Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.

Although diabetes mellitus (DM) causes cardiomyopathy and exacerbates heart failure, the underlying molecular mechanisms for diabetic cardiomyopathy/heart failure are poorly understood. Insulin2 mutant (Ins2+/-) Akita is a mouse model of T1DM, which manifests cardiac dysfunction. However, molecular...

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Main Authors: Varun Kesherwani, Hamid R Shahshahan, Paras K Mishra
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5570368?pdf=render
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spelling doaj-fc3bc7b689e84a0db9671c4979d766542020-11-25T01:46:08ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018282810.1371/journal.pone.0182828Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.Varun KesherwaniHamid R ShahshahanParas K MishraAlthough diabetes mellitus (DM) causes cardiomyopathy and exacerbates heart failure, the underlying molecular mechanisms for diabetic cardiomyopathy/heart failure are poorly understood. Insulin2 mutant (Ins2+/-) Akita is a mouse model of T1DM, which manifests cardiac dysfunction. However, molecular changes at cardiac transcriptome level that lead to cardiomyopathy remain unclear. To understand the molecular changes in the heart of diabetic Akita mice, we profiled cardiac transcriptome of Ins2+/- Akita and Ins2+/+ control mice using next generation sequencing (NGS) and microarray, and determined the implications of differentially expressed genes on various heart failure signaling pathways using Ingenuity pathway (IPA) analysis. First, we validated hyperglycemia, increased cardiac fibrosis, and cardiac dysfunction in twelve-week male diabetic Akita. Then, we analyzed the transcriptome levels in the heart. NGS analyses on Akita heart revealed 137 differentially expressed transcripts, where Bone Morphogenic Protein-10 (BMP10) was the most upregulated and hairy and enhancer of split-related (HELT) was the most downregulated gene. Moreover, twelve long non-coding RNAs (lncRNAs) were upregulated. The microarray analyses on Akita heart showed 351 differentially expressed transcripts, where vomeronasal-1 receptor-180 (Vmn1r180) was the most upregulated and WD Repeat Domain 83 Opposite Strand (WDR83OS) was the most downregulated gene. Further, miR-101c and H19 lncRNA were upregulated but Neat1 lncRNA was downregulated in Akita heart. Eleven common genes were upregulated in Akita heart in both NGS and microarray analyses. IPA analyses revealed the role of these differentially expressed genes in key signaling pathways involved in diabetic cardiomyopathy. Our results provide a platform to initiate focused future studies by targeting these genes and/or non-coding RNAs, which are differentially expressed in Akita hearts and are involved in diabetic cardiomyopathy.http://europepmc.org/articles/PMC5570368?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Varun Kesherwani
Hamid R Shahshahan
Paras K Mishra
spellingShingle Varun Kesherwani
Hamid R Shahshahan
Paras K Mishra
Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
PLoS ONE
author_facet Varun Kesherwani
Hamid R Shahshahan
Paras K Mishra
author_sort Varun Kesherwani
title Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
title_short Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
title_full Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
title_fullStr Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
title_full_unstemmed Cardiac transcriptome profiling of diabetic Akita mice using microarray and next generation sequencing.
title_sort cardiac transcriptome profiling of diabetic akita mice using microarray and next generation sequencing.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Although diabetes mellitus (DM) causes cardiomyopathy and exacerbates heart failure, the underlying molecular mechanisms for diabetic cardiomyopathy/heart failure are poorly understood. Insulin2 mutant (Ins2+/-) Akita is a mouse model of T1DM, which manifests cardiac dysfunction. However, molecular changes at cardiac transcriptome level that lead to cardiomyopathy remain unclear. To understand the molecular changes in the heart of diabetic Akita mice, we profiled cardiac transcriptome of Ins2+/- Akita and Ins2+/+ control mice using next generation sequencing (NGS) and microarray, and determined the implications of differentially expressed genes on various heart failure signaling pathways using Ingenuity pathway (IPA) analysis. First, we validated hyperglycemia, increased cardiac fibrosis, and cardiac dysfunction in twelve-week male diabetic Akita. Then, we analyzed the transcriptome levels in the heart. NGS analyses on Akita heart revealed 137 differentially expressed transcripts, where Bone Morphogenic Protein-10 (BMP10) was the most upregulated and hairy and enhancer of split-related (HELT) was the most downregulated gene. Moreover, twelve long non-coding RNAs (lncRNAs) were upregulated. The microarray analyses on Akita heart showed 351 differentially expressed transcripts, where vomeronasal-1 receptor-180 (Vmn1r180) was the most upregulated and WD Repeat Domain 83 Opposite Strand (WDR83OS) was the most downregulated gene. Further, miR-101c and H19 lncRNA were upregulated but Neat1 lncRNA was downregulated in Akita heart. Eleven common genes were upregulated in Akita heart in both NGS and microarray analyses. IPA analyses revealed the role of these differentially expressed genes in key signaling pathways involved in diabetic cardiomyopathy. Our results provide a platform to initiate focused future studies by targeting these genes and/or non-coding RNAs, which are differentially expressed in Akita hearts and are involved in diabetic cardiomyopathy.
url http://europepmc.org/articles/PMC5570368?pdf=render
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AT hamidrshahshahan cardiactranscriptomeprofilingofdiabeticakitamiceusingmicroarrayandnextgenerationsequencing
AT paraskmishra cardiactranscriptomeprofilingofdiabeticakitamiceusingmicroarrayandnextgenerationsequencing
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