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Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database

OBJECTIVE: OsteoDIP aims to collect and provide, in a simple searchable format, curated high throughput RNA expression data related to osteoarthritis. DESIGN: Datasets are collected annually by searching “osteoarthritis gene expression profile” in PubMed. Only publications containing patient data an...

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Autores principales: Pastrello, Chiara, Abovsky, Mark, Lu, Richard, Ahmed, Zuhaib, Kotlyar, Max, Veillette, Christian, Jurisica, Igor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9718079/
https://www.ncbi.nlm.nih.gov/pubmed/36474475
http://dx.doi.org/10.1016/j.ocarto.2022.100237
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author Pastrello, Chiara
Abovsky, Mark
Lu, Richard
Ahmed, Zuhaib
Kotlyar, Max
Veillette, Christian
Jurisica, Igor
author_facet Pastrello, Chiara
Abovsky, Mark
Lu, Richard
Ahmed, Zuhaib
Kotlyar, Max
Veillette, Christian
Jurisica, Igor
author_sort Pastrello, Chiara
collection PubMed
description OBJECTIVE: OsteoDIP aims to collect and provide, in a simple searchable format, curated high throughput RNA expression data related to osteoarthritis. DESIGN: Datasets are collected annually by searching “osteoarthritis gene expression profile” in PubMed. Only publications containing patient data and a list of differentially expressed genes are considered. From 2020, the search has expanded to include non-coding RNAs. Moreover, a search in GEO for “osteoarthritis” datasets has been performed using ‘Homo sapiens' and ‘Expression profiling by array’ filters. Annotations for genes linked to osteoarthritis have been downloaded from external databases. RESULTS: Out of 1204 curated papers, 63 have been included in OsteoDIP, while GEO curation led to the collection of 28 datasets. Literature data provides a snapshot of osteoarthritis research derived from 1924 human samples, while GEO datasets provide expression for additional 1012 patients. Similar to osteoarthritis literature, OsteoDIP data has been created mostly from studies focused on knee, and the tissue most frequently investigated is cartilage. GEO data sets were fully integrated with associated clinical data. We showcase examples and use cases applicable for translational research in osteoarthritis. CONCLUSIONS: OsteoDIP is publicly available at http://ophid.utoronto.ca/OsteoDIP. The website is easy to navigate and all the data is available for download. Data consolidation allows researchers to perform comparisons across studies and to combine data from different datasets. Our examples show how OsteoDIP can integrate with and improve osteoarthritis researchers’ pipelines.
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spelling pubmed-97180792022-12-05 Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database Pastrello, Chiara Abovsky, Mark Lu, Richard Ahmed, Zuhaib Kotlyar, Max Veillette, Christian Jurisica, Igor Osteoarthr Cartil Open Virtual Special Issue on: Omics Phenotyping; Edited by Mohit Kapoor, AliMobasheri, Shabana Amanda Ali and Annemarie Lang OBJECTIVE: OsteoDIP aims to collect and provide, in a simple searchable format, curated high throughput RNA expression data related to osteoarthritis. DESIGN: Datasets are collected annually by searching “osteoarthritis gene expression profile” in PubMed. Only publications containing patient data and a list of differentially expressed genes are considered. From 2020, the search has expanded to include non-coding RNAs. Moreover, a search in GEO for “osteoarthritis” datasets has been performed using ‘Homo sapiens' and ‘Expression profiling by array’ filters. Annotations for genes linked to osteoarthritis have been downloaded from external databases. RESULTS: Out of 1204 curated papers, 63 have been included in OsteoDIP, while GEO curation led to the collection of 28 datasets. Literature data provides a snapshot of osteoarthritis research derived from 1924 human samples, while GEO datasets provide expression for additional 1012 patients. Similar to osteoarthritis literature, OsteoDIP data has been created mostly from studies focused on knee, and the tissue most frequently investigated is cartilage. GEO data sets were fully integrated with associated clinical data. We showcase examples and use cases applicable for translational research in osteoarthritis. CONCLUSIONS: OsteoDIP is publicly available at http://ophid.utoronto.ca/OsteoDIP. The website is easy to navigate and all the data is available for download. Data consolidation allows researchers to perform comparisons across studies and to combine data from different datasets. Our examples show how OsteoDIP can integrate with and improve osteoarthritis researchers’ pipelines. Elsevier 2022-01-27 /pmc/articles/PMC9718079/ /pubmed/36474475 http://dx.doi.org/10.1016/j.ocarto.2022.100237 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Virtual Special Issue on: Omics Phenotyping; Edited by Mohit Kapoor, AliMobasheri, Shabana Amanda Ali and Annemarie Lang
Pastrello, Chiara
Abovsky, Mark
Lu, Richard
Ahmed, Zuhaib
Kotlyar, Max
Veillette, Christian
Jurisica, Igor
Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title_full Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title_fullStr Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title_full_unstemmed Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title_short Osteoarthritis Data Integration Portal (OsteoDIP): A web-based gene and non-coding RNA expression database
title_sort osteoarthritis data integration portal (osteodip): a web-based gene and non-coding rna expression database
topic Virtual Special Issue on: Omics Phenotyping; Edited by Mohit Kapoor, AliMobasheri, Shabana Amanda Ali and Annemarie Lang
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9718079/
https://www.ncbi.nlm.nih.gov/pubmed/36474475
http://dx.doi.org/10.1016/j.ocarto.2022.100237
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