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Myocardial Infarction in Neonatal Mice, A Model of Cardiac Regeneration
Published on: May 24, 2016
microRNA-1 inhibits cardiomyocyte proliferation in mouse neonatal hearts by repressing CCND1 expression
Jingyi Gan1,2, Florence Mei Kuen Tang1, Xianwei Su3
1MOE Key Laboratory for Regenerative Medicine, School of Biomedical Sciences, The Chinese University of Hong Kong, Hong Kong, China.
Background:
The functions of microRNA-1 (miR-1) in cardiac hypertrophy, and cardiomyocyte differentiation have been investigated. However, the mechanism on how miR-1 could repress cardiomyocyte proliferation has not been fully elucidated.
Methods:
We address this issue by investigating whether miR-1 affected the proliferation of neonatal cardiomyocyte and identify some of the genes targeted by miR-1. miR-1 was over-expressed in neonatal cardiomyocytes and the effect on cell cycle and growth were analyzed by flow cytometry and Brdu-incorporation assay. Relevant vectors carrying the luciferase reporter were constructed for validation of miR-1 binding to its matching sites on the 3'-untranslated region of the predicated target mRNAs. Cardiomyocytes were co-transfected with the vectors and miR-1 mimics, then luciferase reporter assay was performed. Lastly, we examined the expression of target genes in cardiomyocytes after transfection with miR-1 mimics, as well as their normal expression pattern in 2- and 13-day-old mice hearts.
Results:
We have demonstrated that miR-1 was the most significantly upregulated miRNA in 13-day-old mouse hearts compared with 2-day-old hearts. We also showed that miR-1 could repress cardiomyocyte G1/S phase transition, proliferation and viability. IGF1 and CCND1 were identified as candidate target genes regulated by miR-1. In addition, overexpression of miR-1 could suppress the expression of these two genes at the mRNA level. It could also correspondingly inhibit CCND1 expression at the protein level but not for IGF1.
Conclusions:
Our results suggest that miR-1 plays an important role in inhibiting cardiomyocyte proliferation in the developing neonatal mouse heart by directly suppressing the cell-cycle regulator, CCND1.
Insights
MicroRNA-1 (miR-1) significantly inhibits neonatal cardiomyocyte proliferation by suppressing cell-cycle regulator CCND1. This study elucidates miR-1's role in heart development and identifies CCND1 as a key target.
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Developmental Biology
Background:
- MicroRNA-1 (miR-1) function in cardiac hypertrophy and differentiation is known.
- The precise mechanism of miR-1 in repressing cardiomyocyte proliferation remains unclear.
Purpose of the Study:
- Investigate miR-1's effect on neonatal cardiomyocyte proliferation.
- Identify genes targeted by miR-1.
Main Methods:
- Overexpressed miR-1 in neonatal cardiomyocytes.
- Analyzed cell cycle and growth using flow cytometry and BrdU assay.
- Validated miR-1 targets via luciferase reporter assay and examined gene expression.
Main Results:
- miR-1 is upregulated in developing mouse hearts (13-day vs. 2-day).
- miR-1 represses cardiomyocyte G1/S phase transition, proliferation, and viability.
- IGF1 and CCND1 identified as targets; miR-1 suppresses CCND1 mRNA and protein, and IGF1 mRNA.
Conclusions:
- miR-1 inhibits neonatal cardiomyocyte proliferation.
- miR-1 directly suppresses CCND1, a cell-cycle regulator, in the developing heart.
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