to be due to a technical artefact, this polymorphism is associated with the expression of exon 3-containing isoforms in human brain. These findings would suggest that contrary to the prevailing view, genetic risk factors for neurodegenerative diseases at the MAPT locus are likely to operate by changing mRNA splicing in different brain regions, as opposed to the overall expression of the MAPT gene.


Nucleic Acids Research | 2013

Resolving the polymorphism-in-probe problem is critical for correct interpretation of expression QTL studies

Adaikalavan Ramasamy; Daniah Trabzuni; J. Raphael Gibbs; Allissa Dillman; Dena Hernandez; Sampath Arepalli; Robert Walker; Colin Smith; Gigaloluwa Peter Ilori; Andrey A. Shabalin; Yun Li; Andrew Singleton; Mark R. Cookson; for Nabec; John Hardy; for Ukbec; Mina Ryten; Michael E. Weale

Polymorphisms in the target mRNA sequence can greatly affect the binding affinity of microarray probe sequences, leading to false-positive and false-negative expression quantitative trait locus (QTL) signals with any other polymorphisms in linkage disequilibrium. We provide the most complete solution to this problem, by using the latest genome and exome sequence reference data to identify almost all common polymorphisms (frequency >1% in Europeans) in probe sequences for two commonly used microarray panels (the gene-based Illumina Human HT12 array, which uses 50-mer probes, and exon-based Affymetrix Human Exon 1.0 ST array, which uses 25-mer probes). We demonstrate the impact of this problem using cerebellum and frontal cortex tissues from 438 neuropathologically normal individuals. We find that although only a small proportion of the probes contain polymorphisms, they account for a large proportion of apparent expression QTL signals, and therefore result in many false signals being declared as real. We find that the polymorphism-in-probe problem is insufficiently controlled by previous protocols, and illustrate this using some notable false-positive and false-negative examples in MAPT and PRICKLE1 that can be found in many eQTL databases. We recommend that both new and existing eQTL data sets should be carefully checked in order to adequately address this issue.


Neurobiology of Aging | 2013

Insights into TREM2 biology by network analysis of human brain gene expression data

Paola Forabosco; Adaikalavan Ramasamy; Daniah Trabzuni; Robert Walker; Colin Smith; Jose Bras; Adam P. Levine; John Hardy; Jennifer M. Pocock; Rita Guerreiro; Michael E. Weale; Mina Ryten

Rare variants in TREM2 cause susceptibility to late-onset Alzheimers disease. Here we use microarray-based expression data generated from 101 neuropathologically normal individuals and covering 10 brain regions, including the hippocampus, to understand TREM2 biology in human brain. Using network analysis, we detect a highly preserved TREM2-containing module in human brain, show that it relates to microglia, and demonstrate that TREM2 is a hub gene in 5 brain regions, including the hippocampus, suggesting that it can drive module function. Using enrichment analysis we show significant overrepresentation of genes implicated in the adaptive and innate immune system. Inspection of genes with the highest connectivity to TREM2 suggests that it plays a key role in mediating changes in the microglial cytoskeleton necessary not only for phagocytosis, but also migration. Most importantly, we show that the TREM2-containing module is significantly enriched for genes genetically implicated in Alzheimers disease, multiple sclerosis, and motor neuron disease, implying that these diseases share common pathways centered on microglia and that among the genes identified are possible new disease-relevant genes.

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Mina Ryten

UCL Institute of Neurology

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John Hardy

University College London

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Colin Smith

University of Edinburgh

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Andrew Singleton

National Institutes of Health

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Mark R. Cookson

National Institutes of Health

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Allissa Dillman

National Institutes of Health

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Alan Pittman

University College London

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