Please use this identifier to cite or link to this item: https://doi.org/10.1371/journal.pone.0022839
Title: MicroRNA 144 impairs insulin signaling by inhibiting the expression of insulin receptor substrate 1 in type 2 diabetes mellitus
Authors: Karolina D.S. 
Armugam A. 
Tavintharan S.
Wong M.T.K. 
Lim S.C. 
Sum C.F.
Jeyaseelan K. 
Keywords: glucose
insulin
insulin receptor substrate 1
microRNA
microRNA 144
microRNA 146a
microRNA 150
microRNA 182
microRNA 192
microRNA 29a
microRNA 30d
microRNA 320a
unclassified drug
insulin
insulin receptor substrate
IRS1 protein, human
microRNA
MIRN144 microRNA, human
adult
aged
animal experiment
animal model
animal tissue
article
blood sampling
clinical article
controlled study
correlation analysis
differential diagnosis
disease course
down regulation
erythropoiesis
gene expression profiling
gene expression regulation
glucose blood level
hormone inhibition
human
impaired glucose tolerance
insulin blood level
male
non insulin dependent diabetes mellitus
nonhuman
nucleotide sequence
oral glucose tolerance test
pathogenesis
protein blood level
protein function
protein localization
protein targeting
rat
RNA analysis
signal transduction
upregulation
animal
blood
disease model
DNA microarray
genetics
metabolism
non insulin dependent diabetes mellitus
physiology
real time polymerase chain reaction
signal transduction
validation study
Wistar rat
Rattus
Animals
Diabetes Mellitus, Type 2
Disease Models, Animal
Gene Expression Profiling
Humans
Insulin
Insulin Receptor Substrate Proteins
Male
MicroRNAs
Oligonucleotide Array Sequence Analysis
Rats
Rats, Wistar
Real-Time Polymerase Chain Reaction
Signal Transduction
Issue Date: 2011
Publisher: Public Library of Science
Citation: Karolina D.S., Armugam A., Tavintharan S., Wong M.T.K., Lim S.C., Sum C.F., Jeyaseelan K. (2011). MicroRNA 144 impairs insulin signaling by inhibiting the expression of insulin receptor substrate 1 in type 2 diabetes mellitus. PLoS ONE 6 (8) : e22839. ScholarBank@NUS Repository. https://doi.org/10.1371/journal.pone.0022839
Abstract: Background: Dysregulation of microRNA (miRNA) expression in various tissues and body fluids has been demonstrated to be associated with several diseases, including Type 2 Diabetes mellitus (T2D). Here, we compare miRNA expression profiles in different tissues (pancreas, liver, adipose and skeletal muscle) as well as in blood samples from T2D rat model and highlight the potential of circulating miRNAs as biomarkers of T2D. In parallel, we have examined the expression profiles of miRNAs in blood samples from Impaired Fasting Glucose (IFG) and T2D male patients. Methodology/Principal Findings: Employing miRNA microarray and stem-loop real-time RT-PCR, we identify four novel miRNAs, miR-144, miR-146a, miR-150 and miR-182 in addition to four previously reported diabetes-related miRNAs, miR-192, miR-29a, miR-30d and miR-320a, as potential signature miRNAs that distinguished IFG and T2D. Of these microRNAs, miR-144 that promotes erythropoiesis has been found to be highly up-regulated. Increased circulating level of miR-144 has been found to correlate with down-regulation of its predicted target, insulin receptor substrate 1 (IRS1) at both mRNA and protein levels. We could also experimentally demonstrate that IRS1 is indeed the target of miR-144. Conclusion: We demonstrate that peripheral blood microRNAs can be developed as unique biomarkers that are reflective and predictive of metabolic health and disorder. We have also identified signature miRNAs which could possibly explain the pathogenesis of T2D and the significance of miR-144 in insulin signaling. © 2011 Karolina et al.
Source Title: PLoS ONE
URI: https://scholarbank.nus.edu.sg/handle/10635/165589
ISSN: 19326203
DOI: 10.1371/journal.pone.0022839
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