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A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness

PURPOSE: Cancer results from complex interactions of multiple variables at the biologic, individual, and social levels. Compared to other levels, social effects that occur geospatially in neighborhoods are not as well-studied, and empiric methods to assess these effects are limited. We propose a nov...

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Autores principales: Lynch, Shannon M., Mitra, Nandita, Ross, Michelle, Newcomb, Craig, Dailey, Karl, Jackson, Tara, Zeigler-Johnson, Charnita M., Riethman, Harold, Branas, Charles C., Rebbeck, Timothy R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5367705/
https://www.ncbi.nlm.nih.gov/pubmed/28346484
http://dx.doi.org/10.1371/journal.pone.0174548
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author Lynch, Shannon M.
Mitra, Nandita
Ross, Michelle
Newcomb, Craig
Dailey, Karl
Jackson, Tara
Zeigler-Johnson, Charnita M.
Riethman, Harold
Branas, Charles C.
Rebbeck, Timothy R.
author_facet Lynch, Shannon M.
Mitra, Nandita
Ross, Michelle
Newcomb, Craig
Dailey, Karl
Jackson, Tara
Zeigler-Johnson, Charnita M.
Riethman, Harold
Branas, Charles C.
Rebbeck, Timothy R.
author_sort Lynch, Shannon M.
collection PubMed
description PURPOSE: Cancer results from complex interactions of multiple variables at the biologic, individual, and social levels. Compared to other levels, social effects that occur geospatially in neighborhoods are not as well-studied, and empiric methods to assess these effects are limited. We propose a novel Neighborhood-Wide Association Study(NWAS), analogous to genome-wide association studies(GWAS), that utilizes high-dimensional computing approaches from biology to comprehensively and empirically identify neighborhood factors associated with disease. METHODS: Pennsylvania Cancer Registry data were linked to U.S. Census data. In a successively more stringent multiphase approach, we evaluated the association between neighborhood (n = 14,663 census variables) and prostate cancer aggressiveness(PCA) with n = 6,416 aggressive (Stage≥3/Gleason grade≥7 cases) vs. n = 70,670 non-aggressive (Stage<3/Gleason grade<7) cases in White men. Analyses accounted for age, year of diagnosis, spatial correlation, and multiple-testing. We used generalized estimating equations in Phase 1 and Bayesian mixed effects models in Phase 2 to calculate odds ratios(OR) and confidence/credible intervals(CI). In Phase 3, principal components analysis grouped correlated variables. RESULTS: We identified 17 new neighborhood variables associated with PCA. These variables represented income, housing, employment, immigration, access to care, and social support. The top hits or most significant variables related to transportation (OR = 1.05;CI = 1.001–1.09) and poverty (OR = 1.07;CI = 1.01–1.12). CONCLUSIONS: This study introduces the application of high-dimensional, computational methods to large-scale, publically-available geospatial data. Although NWAS requires further testing, it is hypothesis-generating and addresses gaps in geospatial analysis related to empiric assessment. Further, NWAS could have broad implications for many diseases and future precision medicine studies focused on multilevel risk factors of disease.
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spelling pubmed-53677052017-04-06 A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness Lynch, Shannon M. Mitra, Nandita Ross, Michelle Newcomb, Craig Dailey, Karl Jackson, Tara Zeigler-Johnson, Charnita M. Riethman, Harold Branas, Charles C. Rebbeck, Timothy R. PLoS One Research Article PURPOSE: Cancer results from complex interactions of multiple variables at the biologic, individual, and social levels. Compared to other levels, social effects that occur geospatially in neighborhoods are not as well-studied, and empiric methods to assess these effects are limited. We propose a novel Neighborhood-Wide Association Study(NWAS), analogous to genome-wide association studies(GWAS), that utilizes high-dimensional computing approaches from biology to comprehensively and empirically identify neighborhood factors associated with disease. METHODS: Pennsylvania Cancer Registry data were linked to U.S. Census data. In a successively more stringent multiphase approach, we evaluated the association between neighborhood (n = 14,663 census variables) and prostate cancer aggressiveness(PCA) with n = 6,416 aggressive (Stage≥3/Gleason grade≥7 cases) vs. n = 70,670 non-aggressive (Stage<3/Gleason grade<7) cases in White men. Analyses accounted for age, year of diagnosis, spatial correlation, and multiple-testing. We used generalized estimating equations in Phase 1 and Bayesian mixed effects models in Phase 2 to calculate odds ratios(OR) and confidence/credible intervals(CI). In Phase 3, principal components analysis grouped correlated variables. RESULTS: We identified 17 new neighborhood variables associated with PCA. These variables represented income, housing, employment, immigration, access to care, and social support. The top hits or most significant variables related to transportation (OR = 1.05;CI = 1.001–1.09) and poverty (OR = 1.07;CI = 1.01–1.12). CONCLUSIONS: This study introduces the application of high-dimensional, computational methods to large-scale, publically-available geospatial data. Although NWAS requires further testing, it is hypothesis-generating and addresses gaps in geospatial analysis related to empiric assessment. Further, NWAS could have broad implications for many diseases and future precision medicine studies focused on multilevel risk factors of disease. Public Library of Science 2017-03-27 /pmc/articles/PMC5367705/ /pubmed/28346484 http://dx.doi.org/10.1371/journal.pone.0174548 Text en © 2017 Lynch et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Lynch, Shannon M.
Mitra, Nandita
Ross, Michelle
Newcomb, Craig
Dailey, Karl
Jackson, Tara
Zeigler-Johnson, Charnita M.
Riethman, Harold
Branas, Charles C.
Rebbeck, Timothy R.
A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title_full A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title_fullStr A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title_full_unstemmed A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title_short A Neighborhood-Wide Association Study (NWAS): Example of prostate cancer aggressiveness
title_sort neighborhood-wide association study (nwas): example of prostate cancer aggressiveness
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5367705/
https://www.ncbi.nlm.nih.gov/pubmed/28346484
http://dx.doi.org/10.1371/journal.pone.0174548
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