Meta-analysis of gene-level associations for rare variants based on single-variant statistics.

Yijuan Hu,Sonja I Berndt,Stefan Gustafsson,Andrea Ganna,Kari E North,Erik Ingelsson,D Lin,Reedik Magi,Eleanor Wheeler,Mary F Feitosa,Anne E Justice,Keri L Monda,Damien C Croteauchonka,Felix R Day,Tonu Esko,Tove Fall,Teresa Ferreira,Davide Gentilini,Anne U Jackson,Jian An Luan,Joshua C Randall,Sailaja Vedantam,Cristen J Willer,Thomas W Winkler,Andrew R Wood,Tsegaselassie Workalemahu,S H Lee, Liming Liang,Josine L Min,Benjamin M Neale,Gudmar Thorleifsson,Jian Yang,Eva Albrecht,Najaf Amin,Jennifer L Bragggresham,Gemma Cadby,Martin Den Heijer,Niina Eklund,Krista Fischer,Anuj Goel,Joukejan Hottenga,Jennifer E Huffman,Ivonne Jarick,Asa Johansson,Toby Johnson,Stavroula Kanoni,Marcus E Kleber,Inke R Konig,Kati Kristiansson,Zoltan Kutalik,Claudia Lamina,Cecile Lecoeur,Guo Li,Massimo Mangino,Wendy L Mcardle,Carolina Medinagomez,Martina Mullernurasyid,Julius S Ngwa,Ilja M Nolte,Lavinia Paternoster,Sonali Pechlivanis,Markus Perola, M Peters, Mike Preuss,Lynda M Rose,Jianxin Shi,Dmitry Shungin,Albert V Smith,Rona J Strawbridge,Ida Surakka,Alexander Teumer,Mieke D Trip,Jonathan Tyrer,Jana V Van Vlietostaptchouk,Liesbeth Vandenput,Lindsay L Waite, Jing Hua Zhao,Devin Absher,Folkert W Asselbergs,Mustafa Atalay,Antony P Attwood,Anthony J Balmforth, Hanneke Basart, John P Beilby,Lori L Bonnycastle,Paolo Brambilla,Marcel Bruinenberg,Harry Campbell,Daniel I Chasman,Peter S Chines,Francis S Collins,William O C M Cookson,Ulf De Faire,Femmie De Vegt,Mariano Dei,Maria Dimitriou,Sarah Edkins,Karol Estrada,D Evans,Martin Farrall,M Ferrario,Jean Ferrieres,Lude Franke,Francesca Frau,Pablo V Gejman,Harald Grallert,Henrik Gronberg,Vilmundur Gudnason,Alistair S Hall,Per Hall,Annaliisa Hartikainen,Caroline Hayward,Nancy L Heardcosta,Andrew C Heath,Johannes Hebebrand,Georg Homuth,Frank B Hu, Sarah E Hunt,Elina Hypponen,Carlos Iribarren,Kevin B Jacobs,Johnolov Jansson,Antti Jula,Mika Kahonen,Sekar Kathiresan,Frank Kee,Kaytee Khaw,Mika Kivimaki,Wolfgang Koenig,Aldi T Kraja,Meena Kumari,Kari Kuulasmaa,Johanna Kuusisto,Jaana Laitinen,Timo A Lakka,Claudia Langenberg,Lenore J Launer,Lars Lind,Jaana Lindstrom,Jianjun Liu,Antonio Liuzzi,Marjaliisa Lokki,Mattias Lorentzon,Pamela A Madden,Patrik K Magnusson,Paolo Manunta,Diana Marek,Winfried Marz,Irene Mateo Leach,Barbara Mcknight,Sarah E Medland,Evelin Mihailov,Lili Milani,Grant W Montgomery,Vincent Mooser,Thomas W Muhleisen,Patricia B Munroe, A W Musk,Narisu Narisu,Gerjan Navis,George Nicholson,Ellen A Nohr,Ken K Ong,Ben A Oostra,C Palmer,Aarno Palotie,John F Peden,Nancy L Pedersen,Annette Peters,Ozren Polasek,Anneli Pouta,Peter P Pramstaller,Inga Prokopenko,Carolin Putter,Aparna Radhakrishnan,Olli T Raitakari,Augusto Rendon,Fernando Rivadeneira,Igor Rudan,Timo Saaristo,J Sambrook,Alan R Sanders,Serena Sanna,Jouko Saramies,Sabine Schipf,Stefan Schreiber,Heribert Schunkert,Soyoun Shin,Stefano Signorini,Juha Sinisalo,Boris Skrobek,Nicole Soranzo,Alena Stancakova,Klaus Stark,Jonathan Stephens,Kathleen Stirrups,Ronald P Stolk,Michael Stumvoll,Amy J Swift,Eirini V Theodoraki,Barbara Thorand,Davidalexandre Tregouet,Elena Tremoli,Melanie M Van Der Klauw,Joyce B J Van Meurs,Sita H Vermeulen,Jorma Viikari,Jarmo Virtamo,Veronique Vitart,Gerard Waeber,Z Wang,Elisabeth Widen,Sarah H Wild,Gonneke Willemsen,Bernhard R Winkelmann,Jacqueline C M Witteman,Bruce H R Wolffenbuttel,Andrew Wong,Alan F Wright,M Carola Zillikens,Philippe Amouyel,Bernhard O Boehm,Eric Boerwinkle,Dorret I Boomsma,Mark J Caulfield,Stephen J Chanock,L Adrienne Cupples,Daniele Cusi,George V Dedoussis,J Erdmann,Johan G Eriksson,Paul W Franks,Philippe Froguel,Christian Gieger,Ulf Gyllensten,Anders Hamsten,Tamara B Harris,Christian Hengstenberg,Andrew A Hicks,Aroon D Hingorani,Anke Hinney,Albert Hofman,Kees Hovingh,Kristian Hveem,Thomas Illig,Marjoriitta Jarvelin,Karlheinz Jockel,Sirkka Keinanenkiukaanniemi,Lambertus A Kiemeney,Diana Kuh,Markku Laakso,Terho Lehtimaki,Douglas F Levinson,Nicholas G Martin,Andres Metspalu,Andrew D Morris,Markku S Nieminen,Inger Njolstad,Claes Ohlsson,Albertine J Oldehinkel,Willem H Ouwehand,Lyle J Palmer,Brenda W J H Penninx,Chris Power,Michael A Province,Bruce M Psaty,Lu Qi,Rainer Rauramaa,Paul M Ridker,Samuli Ripatti,Veikko Salomaa,Nilesh J Samani,Harold Snieder,Thorkild I A Sorensen,Tim D Spector,Kari Stefansson,Anke Tonjes, J Tuomilehto,Andre G Uitterlinden,Matti Uusitupa,Pim Van Der Harst,Peter Vollenweider,Henri Wallaschofski,Nicholas J Wareham,Hugh Watkins,H Erich Wichmann, James F Wilson,Goncalo R Abecasis,Themistocles L Assimes,Ines Barroso,Michael Boehnke,Ingrid B Borecki,Panos Deloukas,Caroline S Fox,Timothy M Frayling,Leif Groop,Talin Haritunian,Iris M Heid,David J Hunter,Robert C Kaplan,Fredrik Karpe,Miriam F Moffatt,Karen L Mohlke,Jeffrey R O Connell,Yudi Pawitan,Eric E Schadt,David Schlessinger,Valgerdur Steinthorsdottir,David P Strachan,Unnur Thorsteinsdottir,Cornelia M Van Duijn,Peter M Visscher,Anna Maria Di Blasio,Joel N Hirschhorn,Cecilia M Lindgren,David Meyre,Andre Scherag,Mark I Mccarthy,Elizabeth K Speliotes,Ruth J F Loos

The American Journal of Human Genetics(2013)

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摘要
Meta-analysis of genome-wide association studies (GWASs) has led to the discoveries of many common variants associated with complex human diseases. There is a growing recognition that identifying "causal" rare variants also requires large-scale meta-analysis. The fact that association tests with rare variants are performed at the gene level rather than at the variant level poses unprecedented challenges in the meta-analysis. First, different studies may adopt different gene-level tests, so the results are not compatible. Second, gene-level tests require multivariate statistics (i.e., components of the test statistic and their covariance matrix), which are difficult to obtain. To overcome these challenges, we propose to perform gene-level tests for rare variants by combining the results of single-variant analysis (i.e., p values of association tests and effect estimates) from participating studies. This simple strategy is possible because of an insight that multivariate statistics can be recoVered from single-variant statistics, together with the correlation matrix of the single-variant test statistics, which can be estimated from one of the participating studies or from a publicly available database. We show both theoretically and numerically that the proposed meta-analysis approach provides accurate control of the type I error and is as powerful as joint analysis of individual participant data. This approach accommodates any disease phenotype and any study design and produces all commonly used gene-level tests. An application to the GWAS summary results of the Genetic Investigation of ANthropometric Traits (GIANT) consortium reveals rare and low-frequency variants associated with human height. The relevant software is freely available.
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关键词
gene frequency,polymorphism,genome wide association study,receptors,phenotype,genetic variation,genotype,computer simulation
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