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A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study

A chronic inflammatory state to a large extent explains sickle cell disease (SCD) pathophysiology. Nonetheless, the principal dysregulated factors affecting this major pathway and their mechanisms of action still have to be fully identified and elucidated. Integrating gene expression and genome-wide...

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Autores principales: Ben Hamda, Cherif, Sangeda, Raphael, Mwita, Liberata, Meintjes, Ayton, Nkya, Siana, Panji, Sumir, Mulder, Nicola, Guizani-Tabbane, Lamia, Benkahla, Alia, Makani, Julie, Ghedira, Kais
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6034806/
https://www.ncbi.nlm.nih.gov/pubmed/29979707
http://dx.doi.org/10.1371/journal.pone.0199461
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author Ben Hamda, Cherif
Sangeda, Raphael
Mwita, Liberata
Meintjes, Ayton
Nkya, Siana
Panji, Sumir
Mulder, Nicola
Guizani-Tabbane, Lamia
Benkahla, Alia
Makani, Julie
Ghedira, Kais
author_facet Ben Hamda, Cherif
Sangeda, Raphael
Mwita, Liberata
Meintjes, Ayton
Nkya, Siana
Panji, Sumir
Mulder, Nicola
Guizani-Tabbane, Lamia
Benkahla, Alia
Makani, Julie
Ghedira, Kais
author_sort Ben Hamda, Cherif
collection PubMed
description A chronic inflammatory state to a large extent explains sickle cell disease (SCD) pathophysiology. Nonetheless, the principal dysregulated factors affecting this major pathway and their mechanisms of action still have to be fully identified and elucidated. Integrating gene expression and genome-wide association study (GWAS) data analysis represents a novel approach to refining the identification of key mediators and functions in complex diseases. Here, we performed gene expression meta-analysis of five independent publicly available microarray datasets related to homozygous SS patients with SCD to identify a consensus SCD transcriptomic profile. The meta-analysis conducted using the MetaDE R package based on combining p values (maxP approach) identified 335 differentially expressed genes (DEGs; 224 upregulated and 111 downregulated). Functional gene set enrichment revealed the importance of several metabolic pathways, of innate immune responses, erythrocyte development, and hemostasis pathways. Advanced analyses of GWAS data generated within the framework of this study by means of the atSNP R package and SIFT tool identified 60 regulatory single-nucleotide polymorphisms (rSNPs) occurring in the promoter of 20 DEGs and a deleterious SNP, affecting CAMKK2 protein function. This novel database of candidate genes, transcription factors, and rSNPs associated with SCD provides new markers that may help to identify new therapeutic targets.
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spelling pubmed-60348062018-07-19 A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study Ben Hamda, Cherif Sangeda, Raphael Mwita, Liberata Meintjes, Ayton Nkya, Siana Panji, Sumir Mulder, Nicola Guizani-Tabbane, Lamia Benkahla, Alia Makani, Julie Ghedira, Kais PLoS One Research Article A chronic inflammatory state to a large extent explains sickle cell disease (SCD) pathophysiology. Nonetheless, the principal dysregulated factors affecting this major pathway and their mechanisms of action still have to be fully identified and elucidated. Integrating gene expression and genome-wide association study (GWAS) data analysis represents a novel approach to refining the identification of key mediators and functions in complex diseases. Here, we performed gene expression meta-analysis of five independent publicly available microarray datasets related to homozygous SS patients with SCD to identify a consensus SCD transcriptomic profile. The meta-analysis conducted using the MetaDE R package based on combining p values (maxP approach) identified 335 differentially expressed genes (DEGs; 224 upregulated and 111 downregulated). Functional gene set enrichment revealed the importance of several metabolic pathways, of innate immune responses, erythrocyte development, and hemostasis pathways. Advanced analyses of GWAS data generated within the framework of this study by means of the atSNP R package and SIFT tool identified 60 regulatory single-nucleotide polymorphisms (rSNPs) occurring in the promoter of 20 DEGs and a deleterious SNP, affecting CAMKK2 protein function. This novel database of candidate genes, transcription factors, and rSNPs associated with SCD provides new markers that may help to identify new therapeutic targets. Public Library of Science 2018-07-06 /pmc/articles/PMC6034806/ /pubmed/29979707 http://dx.doi.org/10.1371/journal.pone.0199461 Text en © 2018 Ben Hamda 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
Ben Hamda, Cherif
Sangeda, Raphael
Mwita, Liberata
Meintjes, Ayton
Nkya, Siana
Panji, Sumir
Mulder, Nicola
Guizani-Tabbane, Lamia
Benkahla, Alia
Makani, Julie
Ghedira, Kais
A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title_full A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title_fullStr A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title_full_unstemmed A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title_short A common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
title_sort common molecular signature of patients with sickle cell disease revealed by microarray meta-analysis and a genome-wide association study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6034806/
https://www.ncbi.nlm.nih.gov/pubmed/29979707
http://dx.doi.org/10.1371/journal.pone.0199461
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