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A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks

It is well established that the gene expression patterns are substantially altered in cardiac hypertrophy and heart failure, however, less is known about the reasons behind such global differences. MicroRNAs (miRNAs) are short non-coding RNAs that can target multiple molecules to regulate wide array...

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Autores principales: Naga Prasad, Sathyamangla V., Gupta, Manveen K., Duan, Zhong-Hui, Surampudi, Venkata Suresh K., Liu, Chang-Gong, Kotwal, Ashwin, Moravec, Christine S., Starling, Randall C., Perez, Dianne M., Sen, Subha, Wu, Qingyu, Plow, Edward F., Karnik, Sadashiva
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5362047/
https://www.ncbi.nlm.nih.gov/pubmed/28329018
http://dx.doi.org/10.1371/journal.pone.0170456
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author Naga Prasad, Sathyamangla V.
Gupta, Manveen K.
Duan, Zhong-Hui
Surampudi, Venkata Suresh K.
Liu, Chang-Gong
Kotwal, Ashwin
Moravec, Christine S.
Starling, Randall C.
Perez, Dianne M.
Sen, Subha
Wu, Qingyu
Plow, Edward F.
Karnik, Sadashiva
author_facet Naga Prasad, Sathyamangla V.
Gupta, Manveen K.
Duan, Zhong-Hui
Surampudi, Venkata Suresh K.
Liu, Chang-Gong
Kotwal, Ashwin
Moravec, Christine S.
Starling, Randall C.
Perez, Dianne M.
Sen, Subha
Wu, Qingyu
Plow, Edward F.
Karnik, Sadashiva
author_sort Naga Prasad, Sathyamangla V.
collection PubMed
description It is well established that the gene expression patterns are substantially altered in cardiac hypertrophy and heart failure, however, less is known about the reasons behind such global differences. MicroRNAs (miRNAs) are short non-coding RNAs that can target multiple molecules to regulate wide array of proteins in diverse pathways. The goal of the study was to profile alterations in miRNA expression using end-stage human heart failure samples with an aim to build signaling network pathways using predicted targets for the altered miRNA and to determine nodal molecules regulating individual networks. Profiling of miRNAs using custom designed microarray and validation with an independent set of samples identified eight miRNAs that are altered in human heart failure including one novel miRNA yet to be implicated in cardiac pathology. To gain an unbiased perspective on global regulation by top eight altered miRNAs, functional relationship of predicted targets for these eight miRNAs were examined by network analysis. Ingenuity Pathways Analysis network algorithm was used to build global signaling networks based on the targets of altered miRNAs which allowed us to identify participating networks and nodal molecules that could contribute to cardiac pathophysiology. Majority of the nodal molecules identified in our analysis are targets of altered miRNAs and known regulators of cardiovascular signaling. Cardio-genomics heart failure gene expression public data base was used to analyze trends in expression pattern for target nodal molecules and indeed changes in expression of nodal molecules inversely correlated to miRNA alterations. We have used NF kappa B network as an example to show that targeting other molecules in the network could alter the nodal NF kappa B despite not being a miRNA target suggesting an integrated network response. Thus, using network analysis we show that altering key functional target proteins may regulate expression of the myriad signaling pathways underlying the cardiac pathology.
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spelling pubmed-53620472017-04-06 A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks Naga Prasad, Sathyamangla V. Gupta, Manveen K. Duan, Zhong-Hui Surampudi, Venkata Suresh K. Liu, Chang-Gong Kotwal, Ashwin Moravec, Christine S. Starling, Randall C. Perez, Dianne M. Sen, Subha Wu, Qingyu Plow, Edward F. Karnik, Sadashiva PLoS One Research Article It is well established that the gene expression patterns are substantially altered in cardiac hypertrophy and heart failure, however, less is known about the reasons behind such global differences. MicroRNAs (miRNAs) are short non-coding RNAs that can target multiple molecules to regulate wide array of proteins in diverse pathways. The goal of the study was to profile alterations in miRNA expression using end-stage human heart failure samples with an aim to build signaling network pathways using predicted targets for the altered miRNA and to determine nodal molecules regulating individual networks. Profiling of miRNAs using custom designed microarray and validation with an independent set of samples identified eight miRNAs that are altered in human heart failure including one novel miRNA yet to be implicated in cardiac pathology. To gain an unbiased perspective on global regulation by top eight altered miRNAs, functional relationship of predicted targets for these eight miRNAs were examined by network analysis. Ingenuity Pathways Analysis network algorithm was used to build global signaling networks based on the targets of altered miRNAs which allowed us to identify participating networks and nodal molecules that could contribute to cardiac pathophysiology. Majority of the nodal molecules identified in our analysis are targets of altered miRNAs and known regulators of cardiovascular signaling. Cardio-genomics heart failure gene expression public data base was used to analyze trends in expression pattern for target nodal molecules and indeed changes in expression of nodal molecules inversely correlated to miRNA alterations. We have used NF kappa B network as an example to show that targeting other molecules in the network could alter the nodal NF kappa B despite not being a miRNA target suggesting an integrated network response. Thus, using network analysis we show that altering key functional target proteins may regulate expression of the myriad signaling pathways underlying the cardiac pathology. Public Library of Science 2017-03-22 /pmc/articles/PMC5362047/ /pubmed/28329018 http://dx.doi.org/10.1371/journal.pone.0170456 Text en © 2017 Naga Prasad 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
Naga Prasad, Sathyamangla V.
Gupta, Manveen K.
Duan, Zhong-Hui
Surampudi, Venkata Suresh K.
Liu, Chang-Gong
Kotwal, Ashwin
Moravec, Christine S.
Starling, Randall C.
Perez, Dianne M.
Sen, Subha
Wu, Qingyu
Plow, Edward F.
Karnik, Sadashiva
A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title_full A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title_fullStr A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title_full_unstemmed A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title_short A unique microRNA profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
title_sort unique microrna profile in end-stage heart failure indicates alterations in specific cardiovascular signaling networks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5362047/
https://www.ncbi.nlm.nih.gov/pubmed/28329018
http://dx.doi.org/10.1371/journal.pone.0170456
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