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Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita

Introduction: Brain being the master regulator of the physiology of animal, the current study focuses on the gene expression pattern of the brain tissue with special emphasis on regulation of growth, developmental process of an organism and cellular adaptation of Labeo rohita against unfavourable en...

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Autores principales: Shukla, Nitin, Vemula, Harshini, Raval, Ishan, Kumar, Sujit, Shrivastava, Vivek, Chaudhari, Aparna, Patel, Amrutlal K., Joshi, Chaitanya G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10500595/
https://www.ncbi.nlm.nih.gov/pubmed/37719712
http://dx.doi.org/10.3389/fgene.2023.1209843
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author Shukla, Nitin
Vemula, Harshini
Raval, Ishan
Kumar, Sujit
Shrivastava, Vivek
Chaudhari, Aparna
Patel, Amrutlal K.
Joshi, Chaitanya G.
author_facet Shukla, Nitin
Vemula, Harshini
Raval, Ishan
Kumar, Sujit
Shrivastava, Vivek
Chaudhari, Aparna
Patel, Amrutlal K.
Joshi, Chaitanya G.
author_sort Shukla, Nitin
collection PubMed
description Introduction: Brain being the master regulator of the physiology of animal, the current study focuses on the gene expression pattern of the brain tissue with special emphasis on regulation of growth, developmental process of an organism and cellular adaptation of Labeo rohita against unfavourable environmental conditions. Methods: RNA-seq study was performed on collected brain samples at 8ppt salt concentration and analyzed for differential gene expression, functional annotation and miRNA-mRNA regulatory network. Results: We found that 2450 genes were having significant differential up and down regulation. The study identified 20 hub genes based on maximal clique centrality algorithm. These hub genes were mainly involved in various signaling pathways, energy metabolism and ion transportation. Further, 326 up and 1214 down regulated genes were found to be targeted by 7 differentially expressed miRNAs i.e., oni-miR-10712, oni-miR-10736, ssa-miR-221-3p, ssa-miR-130d-1-5p, ssa-miR-144-5p and oni-miR-10628. Gene ontology analysis of these differentially expressed genes led to the finding that these genes were involved in signal transduction i.e., calcium, FOXO, PI3K-AKT, TGF-β, Wnt and p53 signalling pathways. Differentially expressed genes were also involved in regulation of immune response, environmental adaptation i.e., neuroactive ligand-receptor interaction, ECM-receptor interaction, cell adhesion molecules and circadian entrainment, osmoregulation and energy metabolism, which are critical for salinity adaptation. Discussion: The findings of whole transcriptomic study on brain deciphered the miRNA-mRNA interaction patterns and pathways associated with salinity adaptation of L. rohita.
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spelling pubmed-105005952023-09-15 Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita Shukla, Nitin Vemula, Harshini Raval, Ishan Kumar, Sujit Shrivastava, Vivek Chaudhari, Aparna Patel, Amrutlal K. Joshi, Chaitanya G. Front Genet Genetics Introduction: Brain being the master regulator of the physiology of animal, the current study focuses on the gene expression pattern of the brain tissue with special emphasis on regulation of growth, developmental process of an organism and cellular adaptation of Labeo rohita against unfavourable environmental conditions. Methods: RNA-seq study was performed on collected brain samples at 8ppt salt concentration and analyzed for differential gene expression, functional annotation and miRNA-mRNA regulatory network. Results: We found that 2450 genes were having significant differential up and down regulation. The study identified 20 hub genes based on maximal clique centrality algorithm. These hub genes were mainly involved in various signaling pathways, energy metabolism and ion transportation. Further, 326 up and 1214 down regulated genes were found to be targeted by 7 differentially expressed miRNAs i.e., oni-miR-10712, oni-miR-10736, ssa-miR-221-3p, ssa-miR-130d-1-5p, ssa-miR-144-5p and oni-miR-10628. Gene ontology analysis of these differentially expressed genes led to the finding that these genes were involved in signal transduction i.e., calcium, FOXO, PI3K-AKT, TGF-β, Wnt and p53 signalling pathways. Differentially expressed genes were also involved in regulation of immune response, environmental adaptation i.e., neuroactive ligand-receptor interaction, ECM-receptor interaction, cell adhesion molecules and circadian entrainment, osmoregulation and energy metabolism, which are critical for salinity adaptation. Discussion: The findings of whole transcriptomic study on brain deciphered the miRNA-mRNA interaction patterns and pathways associated with salinity adaptation of L. rohita. Frontiers Media S.A. 2023-08-31 /pmc/articles/PMC10500595/ /pubmed/37719712 http://dx.doi.org/10.3389/fgene.2023.1209843 Text en Copyright © 2023 Shukla, Vemula, Raval, Kumar, Shrivastava, Chaudhari, Patel and Joshi. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Shukla, Nitin
Vemula, Harshini
Raval, Ishan
Kumar, Sujit
Shrivastava, Vivek
Chaudhari, Aparna
Patel, Amrutlal K.
Joshi, Chaitanya G.
Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title_full Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title_fullStr Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title_full_unstemmed Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title_short Integrative miRNA-mRNA network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of Labeo rohita
title_sort integrative mirna-mrna network analysis to identify crucial pathways of salinity adaptation in brain transcriptome of labeo rohita
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10500595/
https://www.ncbi.nlm.nih.gov/pubmed/37719712
http://dx.doi.org/10.3389/fgene.2023.1209843
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