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Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy
The SARS-CoV-2 pandemic has differentially impacted populations across race and ethnicity. A multi-omic approach represents a powerful tool to examine risk across multi-ancestry genomes. We leverage a pandemic tracking strategy in which we sequence viral and host genomes and transcriptomes from naso...
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Nature Publishing Group UK
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9426371/ https://www.ncbi.nlm.nih.gov/pubmed/36042219 http://dx.doi.org/10.1038/s41467-022-32397-8 |
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author | Parikh, Victoria N. Ioannidis, Alexander G. Jimenez-Morales, David Gorzynski, John E. De Jong, Hannah N. Liu, Xiran Roque, Jonasel Cepeda-Espinoza, Victoria P. Osoegawa, Kazutoyo Hughes, Chris Sutton, Shirley C. Youlton, Nathan Joshi, Ruchi Amar, David Tanigawa, Yosuke Russo, Douglas Wong, Justin Lauzon, Jessie T. Edelson, Jacob Mas Montserrat, Daniel Kwon, Yongchan Rubinacci, Simone Delaneau, Olivier Cappello, Lorenzo Kim, Jaehee Shoura, Massa J. Raja, Archana N. Watson, Nathaniel Hammond, Nathan Spiteri, Elizabeth Mallempati, Kalyan C. Montero-Martín, Gonzalo Christle, Jeffrey Kim, Jennifer Kirillova, Anna Seo, Kinya Huang, Yong Zhao, Chunli Moreno-Grau, Sonia Hershman, Steven G. Dalton, Karen P. Zhen, Jimmy Kamm, Jack Bhatt, Karan D. Isakova, Alina Morri, Maurizio Ranganath, Thanmayi Blish, Catherine A. Rogers, Angela J. Nadeau, Kari Yang, Samuel Blomkalns, Andra O’Hara, Ruth Neff, Norma F. DeBoever, Christopher Szalma, Sándor Wheeler, Matthew T. Gates, Christian M. Farh, Kyle Schroth, Gary P. Febbo, Phil deSouza, Francis Cornejo, Omar E. Fernandez-Vina, Marcelo Kistler, Amy Palacios, Julia A. Pinsky, Benjamin A. Bustamante, Carlos D. Rivas, Manuel A. Ashley, Euan A. |
author_facet | Parikh, Victoria N. Ioannidis, Alexander G. Jimenez-Morales, David Gorzynski, John E. De Jong, Hannah N. Liu, Xiran Roque, Jonasel Cepeda-Espinoza, Victoria P. Osoegawa, Kazutoyo Hughes, Chris Sutton, Shirley C. Youlton, Nathan Joshi, Ruchi Amar, David Tanigawa, Yosuke Russo, Douglas Wong, Justin Lauzon, Jessie T. Edelson, Jacob Mas Montserrat, Daniel Kwon, Yongchan Rubinacci, Simone Delaneau, Olivier Cappello, Lorenzo Kim, Jaehee Shoura, Massa J. Raja, Archana N. Watson, Nathaniel Hammond, Nathan Spiteri, Elizabeth Mallempati, Kalyan C. Montero-Martín, Gonzalo Christle, Jeffrey Kim, Jennifer Kirillova, Anna Seo, Kinya Huang, Yong Zhao, Chunli Moreno-Grau, Sonia Hershman, Steven G. Dalton, Karen P. Zhen, Jimmy Kamm, Jack Bhatt, Karan D. Isakova, Alina Morri, Maurizio Ranganath, Thanmayi Blish, Catherine A. Rogers, Angela J. Nadeau, Kari Yang, Samuel Blomkalns, Andra O’Hara, Ruth Neff, Norma F. DeBoever, Christopher Szalma, Sándor Wheeler, Matthew T. Gates, Christian M. Farh, Kyle Schroth, Gary P. Febbo, Phil deSouza, Francis Cornejo, Omar E. Fernandez-Vina, Marcelo Kistler, Amy Palacios, Julia A. Pinsky, Benjamin A. Bustamante, Carlos D. Rivas, Manuel A. Ashley, Euan A. |
author_sort | Parikh, Victoria N. |
collection | PubMed |
description | The SARS-CoV-2 pandemic has differentially impacted populations across race and ethnicity. A multi-omic approach represents a powerful tool to examine risk across multi-ancestry genomes. We leverage a pandemic tracking strategy in which we sequence viral and host genomes and transcriptomes from nasopharyngeal swabs of 1049 individuals (736 SARS-CoV-2 positive and 313 SARS-CoV-2 negative) and integrate them with digital phenotypes from electronic health records from a diverse catchment area in Northern California. Genome-wide association disaggregated by admixture mapping reveals novel COVID-19-severity-associated regions containing previously reported markers of neurologic, pulmonary and viral disease susceptibility. Phylodynamic tracking of consensus viral genomes reveals no association with disease severity or inferred ancestry. Summary data from multiomic investigation reveals metagenomic and HLA associations with severe COVID-19. The wealth of data available from residual nasopharyngeal swabs in combination with clinical data abstracted automatically at scale highlights a powerful strategy for pandemic tracking, and reveals distinct epidemiologic, genetic, and biological associations for those at the highest risk. |
format | Online Article Text |
id | pubmed-9426371 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Nature Publishing Group UK |
record_format | MEDLINE/PubMed |
spelling | pubmed-94263712022-08-30 Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy Parikh, Victoria N. Ioannidis, Alexander G. Jimenez-Morales, David Gorzynski, John E. De Jong, Hannah N. Liu, Xiran Roque, Jonasel Cepeda-Espinoza, Victoria P. Osoegawa, Kazutoyo Hughes, Chris Sutton, Shirley C. Youlton, Nathan Joshi, Ruchi Amar, David Tanigawa, Yosuke Russo, Douglas Wong, Justin Lauzon, Jessie T. Edelson, Jacob Mas Montserrat, Daniel Kwon, Yongchan Rubinacci, Simone Delaneau, Olivier Cappello, Lorenzo Kim, Jaehee Shoura, Massa J. Raja, Archana N. Watson, Nathaniel Hammond, Nathan Spiteri, Elizabeth Mallempati, Kalyan C. Montero-Martín, Gonzalo Christle, Jeffrey Kim, Jennifer Kirillova, Anna Seo, Kinya Huang, Yong Zhao, Chunli Moreno-Grau, Sonia Hershman, Steven G. Dalton, Karen P. Zhen, Jimmy Kamm, Jack Bhatt, Karan D. Isakova, Alina Morri, Maurizio Ranganath, Thanmayi Blish, Catherine A. Rogers, Angela J. Nadeau, Kari Yang, Samuel Blomkalns, Andra O’Hara, Ruth Neff, Norma F. DeBoever, Christopher Szalma, Sándor Wheeler, Matthew T. Gates, Christian M. Farh, Kyle Schroth, Gary P. Febbo, Phil deSouza, Francis Cornejo, Omar E. Fernandez-Vina, Marcelo Kistler, Amy Palacios, Julia A. Pinsky, Benjamin A. Bustamante, Carlos D. Rivas, Manuel A. Ashley, Euan A. Nat Commun Article The SARS-CoV-2 pandemic has differentially impacted populations across race and ethnicity. A multi-omic approach represents a powerful tool to examine risk across multi-ancestry genomes. We leverage a pandemic tracking strategy in which we sequence viral and host genomes and transcriptomes from nasopharyngeal swabs of 1049 individuals (736 SARS-CoV-2 positive and 313 SARS-CoV-2 negative) and integrate them with digital phenotypes from electronic health records from a diverse catchment area in Northern California. Genome-wide association disaggregated by admixture mapping reveals novel COVID-19-severity-associated regions containing previously reported markers of neurologic, pulmonary and viral disease susceptibility. Phylodynamic tracking of consensus viral genomes reveals no association with disease severity or inferred ancestry. Summary data from multiomic investigation reveals metagenomic and HLA associations with severe COVID-19. The wealth of data available from residual nasopharyngeal swabs in combination with clinical data abstracted automatically at scale highlights a powerful strategy for pandemic tracking, and reveals distinct epidemiologic, genetic, and biological associations for those at the highest risk. Nature Publishing Group UK 2022-08-30 /pmc/articles/PMC9426371/ /pubmed/36042219 http://dx.doi.org/10.1038/s41467-022-32397-8 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) . |
spellingShingle | Article Parikh, Victoria N. Ioannidis, Alexander G. Jimenez-Morales, David Gorzynski, John E. De Jong, Hannah N. Liu, Xiran Roque, Jonasel Cepeda-Espinoza, Victoria P. Osoegawa, Kazutoyo Hughes, Chris Sutton, Shirley C. Youlton, Nathan Joshi, Ruchi Amar, David Tanigawa, Yosuke Russo, Douglas Wong, Justin Lauzon, Jessie T. Edelson, Jacob Mas Montserrat, Daniel Kwon, Yongchan Rubinacci, Simone Delaneau, Olivier Cappello, Lorenzo Kim, Jaehee Shoura, Massa J. Raja, Archana N. Watson, Nathaniel Hammond, Nathan Spiteri, Elizabeth Mallempati, Kalyan C. Montero-Martín, Gonzalo Christle, Jeffrey Kim, Jennifer Kirillova, Anna Seo, Kinya Huang, Yong Zhao, Chunli Moreno-Grau, Sonia Hershman, Steven G. Dalton, Karen P. Zhen, Jimmy Kamm, Jack Bhatt, Karan D. Isakova, Alina Morri, Maurizio Ranganath, Thanmayi Blish, Catherine A. Rogers, Angela J. Nadeau, Kari Yang, Samuel Blomkalns, Andra O’Hara, Ruth Neff, Norma F. DeBoever, Christopher Szalma, Sándor Wheeler, Matthew T. Gates, Christian M. Farh, Kyle Schroth, Gary P. Febbo, Phil deSouza, Francis Cornejo, Omar E. Fernandez-Vina, Marcelo Kistler, Amy Palacios, Julia A. Pinsky, Benjamin A. Bustamante, Carlos D. Rivas, Manuel A. Ashley, Euan A. Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title | Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title_full | Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title_fullStr | Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title_full_unstemmed | Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title_short | Deconvoluting complex correlates of COVID-19 severity with a multi-omic pandemic tracking strategy |
title_sort | deconvoluting complex correlates of covid-19 severity with a multi-omic pandemic tracking strategy |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9426371/ https://www.ncbi.nlm.nih.gov/pubmed/36042219 http://dx.doi.org/10.1038/s41467-022-32397-8 |
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