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Visualization of Cell Cycle Variations and Determination of Nucleation in Postnatal Cardiomyocytes
Published on: February 24, 2017
MiR-15 family regulates postnatal mitotic arrest of cardiomyocytes
Enzo R Porrello1, Brett A Johnson, Arin B Aurora
1Department of Molecular Biology, University of Texas Southwestern Medical Center, Dallas, TX 75390-9148, USA.
Rationale:
Mammalian cardiomyocytes withdraw from the cell cycle during early postnatal development, which significantly limits the capacity of the adult mammalian heart to regenerate after injury. The regulatory mechanisms that govern cardiomyocyte cell cycle withdrawal and binucleation are poorly understood.
Objective:
Given the potential of microRNAs (miRNAs) to influence large gene networks and modify complex developmental and disease phenotypes, we searched for miRNAs that were regulated during the postnatal switch to terminal differentiation.
Methods And Results:
Microarray analysis revealed subsets of miRNAs that were upregulated or downregulated in cardiac ventricles from mice at 1 and 10 days of age (P1 and P10). Interestingly, miR-195 (a member of the miR-15 family) was the most highly upregulated miRNA during this period, with expression levels almost 6-fold higher in P10 ventricles relative to P1. Precocious overexpression of miR-195 in the embryonic heart was associated with ventricular hypoplasia and ventricular septal defects in β-myosin heavy chain-miR-195 transgenic mice. Using global gene profiling and argonaute-2 immunoprecipitation approaches, we showed that miR-195 regulates the expression of a number of cell cycle genes, including checkpoint kinase 1 (Chek1), which we identified as a highly conserved direct target of miR-195. Finally, we demonstrated that knockdown of the miR-15 family in neonatal mice with locked nucleic acid-modified anti-miRNAs was associated with an increased number of mitotic cardiomyocytes and derepression of Chek1.
Conclusions:
These findings suggest that upregulation of the miR-15 family during the neonatal period may be an important regulatory mechanism governing cardiomyocyte cell cycle withdrawal and binucleation.
Insights
MicroRNAs (miRNAs), specifically the miR-15 family, are upregulated in neonatal mouse hearts, promoting cardiomyocyte cell cycle withdrawal. This suggests miRNAs regulate heart regeneration post-injury.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Developmental Biology
Background:
- Mammalian cardiomyocyte cell cycle withdrawal limits heart regeneration after injury.
- Mechanisms controlling cardiomyocyte cell cycle exit and binucleation are not well understood.
Purpose of the Study:
- Investigate microRNAs (miRNAs) regulated during postnatal cardiomyocyte terminal differentiation.
- Identify miRNAs influencing the switch to non-proliferative cardiomyocytes.
Main Methods:
- Microarray analysis of miRNA expression in neonatal mouse ventricles.
- Global gene profiling and Argonaute-2 immunoprecipitation to identify miRNA targets.
- Locked nucleic acid-modified anti-miRNAs for miRNA knockdown in neonatal mice.
Main Results:
- miR-195, a miR-15 family member, was significantly upregulated in P10 vs. P1 mouse ventricles.
- Overexpression of miR-195 caused heart defects in transgenic mice.
- miR-195 directly targets and regulates cell cycle genes, including checkpoint kinase 1 (Chek1).
- Knockdown of miR-15 family miRNAs increased mitotic cardiomyocytes and derepressed Chek1.
Conclusions:
- Upregulation of the miR-15 family during the neonatal period is a key regulator of cardiomyocyte cell cycle withdrawal.
- This miRNA-mediated regulation is crucial for limiting cardiomyocyte proliferation and promoting binucleation.

