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Dive into the research topics where C. Palmer is active.

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Featured researches published by C. Palmer.


PLOS Genetics | 2012

The Metabochip, a Custom Genotyping Array for Genetic Studies of Metabolic, Cardiovascular, and Anthropometric Traits

Benjamin F. Voight; Hyun Min Kang; Jinhui Ding; C. Palmer; Carlo Sidore; Peter S. Chines; N. P. Burtt; Christian Fuchsberger; Yanming Li; J. Erdmann; Timothy M. Frayling; Iris M. Heid; Anne U. Jackson; Toby Johnson; Tuomas O. Kilpeläinen; Cecilia M. Lindgren; Andrew P. Morris; Inga Prokopenko; Joshua C. Randall; Richa Saxena; Nicole Soranzo; Elizabeth K. Speliotes; Tanya M. Teslovich; Eleanor Wheeler; Jared Maguire; Melissa Parkin; Simon Potter; Nigel W. Rayner; Neil R. Robertson; Kathy Stirrups

Genome-wide association studies have identified hundreds of loci for type 2 diabetes, coronary artery disease and myocardial infarction, as well as for related traits such as body mass index, glucose and insulin levels, lipid levels, and blood pressure. These studies also have pointed to thousands of loci with promising but not yet compelling association evidence. To establish association at additional loci and to characterize the genome-wide significant loci by fine-mapping, we designed the “Metabochip,” a custom genotyping array that assays nearly 200,000 SNP markers. Here, we describe the Metabochip and its component SNP sets, evaluate its performance in capturing variation across the allele-frequency spectrum, describe solutions to methodological challenges commonly encountered in its analysis, and evaluate its performance as a platform for genotype imputation. The metabochip achieves dramatic cost efficiencies compared to designing single-trait follow-up reagents, and provides the opportunity to compare results across a range of related traits. The metabochip and similar custom genotyping arrays offer a powerful and cost-effective approach to follow-up large-scale genotyping and sequencing studies and advance our understanding of the genetic basis of complex human diseases and traits.


Hepatology | 2010

PNPLA3 variants specifically confer increased risk for histologic nonalcoholic fatty liver disease but not metabolic disease

Elizabeth K. Speliotes; Johannah L. Butler; C. Palmer; Benjamin F. Voight; Joel N. Hirschhorn

Single nucleotide polymorphisms (SNPs) near 7 loci have been associated with liver function tests or with liver steatosis by magnetic resonance spectroscopy. In this study we aim to test whether these SNPs influence the risk of histologically‐confirmed nonalcoholic fatty liver disease (NAFLD). We tested the association of histologic NAFLD with SNPs at 7 loci in 592 cases of European ancestry from the Nonalcoholic Steatohepatitis Clinical Research Network and 1405 ancestry‐matched controls. The G allele of rs738409 in PNPLA3 was associated with increased odds of histologic NAFLD (odds ratio [OR] = 3.26, 95% confidence intervals [CI] = 2.11‐7.21; P = 3.6 × 10−43). In a case only analysis of G allele of rs738409 in PNPLA3 was associated with a decreased risk of zone 3 centered steatosis (OR = 0.46, 95% CI = 0.36‐0.58; P = 5.15 × 10−11). We did not observe any association of this variant with body mass index, triglyceride levels, high‐ and low‐density lipoprotein levels, or diabetes (P > 0.05). None of the variants at the other 6 loci were associated with NAFLD. Conclusion: Genetic variation at PNPLA3 confers a markedly increased risk of increasingly severe histological features of NAFLD, without a strong effect on metabolic syndrome component traits. (HEPATOLOGY 2010)


PLOS Genetics | 2011

Genome-Wide Association Study of Coronary Heart Disease and Its Risk Factors in 8,090 African Americans: The NHLBI CARe Project

Guillaume Lettre; C. Palmer; Taylor Young; Kenechi G. Ejebe; Hooman Allayee; Emelia J. Benjamin; Franklyn I Bennett; Donald W. Bowden; Aravinda Chakravarti; Al Dreisbach; Deborah N. Farlow; Aaron R. Folsom; Myriam Fornage; Terrence Forrester; Ervin R. Fox; Christopher A. Haiman; Jaana Hartiala; Tamara B. Harris; Stanley L. Hazen; Susan R. Heckbert; Brian E. Henderson; Joel N. Hirschhorn; Brendan J. Keating; Stephen B. Kritchevsky; Emma K. Larkin; Mingyao Li; Megan E. Rudock; Colin A. McKenzie; James B. Meigs; Yang A. Meng

Coronary heart disease (CHD) is the leading cause of mortality in African Americans. To identify common genetic polymorphisms associated with CHD and its risk factors (LDL- and HDL-cholesterol (LDL-C and HDL-C), hypertension, smoking, and type-2 diabetes) in individuals of African ancestry, we performed a genome-wide association study (GWAS) in 8,090 African Americans from five population-based cohorts. We replicated 17 loci previously associated with CHD or its risk factors in Caucasians. For five of these regions (CHD: CDKN2A/CDKN2B; HDL-C: FADS1-3, PLTP, LPL, and ABCA1), we could leverage the distinct linkage disequilibrium (LD) patterns in African Americans to identify DNA polymorphisms more strongly associated with the phenotypes than the previously reported index SNPs found in Caucasian populations. We also developed a new approach for association testing in admixed populations that uses allelic and local ancestry variation. Using this method, we discovered several loci that would have been missed using the basic allelic and global ancestry information only. Our conclusions suggest that no major loci uniquely explain the high prevalence of CHD in African Americans. Our project has developed resources and methods that address both admixture- and SNP-association to maximize power for genetic discovery in even larger African-American consortia.


Nature | 2011

The landscape of recombination in African Americans

Anjali G. Hinch; Arti Tandon; Nick Patterson; Yunli Song; Nadin Rohland; C. Palmer; Gary K. Chen; Kai Wang; Sarah G. Buxbaum; Ermeg L. Akylbekova; Melinda C. Aldrich; Christine B. Ambrosone; Christopher I. Amos; Elisa V. Bandera; Sonja I. Berndt; Leslie Bernstein; William J. Blot; Cathryn H. Bock; Eric Boerwinkle; Qiuyin Cai; Neil E. Caporaso; Graham Casey; L. Adrienne Cupples; Sandra L. Deming; W. Ryan Diver; Jasmin Divers; Myriam Fornage; Elizabeth M. Gillanders; Joseph T. Glessner; Curtis C. Harris

Recombination, together with mutation, gives rise to genetic variation in populations. Here we leverage the recent mixture of people of African and European ancestry in the Americas to build a genetic map measuring the probability of crossing over at each position in the genome, based on about 2.1 million crossovers in 30,000 unrelated African Americans. At intervals of more than three megabases it is nearly identical to a map built in Europeans. At finer scales it differs significantly, and we identify about 2,500 recombination hotspots that are active in people of West African ancestry but nearly inactive in Europeans. The probability of a crossover at these hotspots is almost fully controlled by the alleles an individual carries at PRDM9 (P value < 10−245). We identify a 17-base-pair DNA sequence motif that is enriched in these hotspots, and is an excellent match to the predicted binding target of PRDM9 alleles common in West Africans and rare in Europeans. Sites of this motif are predicted to be risk loci for disease-causing genomic rearrangements in individuals carrying these alleles. More generally, this map provides a resource for research in human genetic variation and evolution.


Nature Genetics | 2010

Fine-mapping at three loci known to affect fetal hemoglobin levels explains additional genetic variation

Geneviève Galarneau; C. Palmer; Vijay G. Sankaran; Stuart H. Orkin; Joel N. Hirschhorn; Guillaume Lettre

We used resequencing and genotyping in African Americans with sickle cell anemia (SCA) to characterize associations with fetal hemoglobin (HbF) levels at the BCL11A, HBS1L-MYB and β-globin loci. Fine-mapping of HbF association signals at these loci confirmed seven SNPs with independent effects and increased the explained heritable variation in HbF levels from 38.6% to 49.5%. We also identified rare missense variants that causally implicate MYB in HbF production.


Nature Genetics | 2012

Evidence of widespread selection on standing variation in Europe at height-associated SNPs

Michael C. Turchin; Charleston W. K. Chiang; C. Palmer; Sriram Sankararaman; David Reich; Joel N. Hirschhorn

Strong signatures of positive selection at newly arising genetic variants are well documented in humans, but this form of selection may not be widespread in recent human evolution. Because many human traits are highly polygenic and partly determined by common, ancient genetic variation, an alternative model for rapid genetic adaptation has been proposed: weak selection acting on many pre-existing (standing) genetic variants, or polygenic adaptation. By studying height, a classic polygenic trait, we demonstrate the first human signature of widespread selection on standing variation. We show that frequencies of alleles associated with increased height, both at known loci and genome wide, are systematically elevated in Northern Europeans compared with Southern Europeans (P < 4.3 × 10−4). This pattern mirrors intra-European height differences and is not confounded by ancestry or other ascertainment biases. The systematic frequency differences are consistent with the presence of widespread weak selection (selection coefficients ∼10−3–10−5 per allele) rather than genetic drift alone (P < 10−15).


PLOS ONE | 2012

Genome-Wide Association Studies of Asthma in Population-Based Cohorts Confirm Known and Suggested Loci and Identify an Additional Association near HLA

Adaikalavan Ramasamy; Mikko Kuokkanen; Sailaja Vedantam; Zofia K. Z. Gajdos; Alexessander Couto Alves; Helen N. Lyon; Manuel A. Ferreira; David P. Strachan; Jing Hua Zhao; Michael J. Abramson; Matthew A. Brown; Lachlan Coin; Shyamali C. Dharmage; David L. Duffy; Tari Haahtela; Andrew C. Heath; Christer Janson; Mika Kähönen; Kay-Tee Khaw; Jaana Laitinen; Peter Le Souef; Terho Lehtimäki; Pamela A. F. Madden; Guy B. Marks; Nicholas G. Martin; Melanie C. Matheson; C. Palmer; Aarno Palotie; Anneli Pouta; Colin F. Robertson

Rationale Asthma has substantial morbidity and mortality and a strong genetic component, but identification of genetic risk factors is limited by availability of suitable studies. Objectives To test if population-based cohorts with self-reported physician-diagnosed asthma and genome-wide association (GWA) data could be used to validate known associations with asthma and identify novel associations. Methods The APCAT (Analysis in Population-based Cohorts of Asthma Traits) consortium consists of 1,716 individuals with asthma and 16,888 healthy controls from six European-descent population-based cohorts. We examined associations in APCAT of thirteen variants previously reported as genome-wide significant (P<5x10−8) and three variants reported as suggestive (P<5×10−7). We also searched for novel associations in APCAT (Stage 1) and followed-up the most promising variants in 4,035 asthmatics and 11,251 healthy controls (Stage 2). Finally, we conducted the first genome-wide screen for interactions with smoking or hay fever. Main Results We observed association in the same direction for all thirteen previously reported variants and nominally replicated ten of them. One variant that was previously suggestive, rs11071559 in RORA, now reaches genome-wide significance when combined with our data (P = 2.4×10−9). We also identified two genome-wide significant associations: rs13408661 near IL1RL1/IL18R1 (P Stage1+Stage2 = 1.1x10−9), which is correlated with a variant recently shown to be associated with asthma (rs3771180), and rs9268516 in the HLA region (P Stage1+Stage2 = 1.1x10−8), which appears to be independent of previously reported associations in this locus. Finally, we found no strong evidence for gene-environment interactions with smoking or hay fever status. Conclusions Population-based cohorts with simple asthma phenotypes represent a valuable and largely untapped resource for genetic studies of asthma.


PLOS Genetics | 2012

New susceptibility loci associated with kidney disease in Type 1 diabetes

Niina Sandholm; Rany M. Salem; Amy Jayne McKnight; Eoin P. Brennan; Carol Forsblom; Tamara Isakova; Gareth J. McKay; Winfred W. Williams; Denise Sadlier; Ville Petteri Mäkinen; Elizabeth J. Swan; C. Palmer; Andrew P. Boright; Emma Ahlqvist; Harshal Deshmukh; Benjamin J. Keller; Huateng Huang; Aila J. Ahola; Emma Fagerholm; Daniel Gordin; Valma Harjutsalo; Bing He; Outi Heikkilä; Kustaa Hietala; Janne P. Kytö; Päivi Lahermo; Markku Lehto; Raija Lithovius; Anne-May Österholm; Maija Parkkonen

Diabetic kidney disease, or diabetic nephropathy (DN), is a major complication of diabetes and the leading cause of end-stage renal disease (ESRD) that requires dialysis treatment or kidney transplantation. In addition to the decrease in the quality of life, DN accounts for a large proportion of the excess mortality associated with type 1 diabetes (T1D). Whereas the degree of glycemia plays a pivotal role in DN, a subset of individuals with poorly controlled T1D do not develop DN. Furthermore, strong familial aggregation supports genetic susceptibility to DN. However, the genes and the molecular mechanisms behind the disease remain poorly understood, and current therapeutic strategies rarely result in reversal of DN. In the GEnetics of Nephropathy: an International Effort (GENIE) consortium, we have undertaken a meta-analysis of genome-wide association studies (GWAS) of T1D DN comprising ∼2.4 million single nucleotide polymorphisms (SNPs) imputed in 6,691 individuals. After additional genotyping of 41 top ranked SNPs representing 24 independent signals in 5,873 individuals, combined meta-analysis revealed association of two SNPs with ESRD: rs7583877 in the AFF3 gene (P = 1.2×10−8) and an intergenic SNP on chromosome 15q26 between the genes RGMA and MCTP2, rs12437854 (P = 2.0×10−9). Functional data suggest that AFF3 influences renal tubule fibrosis via the transforming growth factor-beta (TGF-β1) pathway. The strongest association with DN as a primary phenotype was seen for an intronic SNP in the ERBB4 gene (rs7588550, P = 2.1×10−7), a gene with type 2 diabetes DN differential expression and in the same intron as a variant with cis-eQTL expression of ERBB4. All these detected associations represent new signals in the pathogenesis of DN.


PLOS Genetics | 2011

Enhanced Statistical Tests for GWAS in Admixed Populations: Assessment using African Americans from CARe and a Breast Cancer Consortium

Bogdan Pasaniuc; Noah Zaitlen; Guillaume Lettre; Gary K. Chen; Arti Tandon; W.H. Linda Kao; Ingo Ruczinski; Myriam Fornage; David S. Siscovick; Xiaofeng Zhu; Emma K. Larkin; Leslie A. Lange; L. Adrienne Cupples; Qiong Yang; Ermeg L. Akylbekova; Solomon K. Musani; Jasmin Divers; Joe Mychaleckyj; Mingyao Li; George J. Papanicolaou; Robert C. Millikan; Christine B. Ambrosone; Esther M. John; Leslie Bernstein; Wei Zheng; Jennifer J. Hu; Regina G. Ziegler; Sarah J. Nyante; Elisa V. Bandera; Sue A. Ingles

While genome-wide association studies (GWAS) have primarily examined populations of European ancestry, more recent studies often involve additional populations, including admixed populations such as African Americans and Latinos. In admixed populations, linkage disequilibrium (LD) exists both at a fine scale in ancestral populations and at a coarse scale (admixture-LD) due to chromosomal segments of distinct ancestry. Disease association statistics in admixed populations have previously considered SNP association (LD mapping) or admixture association (mapping by admixture-LD), but not both. Here, we introduce a new statistical framework for combining SNP and admixture association in case-control studies, as well as methods for local ancestry-aware imputation. We illustrate the gain in statistical power achieved by these methods by analyzing data of 6,209 unrelated African Americans from the CARe project genotyped on the Affymetrix 6.0 chip, in conjunction with both simulated and real phenotypes, as well as by analyzing the FGFR2 locus using breast cancer GWAS data from 5,761 African-American women. We show that, at typed SNPs, our method yields an 8% increase in statistical power for finding disease risk loci compared to the power achieved by standard methods in case-control studies. At imputed SNPs, we observe an 11% increase in statistical power for mapping disease loci when our local ancestry-aware imputation framework and the new scoring statistic are jointly employed. Finally, we show that our method increases statistical power in regions harboring the causal SNP in the case when the causal SNP is untyped and cannot be imputed. Our methods and our publicly available software are broadly applicable to GWAS in admixed populations.


PLOS Genetics | 2011

Genome-wide association study of white blood cell count in 16,388 African Americans: the continental origins and genetic epidemiology network (COGENT).

Alex P. Reiner; Guillaume Lettre; Michael A. Nalls; Santhi K. Ganesh; Rasika A. Mathias; Melissa A. Austin; Eric Dean; Sampath Arepalli; Angela Britton; Zhao Chen; David Couper; J. David Curb; Charles B. Eaton; Myriam Fornage; Struan F. A. Grant; Tamara B. Harris; Dena Hernandez; Naoyuki Kamatini; Brendan J. Keating; Michiaki Kubo; Andrea Z. LaCroix; Leslie A. Lange; Simin Liu; Kurt Lohman; Yan Meng; Emile R. Mohler; Solomon K. Musani; Yusuke Nakamura; Christopher J. O'Donnell; Yukinori Okada

Total white blood cell (WBC) and neutrophil counts are lower among individuals of African descent due to the common African-derived “null” variant of the Duffy Antigen Receptor for Chemokines (DARC) gene. Additional common genetic polymorphisms were recently associated with total WBC and WBC sub-type levels in European and Japanese populations. No additional loci that account for WBC variability have been identified in African Americans. In order to address this, we performed a large genome-wide association study (GWAS) of total WBC and cell subtype counts in 16,388 African-American participants from 7 population-based cohorts available in the Continental Origins and Genetic Epidemiology Network. In addition to the DARC locus on chromosome 1q23, we identified two other regions (chromosomes 4q13 and 16q22) associated with WBC in African Americans (P<2.5×10−8). The lead SNP (rs9131) on chromosome 4q13 is located in the CXCL2 gene, which encodes a chemotactic cytokine for polymorphonuclear leukocytes. Independent evidence of the novel CXCL2 association with WBC was present in 3,551 Hispanic Americans, 14,767 Japanese, and 19,509 European Americans. The index SNP (rs12149261) on chromosome 16q22 associated with WBC count is located in a large inter-chromosomal segmental duplication encompassing part of the hydrocephalus inducing homolog (HYDIN) gene. We demonstrate that the chromosome 16q22 association finding is most likely due to a genotyping artifact as a consequence of sequence similarity between duplicated regions on chromosomes 16q22 and 1q21. Among the WBC loci recently identified in European or Japanese populations, replication was observed in our African-American meta-analysis for rs445 of CDK6 on chromosome 7q21 and rs4065321 of PSMD3-CSF3 region on chromosome 17q21. In summary, the CXCL2, CDK6, and PSMD3-CSF3 regions are associated with WBC count in African American and other populations. We also demonstrate that large inter-chromosomal duplications can result in false positive associations in GWAS.

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Alex P. Reiner

University of Washington

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Michael A. Nalls

National Institutes of Health

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Qiong Yang

University of Washington

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