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January 16, 2014Journal of Cellular and Molecular Medicine201 citationsOpen Access

Cardiac miR‐133a overexpression prevents early cardiac fibrosis in diabetes

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SCShali ChenPPPrasanth PuthanveetilBFBiao Feng

Structured PICO

Does cardiac-specific miR-133a overexpression prevent cardiac fibrosis in streptozotocin-induced diabetic mice?

P
Population
Streptozotocin-induced diabetic mice
I
Intervention
Cardiac-specific miR-133a overexpression
C
Comparator
Diabetic mice without miR-133a overexpression
O
Outcome
Cardiac fibrosis assessed by RT-qPCR, immunoblotting of COL4A1, ELISA for FN1, and microscopic examinationsurrogate

Cardiac-specific overexpression of miR-133a prevents early cardiac fibrosis and related signaling pathways in a mouse model of diabetes, suggesting a potential therapeutic target for diabetic cardiomyopathy.

Abstract

Diabetic cardiomyopathy is a cascade of complex events leading to eventual failure of the heart and cardiac fibrosis being considered as one of its major causes. miR-133a is one of the most abundantly expressed microRNAs in the heart. We investigated the role of miR-133a during severe hyperglycaemia. And, our aim was to find out what role miR-133a plays during diabetes-induced cardiac fibrosis. We saw a drastic decrease in miR-133a expression in the hearts of streptozotocin-induced diabetic animals, as measured by RT-qPCR. This decrease was accompanied by an increase in the transcriptional co-activator EP300 mRNA and major markers of fibrosis transforming growth factor-β1, connective tissue growth factor, fibronectin (FN1) and COL4A1; in addition, focal cardiac fibrosis assessed by Masson's trichome stain was increased. Interestingly, in diabetic mice with cardiac-specific miR-133aa overexpression, cardiac fibrosis was significantly decreased, as observed by RT-qPCR and immunoblotting of COL4A1, ELISA for FN1 and microscopic examination. Furthermore, Cardiac miR-133a overexpression prevented ERK1/2 and SMAD-2 phosphorylation. These findings show that miR-133a could be a potential therapeutic target for diabetes-induced cardiac fibrosis and related cardiac dysfunction.

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Cite This Study

Chen et al. (2014) studied this question.

synapsesocial.com/papers/6a1cd3b4c1a6f558a750b6adhttps://doi.org/10.1111/jcmm.12218
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