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Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes

Tobacco use disorder (TUD) is the most prevalent substance use disorder in the world. Genetic factors influence smoking behaviors, and although strides have been made using genome-wide association studies (GWAS) to identify risk variants, the majority of variants identified have been for nicotine co...

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Autores principales: Toikumo, Sylvanus, Jennings, Mariela V, Pham, Benjamin K, Lee, Hyunjoon, Mallard, Travis T, Bianchi, Sevim B, Meredith, John J, Vilar-Ribó, Laura, Xu, Heng, Hatoum, Alexander S, Johnson, Emma C, Pazdernik, Vanessa, Jinwala, Zeal, Pakala, Shreya R, Leger, Brittany S, Niarchou, Maria, Ehinmowo, Michael, Jenkins, Greg D, Batzler, Anthony, Pendegraft, Richard, Palmer, Abraham A, Zhou, Hang, Biernacka, Joanna M, Coombes, Brandon J, Gelernter, Joel, Xu, Ke, Hancock, Dana B, Cox, Nancy J, Smoller, Jordan W, Davis, Lea K, Justice, Amy C, Kranzler, Henry R, Kember, Rachel L, Sanchez-Roige, Sandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10081388/
https://www.ncbi.nlm.nih.gov/pubmed/37034728
http://dx.doi.org/10.1101/2023.03.27.23287713
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author Toikumo, Sylvanus
Jennings, Mariela V
Pham, Benjamin K
Lee, Hyunjoon
Mallard, Travis T
Bianchi, Sevim B
Meredith, John J
Vilar-Ribó, Laura
Xu, Heng
Hatoum, Alexander S
Johnson, Emma C
Pazdernik, Vanessa
Jinwala, Zeal
Pakala, Shreya R
Leger, Brittany S
Niarchou, Maria
Ehinmowo, Michael
Jenkins, Greg D
Batzler, Anthony
Pendegraft, Richard
Palmer, Abraham A
Zhou, Hang
Biernacka, Joanna M
Coombes, Brandon J
Gelernter, Joel
Xu, Ke
Hancock, Dana B
Cox, Nancy J
Smoller, Jordan W
Davis, Lea K
Justice, Amy C
Kranzler, Henry R
Kember, Rachel L
Sanchez-Roige, Sandra
author_facet Toikumo, Sylvanus
Jennings, Mariela V
Pham, Benjamin K
Lee, Hyunjoon
Mallard, Travis T
Bianchi, Sevim B
Meredith, John J
Vilar-Ribó, Laura
Xu, Heng
Hatoum, Alexander S
Johnson, Emma C
Pazdernik, Vanessa
Jinwala, Zeal
Pakala, Shreya R
Leger, Brittany S
Niarchou, Maria
Ehinmowo, Michael
Jenkins, Greg D
Batzler, Anthony
Pendegraft, Richard
Palmer, Abraham A
Zhou, Hang
Biernacka, Joanna M
Coombes, Brandon J
Gelernter, Joel
Xu, Ke
Hancock, Dana B
Cox, Nancy J
Smoller, Jordan W
Davis, Lea K
Justice, Amy C
Kranzler, Henry R
Kember, Rachel L
Sanchez-Roige, Sandra
author_sort Toikumo, Sylvanus
collection PubMed
description Tobacco use disorder (TUD) is the most prevalent substance use disorder in the world. Genetic factors influence smoking behaviors, and although strides have been made using genome-wide association studies (GWAS) to identify risk variants, the majority of variants identified have been for nicotine consumption, rather than TUD. We leveraged five biobanks to perform a multi-ancestral meta-analysis of TUD (derived via electronic health records, EHR) in 898,680 individuals (739,895 European, 114,420 African American, 44,365 Latin American). We identified 88 independent risk loci; integration with functional genomic tools uncovered 461 potential risk genes, primarily expressed in the brain. TUD was genetically correlated with smoking and psychiatric traits from traditionally ascertained cohorts, externalizing behaviors in children, and hundreds of medical outcomes, including HIV infection, heart disease, and pain. This work furthers our biological understanding of TUD and establishes EHR as a source of phenotypic information for studying the genetics of TUD.
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spelling pubmed-100813882023-04-08 Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes Toikumo, Sylvanus Jennings, Mariela V Pham, Benjamin K Lee, Hyunjoon Mallard, Travis T Bianchi, Sevim B Meredith, John J Vilar-Ribó, Laura Xu, Heng Hatoum, Alexander S Johnson, Emma C Pazdernik, Vanessa Jinwala, Zeal Pakala, Shreya R Leger, Brittany S Niarchou, Maria Ehinmowo, Michael Jenkins, Greg D Batzler, Anthony Pendegraft, Richard Palmer, Abraham A Zhou, Hang Biernacka, Joanna M Coombes, Brandon J Gelernter, Joel Xu, Ke Hancock, Dana B Cox, Nancy J Smoller, Jordan W Davis, Lea K Justice, Amy C Kranzler, Henry R Kember, Rachel L Sanchez-Roige, Sandra medRxiv Article Tobacco use disorder (TUD) is the most prevalent substance use disorder in the world. Genetic factors influence smoking behaviors, and although strides have been made using genome-wide association studies (GWAS) to identify risk variants, the majority of variants identified have been for nicotine consumption, rather than TUD. We leveraged five biobanks to perform a multi-ancestral meta-analysis of TUD (derived via electronic health records, EHR) in 898,680 individuals (739,895 European, 114,420 African American, 44,365 Latin American). We identified 88 independent risk loci; integration with functional genomic tools uncovered 461 potential risk genes, primarily expressed in the brain. TUD was genetically correlated with smoking and psychiatric traits from traditionally ascertained cohorts, externalizing behaviors in children, and hundreds of medical outcomes, including HIV infection, heart disease, and pain. This work furthers our biological understanding of TUD and establishes EHR as a source of phenotypic information for studying the genetics of TUD. Cold Spring Harbor Laboratory 2023-09-18 /pmc/articles/PMC10081388/ /pubmed/37034728 http://dx.doi.org/10.1101/2023.03.27.23287713 Text en https://creativecommons.org/licenses/by-nd/4.0/This work is licensed under a Creative Commons Attribution-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, and only so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Toikumo, Sylvanus
Jennings, Mariela V
Pham, Benjamin K
Lee, Hyunjoon
Mallard, Travis T
Bianchi, Sevim B
Meredith, John J
Vilar-Ribó, Laura
Xu, Heng
Hatoum, Alexander S
Johnson, Emma C
Pazdernik, Vanessa
Jinwala, Zeal
Pakala, Shreya R
Leger, Brittany S
Niarchou, Maria
Ehinmowo, Michael
Jenkins, Greg D
Batzler, Anthony
Pendegraft, Richard
Palmer, Abraham A
Zhou, Hang
Biernacka, Joanna M
Coombes, Brandon J
Gelernter, Joel
Xu, Ke
Hancock, Dana B
Cox, Nancy J
Smoller, Jordan W
Davis, Lea K
Justice, Amy C
Kranzler, Henry R
Kember, Rachel L
Sanchez-Roige, Sandra
Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title_full Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title_fullStr Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title_full_unstemmed Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title_short Multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
title_sort multi-ancestry meta-analysis of tobacco use disorder prioritizes novel candidate risk genes and reveals associations with numerous health outcomes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10081388/
https://www.ncbi.nlm.nih.gov/pubmed/37034728
http://dx.doi.org/10.1101/2023.03.27.23287713
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