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Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor

Pathogenesis of odontogenic tumors is not well known. It is important to identify genetic deregulations and molecular alterations. This study aimed to investigate, through bioinformatic analysis, the possible genes involved in the pathogenesis of ameloblastoma (AM) and keratocystic odontogenic tumor...

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Autores principales: Santos, Eliane Macedo Sobrinho, Santos, Hércules Otacílio, dos Santos Dias, Ivoneth, Santos, Sérgio Henrique, Batista de Paula, Alfredo Maurício, Feltenberger, John David, Sena Guimarães, André Luiz, Farias, Lucyana Conceição
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Babol University of Medical Sciences 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5353982/
https://www.ncbi.nlm.nih.gov/pubmed/28357197
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author Santos, Eliane Macedo Sobrinho
Santos, Hércules Otacílio
dos Santos Dias, Ivoneth
Santos, Sérgio Henrique
Batista de Paula, Alfredo Maurício
Feltenberger, John David
Sena Guimarães, André Luiz
Farias, Lucyana Conceição
author_facet Santos, Eliane Macedo Sobrinho
Santos, Hércules Otacílio
dos Santos Dias, Ivoneth
Santos, Sérgio Henrique
Batista de Paula, Alfredo Maurício
Feltenberger, John David
Sena Guimarães, André Luiz
Farias, Lucyana Conceição
author_sort Santos, Eliane Macedo Sobrinho
collection PubMed
description Pathogenesis of odontogenic tumors is not well known. It is important to identify genetic deregulations and molecular alterations. This study aimed to investigate, through bioinformatic analysis, the possible genes involved in the pathogenesis of ameloblastoma (AM) and keratocystic odontogenic tumor (KCOT). Genes involved in the pathogenesis of AM and KCOT were identified in GeneCards. Gene list was expanded, and the gene interactions network was mapped using the STRING software. “Weighted number of links” (WNL) was calculated to identify “leader genes” (highest WNL). Genes were ranked by K-means method and Kruskal-Wallis test was used (P<0.001). Total interactions score (TIS) was also calculated using all interaction data generated by the STRING database, in order to achieve global connectivity for each gene. The topological and ontological analyses were performed using Cytoscape software and BinGO plugin. Literature review data was used to corroborate the bioinformatics data. CDK1 was identified as leader gene for AM. In KCOT group, results show PCNA and TP53. Both tumors exhibit a power law behavior. Our topological analysis suggested leader genes possibly important in the pathogenesis of AM and KCOT, by clustering coefficient calculated for both odontogenic tumors (0.028 for AM, zero for KCOT). The results obtained in the scatter diagram suggest an important relationship of these genes with the molecular processes involved in AM and KCOT. Ontological analysis for both AM and KCOT demonstrated different mechanisms. Bioinformatics analyzes were confirmed through literature review. These results may suggest the involvement of promising genes for a better understanding of the pathogenesis of AM and KCOT.
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spelling pubmed-53539822017-03-29 Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor Santos, Eliane Macedo Sobrinho Santos, Hércules Otacílio dos Santos Dias, Ivoneth Santos, Sérgio Henrique Batista de Paula, Alfredo Maurício Feltenberger, John David Sena Guimarães, André Luiz Farias, Lucyana Conceição Int J Mol Cell Med Original Article Pathogenesis of odontogenic tumors is not well known. It is important to identify genetic deregulations and molecular alterations. This study aimed to investigate, through bioinformatic analysis, the possible genes involved in the pathogenesis of ameloblastoma (AM) and keratocystic odontogenic tumor (KCOT). Genes involved in the pathogenesis of AM and KCOT were identified in GeneCards. Gene list was expanded, and the gene interactions network was mapped using the STRING software. “Weighted number of links” (WNL) was calculated to identify “leader genes” (highest WNL). Genes were ranked by K-means method and Kruskal-Wallis test was used (P<0.001). Total interactions score (TIS) was also calculated using all interaction data generated by the STRING database, in order to achieve global connectivity for each gene. The topological and ontological analyses were performed using Cytoscape software and BinGO plugin. Literature review data was used to corroborate the bioinformatics data. CDK1 was identified as leader gene for AM. In KCOT group, results show PCNA and TP53. Both tumors exhibit a power law behavior. Our topological analysis suggested leader genes possibly important in the pathogenesis of AM and KCOT, by clustering coefficient calculated for both odontogenic tumors (0.028 for AM, zero for KCOT). The results obtained in the scatter diagram suggest an important relationship of these genes with the molecular processes involved in AM and KCOT. Ontological analysis for both AM and KCOT demonstrated different mechanisms. Bioinformatics analyzes were confirmed through literature review. These results may suggest the involvement of promising genes for a better understanding of the pathogenesis of AM and KCOT. Babol University of Medical Sciences 2016 2016-12-06 /pmc/articles/PMC5353982/ /pubmed/28357197 Text en This is an Open Access article distributed under the terms of the Creative Commons Attribution License, (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Santos, Eliane Macedo Sobrinho
Santos, Hércules Otacílio
dos Santos Dias, Ivoneth
Santos, Sérgio Henrique
Batista de Paula, Alfredo Maurício
Feltenberger, John David
Sena Guimarães, André Luiz
Farias, Lucyana Conceição
Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title_full Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title_fullStr Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title_full_unstemmed Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title_short Bioinformatics Analysis Reveals Genes Involved in the Pathogenesis of Ameloblastoma and Keratocystic Odontogenic Tumor
title_sort bioinformatics analysis reveals genes involved in the pathogenesis of ameloblastoma and keratocystic odontogenic tumor
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5353982/
https://www.ncbi.nlm.nih.gov/pubmed/28357197
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