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Featured researches published by Gursharan Kalsi.


American Journal of Human Genetics | 2003

Genome Scan Meta-Analysis of Schizophrenia and Bipolar Disorder, Part II: Schizophrenia

Cathryn M. Lewis; Douglas F. Levinson; Lesley H. Wise; Lynn E. DeLisi; Richard E. Straub; Iiris Hovatta; Nigel Melville Williams; Sibylle G. Schwab; Ann E. Pulver; Stephen V. Faraone; Linda M. Brzustowicz; Charles A. Kaufmann; David L. Garver; Hugh Gurling; Eva Lindholm; Hilary Coon; Hans W. Moises; William Byerley; Sarah H. Shaw; Andrea Mesén; Robin Sherrington; F. Anthony O'Neill; Dermot Walsh; Kenneth S. Kendler; Jesper Ekelund; Tiina Paunio; Jouko Lönnqvist; Leena Peltonen; Michael Conlon O'Donovan; Michael John Owen

Schizophrenia is a common disorder with high heritability and a 10-fold increase in risk to siblings of probands. Replication has been inconsistent for reports of significant genetic linkage. To assess evidence for linkage across studies, rank-based genome scan meta-analysis (GSMA) was applied to data from 20 schizophrenia genome scans. Each marker for each scan was assigned to 1 of 120 30-cM bins, with the bins ranked by linkage scores (1 = most significant) and the ranks averaged across studies (R(avg)) and then weighted for sample size (N(sqrt)[affected casess]). A permutation test was used to compute the probability of observing, by chance, each bins average rank (P(AvgRnk)) or of observing it for a bin with the same place (first, second, etc.) in the order of average ranks in each permutation (P(ord)). The GSMA produced significant genomewide evidence for linkage on chromosome 2q (PAvgRnk<.000417). Two aggregate criteria for linkage were also met (clusters of nominally significant P values that did not occur in 1,000 replicates of the entire data set with no linkage present): 12 consecutive bins with both P(AvgRnk) and P(ord)<.05, including regions of chromosomes 5q, 3p, 11q, 6p, 1q, 22q, 8p, 20q, and 14p, and 19 consecutive bins with P(ord)<.05, additionally including regions of chromosomes 16q, 18q, 10p, 15q, 6q, and 17q. There is greater consistency of linkage results across studies than has been previously recognized. The results suggest that some or all of these regions contain loci that increase susceptibility to schizophrenia in diverse populations.


American Journal of Human Genetics | 2001

Genomewide Genetic Linkage Analysis Confirms the Presence of Susceptibility Loci for Schizophrenia, on Chromosomes 1q32.2, 5q33.2, and 8p21-22 and Provides Support for Linkage to Schizophrenia, on Chromosomes 11q23.3-24 and 20q12.1-11.23

Hugh Gurling; Gursharan Kalsi; Jon Brynjolfson; T. Sigmundsson; Robin Sherrington; Baljinder S. Mankoo; T Read; Patrice Murphy; E Blaveri; Andrew McQuillin; Hannes Petursson; David Curtis

We have performed genetic linkage analysis in 13 large multiply affected families, to test the hypothesis that there is extensive heterogeneity of linkage for genetic subtypes of schizophrenia. Our strategy consisted of selecting 13 kindreds containing multiple affected cases in three or more generations, an absence of bipolar affective disorder, and a single progenitor source of schizophrenia with unilineal transmission into the branch of the kindred sampled. DNA samples from these families were genotyped with 365 microsatellite markers spaced at approximately 10-cM intervals across the whole genome. We observed LOD scores >3.0 at five distinct loci, either in the sample as a whole or within single families, strongly suggesting etiological heterogeneity. Heterogeneity LOD scores >3.0 in the sample as a whole were found at 1q33.2 (LOD score 3.2; P=.0003), 5q33.2 (LOD score 3.6; P=.0001), 8p22.1-22 (LOD score 3.6; P=.0001), and 11q21 (LOD score 3.1; P=.0004). LOD scores >3.0 within single pedigrees were found at 4q13-31 (LOD score 3.2; P=.0003) and at 11q23.3-24 (LOD score 3.2; P=.0003). A LOD score of 2.9 was also found at 20q12.1-11.23 within in a single family. The fact that other studies have also detected LOD scores >3.0 at 1q33.2, 5q33.2, 8p21-22 and 11q21 suggests that these regions do indeed harbor schizophrenia-susceptibility loci. We believe that the weight of evidence for linkage to the chromosome 1q22, 5q33.2, and 8p21-22 loci is now sufficient to justify intensive investigation of these regions by methods based on linkage disequilibrium. Such studies will soon allow the identification of mutations having a direct effect on susceptibility to schizophrenia.


American Journal of Medical Genetics | 1996

A combined analysis of D22S278 marker alleles in affected sib-pairs: Support for a susceptibility locus for schizophrenia at chromosome 22q12

Michael Gill; Homero Vallada; David Collier; Pak Sham; Peter Alan Holmans; Robin M. Murray; Peter McGuffin; Shinichiro Nanko; Michael John Owen; David E. Housman; Haig H. Kazazian; Gerald Nestadt; Ann E. Pulver; Richard E. Straub; Charles J. MacLean; Dermot Walsh; Kenneth S. Kendler; Lynn E. DeLisi; M Polymeropoulos; Hilary Coon; William Byerley; R. Lofthouse; Elliot S. Gershon; L Golden; T.J. Crow; Robert Freedman; Claudine Laurent; S BodeauPean; Thierry d'Amato; Maurice Jay

Several groups have reported weak evidence for linkage between schizophrenia and genetic markers located on chromosome 22q using the lod score method of analysis. However these findings involved different genetic markers and methods of analysis, and so were not directly comparable. To resolve this issue we have performed a combined analysis of genotypic data from the marker D22S278 in multiply affected schizophrenic families derived from 11 independent research groups worldwide. This marker was chosen because it showed maximum evidence for linkage in three independent datasets (Vallada et al., Am J Med Genet 60:139-146, 1995; Polymeropoulos et al., Neuropsychiatr Genet 54:93-99, 1994; Lasseter et al., Am J Med Genet, 60:172-173, 1995. Using the affected sib-pair method as implemented by the program ESPA, the combined dataset showed 252 alleles shared compared with 188 alleles not share (chi-square 9.31, 1df, P = 0.001) where parental genotype data was completely known. When sib-pairs for whom parental data was assigned according to probability were included the number of alleles shared was 514.1 compared with 437.8 not shared (chi-square 6.12, 1df, P = 0.006). Similar results were obtained when a likelihood ratio method for sib-pair analysis was used. These results indicate that may be a susceptibility locus for schizophrenia at 22q12.


Molecular Psychiatry | 1998

A meta-analysis and transmission disequilibrium study of association between the dopamine D3 receptor gene and schizophrenia

Julie Williams; Gillian Spurlock; Peter Alan Holmans; R Mant; Kieran C. Murphy; Lisa Jones; Alastair G. Cardno; P. Asherson; Douglas Blackwood; Walter J. Muir; Kurt Meszaros; H.N. Aschauer; Jacques Mallet; Claudine Laurent; P Pekkarinen; J Seppala; Costas N. Stefanis; George N. Papadimitriou; Fabio Macciardi; M. Verga; C Pato; H Azevedo; Ma Crocq; H M D Gurling; Gursharan Kalsi; David Curtis; Peter McGuffin; Michael John Owen

We performed a meta-analysis of over 30 case-control studies of association between schizophrenia and a bi-allelic, BalI polymorphism in exon 1 of the dopamine D3 receptor gene. We observed a significant excess of both forms of homozygote in patients (P = 0.0009, odds ratio (OR) = 1.21, 95% Confidence Interval (CI) = 1.07–1.35) in the combined sample of 5351 individuals. No significant heterogeneity was detected between samples and the effects did not appear to be the product of publishing bias. In addition we undertook an independent, family-based association study of this polymorphism in 57 parent/proband trios, taken from unrelated European multiplex families segregating schizophrenia. A transmission disequilibrium test (TDT) showed a significant excess of homozygotes in schizophrenic patients (P = 0.004, odds ratio (OR) = 2.7, 95% CI = 1.35–5.86). Although no significant allelic association was observed, a significant association was detected with the 1–1 genotype alone (P = 0.02, OR = 2.32, 95% CI = 1.13–4.99). In addition when the results of the family-based association study were included in the meta-analysis, the homozygosity effect increased in significance (P = 0.0002, OR = 1.23, 95% CI = 1.09–1.38). The results of the meta-analysis and family-based association study provide independent support for a relationship between schizophrenia and homozygosity at the BalI polymorphism of the D3 receptor gene, or between a locus in linkage disequilibrium with it.


Psychiatric Genetics | 2003

Genome scan of pedigrees multiply affected with bipolar disorder provides further support for the presence of a susceptibility locus on chromosome 12q23-q24, and suggests the presence of additional loci on 1p and 1q

David Curtis; Gursharan Kalsi; J Brynjolfsson; Jane O'Neill; C Smyth; Eamonn Moloney; Patrice Murphy; Andrew McQuillin; Hannes Petursson; Hugh Gurling

Objective To localize genes conferring susceptibility to bipolar affective disorder. Methods Seven families were selected on the basis of containing multiple cases of bipolar affective disorder present in three or more generations, an absence of schizophrenia and unilineal transmission. DNA samples from these families were genotyped with 365 microsatellite markers spaced at approximately 10 cM intervals across the whole genome. All markers were subjected to initial two‐point and three‐point analyses using LOD score and model‐free analysis. All regions producing a result significant at P<0.01 were then subjected to four‐point LOD score analysis under the assumption of heterogeneity. Results A four‐point LOD score of 2.8 was obtained using a dominant model and including unipolar cases as affected in the region of D12S342. Four‐point LOD scores of 2 were obtained around D1S243, D1S251 and D3S1265. The positive results around D1S243 were accounted for by a LOD score of 3.1 occurring in a single pedigree. Conclusions Since there has been previous strong support for linkage to the region of 12q23‐q24 around D12S342, it now seems very probable that it does indeed contain a gene influencing susceptibility to bipolar affective disorder. Some evidence for linkage in the region of 1q near to D1S251 has been reported in one previous study. It therefore seems that this region of 1q and the region of 1p close to D1S243 may also harbour susceptibility genes.


Molecular Psychiatry | 2014

A genome-wide association study of anorexia nervosa

Vesna Boraska; Jab Floyd; Lorraine Southam; N W Rayner; Ioanna Tachmazidou; Stephanie Zerwas; Osp Davis; Sietske G. Helder; R Burghardt; K Egberts; Stefan Ehrlich; Susann Scherag; Nicolas Ramoz; Judith Hendriks; Eric Strengman; A. van Elburg; A Bruson; Maurizio Clementi; M Forzan; E Tenconi; Elisa Docampo; Geòrgia Escaramís; A Rajewski; A Slopien; Leila Karhunen; Ingrid Meulenbelt; Mario Maj; Artemis Tsitsika; L Slachtova; Zeynep Yilmaz

Anorexia nervosa (AN) is a complex and heritable eating disorder characterized by dangerously low body weight. Neither candidate gene studies nor an initial genome-wide association study (GWAS) have yielded significant and replicated results. We performed a GWAS in 2907 cases with AN from 14 countries (15 sites) and 14 860 ancestrally matched controls as part of the Genetic Consortium for AN (GCAN) and the Wellcome Trust Case Control Consortium 3 (WTCCC3). Individual association analyses were conducted in each stratum and meta-analyzed across all 15 discovery data sets. Seventy-six (72 independent) single nucleotide polymorphisms were taken forward for in silico (two data sets) or de novo (13 data sets) replication genotyping in 2677 independent AN cases and 8629 European ancestry controls along with 458 AN cases and 421 controls from Japan. The final global meta-analysis across discovery and replication data sets comprised 5551 AN cases and 21 080 controls. AN subtype analyses (1606 AN restricting; 1445 AN binge–purge) were performed. No findings reached genome-wide significance. Two intronic variants were suggestively associated: rs9839776 (P=3.01 × 10−7) in SOX2OT and rs17030795 (P=5.84 × 10−6) in PPP3CA. Two additional signals were specific to Europeans: rs1523921 (P=5.76 × 10−6) between CUL3 and FAM124B and rs1886797 (P=8.05 × 10−6) near SPATA13. Comparing discovery with replication results, 76% of the effects were in the same direction, an observation highly unlikely to be due to chance (P=4 × 10−6), strongly suggesting that true findings exist but our sample, the largest yet reported, was underpowered for their detection. The accrual of large genotyped AN case-control samples should be an immediate priority for the field.


Alcoholism: Clinical and Experimental Research | 2011

Genomewide association analysis of symptoms of alcohol dependence in the molecular genetics of schizophrenia (MGS2) control sample.

Kenneth S. Kendler; Gursharan Kalsi; Peter Holmans; Alan R. Sanders; Steven H. Aggen; Danielle M. Dick; Fazil Aliev; Jianxin Shi; Douglas F. Levinson; Pablo V. Gejman

BACKGROUND While genetic influences on alcohol dependence (AD) are substantial, progress in the identification of individual genetic variants that impact on risk has been difficult. METHODS We performed a genome-wide association study on 3,169 alcohol consuming subjects from the population-based Molecular Genetics of Schizophrenia (MGS2) control sample. Subjects were asked 7 questions about symptoms of AD which were analyzed by confirmatory factor analysis. Genotyping was performed using the Affymetrix 6.0 array. Three sets of analyses were conducted separately for European American (EA, n = 2,357) and African-American (AA, n = 812) subjects: individual single nucleotide polymorphisms (SNPs), candidate genes and enriched pathways using gene ontology (GO) categories. RESULTS The symptoms of AD formed a highly coherent single factor. No SNP approached genome-wide significance. In the EA sample, the most significant intragenic SNP was in KCNMA1, the human homolog of the slo-1 gene in C. Elegans. Genes with clusters of significant SNPs included AKAP9, phosphatidylinositol glycan anchor biosynthesis, class G (PIGG), and KCNMA1. In the AA sample, the most significant intragenic SNP was CEACAM6 and genes showing empirically significant SNPs included KCNQ5, SLC35B4, and MGLL. In the candidate gene based analyses, the most significant findings were with ADH1C, nuclear factor of kappa light polypeptide gene enhancer in B-cells 1 (NFKB1) and ankyrin repeat and kinase domain containing 1 (ANKK1) in the EA sample, and ADH5, POMC, and CHRM2 in the AA sample. The ALIGATOR program identified a significant excess of associated SNPs within and near genes in a substantial number of GO categories over a range of statistical stringencies in both the EA and AA sample. CONCLUSIONS While we cannot be highly confident about any single result from these analyses, a number of findings were suggestive and worthy of follow-up. Although quite large samples will be needed to obtain requisite power, the study of AD symptoms in general population samples is a viable complement to case-control studies in identifying genetic risk variants for AD.


Molecular Psychiatry | 2006

Fine mapping of a susceptibility locus for bipolar and genetically related unipolar affective disorders, to a region containing the C21ORF29 and TRPM2 genes on chromosome 21q22.3

Andrew McQuillin; Nick Bass; Gursharan Kalsi; Jacob Lawrence; Vinay Puri; Khalid Choudhury; Sevilla D. Detera-Wadleigh; David Curtis; Hugh Gurling

Linkage analyses of bipolar families have confirmed that there is a susceptibility locus near the telomere on chromosome 21q. To fine map this locus we carried out tests of allelic association using 30 genetic markers near the telomere at 21q22.3 in 600 bipolar research subjects and 450 ancestrally matched supernormal control subjects. We found significant allelic association with the microsatellite markers D21S171 (P=0.016) and two closely linked single-nucleotide polymorphisms, rs1556314 (P=0.008) and rs1785467 (P=0.025). A test of association with a three locus haplotype across the susceptibility region was significant with a permutation test of P=0.011. A two SNP haplotype was also significantly associated with bipolar disorder (P=0.01). Only two brain expressed genes, TRPM2 and C21ORF29 (TSPEAR), are present in the associated region. TRPM2 encodes a calcium channel receptor and TSPEAR encodes a peptide with repeats associated with epilepsy in the mouse. DNA from subjects who had inherited the associated marker alleles was sequenced. A base pair change (rs1556314) in exon 11 of TRPM2, which caused a change from an aspartic acid to a glutamic acid at peptide position 543 was found. This SNP showed the strongest association with bipolar disorder (P=0.008). Deletion of exon 11 of TRPM2 is known to cause dysregulation of cellular calcium homeostasis in response to oxidative stress. A second nonconservative change from arginine to cysteine at position 755 in TRPM2 (ss48297761) was also detected. A third nonconservative change from histidine to glutamic acid was found in exon 8 of TSPEAR. These changes need further investigation to establish any aetiological role in bipolar disorder.


Trends in Genetics | 2009

Unraveling the molecular mechanisms of alcohol dependence.

Gursharan Kalsi; Carol A. Prescott; Kenneth S. Kendler; Brien P. Riley

Alcohol dependence (AD) is a common, chronic, relapsing disorder. Compelling epidemiological evidence indicates that >50% of the risk for becoming alcoholic stems from genetic susceptibility and genetic studies have identified several risk genes. Alcohol intake alters gene expression patterns, thereby producing long-lasting cellular and molecular adaptations that might explain the development and maintenance of AD. The heterogeneous nature of AD indicates a complex etiology involving mechanisms related to motivational behavior, reward and learning, adaptations in signaling pathways owing to interactions between alcohol and target molecules, and chromatin remodeling. Emerging methodologies present opportunities to determine how alcohol might disrupt the synergistic actions of molecular systems and to assess gene-environment interactions for elucidating the behavioral and physiological dysfunctions underlying AD.


Molecular Psychiatry | 2010

A threonine to isoleucine missense mutation in the pericentriolar material 1 gene is strongly associated with schizophrenia

Susmita Datta; Andrew McQuillin; Ma Rizig; E Blaveri; Srinivasa Thirumalai; Gursharan Kalsi; Jacob Lawrence; Nick Bass; Vinay Puri; Khalid Choudhury; Jonathan Pimm; Caroline Crombie; Gillian M. Fraser; Nicholas Walker; David Curtis; Marketa Zvelebil; Ana Pereira; Radhika Kandaswamy; D. St Clair; H M D Gurling

Markers at the pericentriolar material 1 gene (PCM1) have shown genetic association with schizophrenia in both a University College London (UCL) and a USA-based case–control sample. In this paper we report a statistically significant replication of the PCM1 association in a large Scottish case–control sample from Aberdeen. Resequencing of the genomic DNA from research volunteers who had inherited haplotypes associated with schizophrenia showed a threonine to isoleucine missense mutation in exon 24 which was likely to change the structure and function of PCM1 (rs370429). This mutation was found only as a heterozygote in 98 schizophrenic research subjects and controls out of 2246 case and control research subjects. Among the 98 carriers of rs370429, 67 were affected with schizophrenia. The same alleles and haplotypes were associated with schizophrenia in both the London and Aberdeen samples. Another potential aetiological base pair change in PCM1 was rs445422, which altered a splice site signal. A further mutation, rs208747, was shown by electrophoretic mobility shift assays to create or destroy a promoter transcription factor site. Five further non-synonymous changes in exons were also found. Genotyping of the new variants discovered in the UCL case–control sample strengthened the evidence for allelic and haplotypic association (P=0.02–0.0002). Given the number and identity of the haplotypes associated with schizophrenia, further aetiological base pair changes must exist within and around the PCM1 gene. PCM1 protein has been shown to interact directly with the disrupted-in-schizophrenia 1 (DISC1) protein, Bardet-Biedl syndrome 4, and Huntingtin-associated protein 1, and is important in neuronal cell growth. In a separate study we found that clozapine but not haloperidol downregulated PCM1 expression in the mouse brain. We hypothesize that mutant PCM1 may be responsible for causing a subtype of schizophrenia through abnormal cell division and abnormal regeneration in dividing cells in the central nervous system. This is supported by our previous finding of orbitofrontal volumetric deficits in PCM1-associated schizophrenia patients as opposed to temporal pole deficits in non-PCM1-associated schizophrenia patients. Caution needs to be exercised in interpreting the actual biological effects of the mutations we have found without further cell biology. However, the DNA changes we have found deserve widespread genotyping in multiple case–control populations.

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David Curtis

University College London

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Kenneth S. Kendler

Virginia Commonwealth University

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Brien P. Riley

Virginia Commonwealth University

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T Read

University College London

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Diana G. Patterson

Virginia Commonwealth University

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Jacob Lawrence

University College London

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