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Updated: Nov 4, 2025

Visualization of Cell Cycle Variations and Determination of Nucleation in Postnatal Cardiomyocytes
Published on: February 24, 2017
Cell Cycle Withdrawal Limit the Regenerative Potential of Neonatal Cardiomyocytes
Huili Yan1, Xiyun Rao1, Rui Wang1
1Department of Pharmacology, School of Basic Biomedical Sciences, Tianjin Medical University, No. 22. Qixiangtai Rd, Tianjin, China.
Insights
The P4 neonatal mouse heart shows significant but incomplete cardiac regeneration after injury, driven by cardiomyocyte proliferation. Endothelial CCM2-like (Ccm2l) overexpression does not enhance this repair process.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Neonatal Physiology
Background:
- Neonatal mice have a limited window for cardiac regeneration, primarily via cardiomyocyte proliferation.
- This regenerative capacity is lost by postnatal day 7 due to cell cycle arrest and binucleation.
- CCM2-like (Ccm2l) is implicated in cardiovascular development and growth, suggesting a potential role in postnatal heart repair.
Purpose of the Study:
- To evaluate the cardiac regeneration capacity of postnatal day 4 (P4) neonatal mice using a novel injury model.
- To investigate the functional role of Ccm2l in neonatal heart repair following ischemic injury.
Main Methods:
- A modified left anterior descending artery (LAD) ligation was performed on P4 mice to induce injury.
- An endothelial-specific Ccm2l gain-of-function transgenic mouse model was generated to assess Ccm2l's role.
Main Results:
- The P4 mouse heart demonstrated a robust regenerative response post-injury, characterized by cardiomyocyte proliferation.
- Despite initial regeneration, cardiac hypertrophy and remodeling were observed 60 days after LAD ligation.
- Endothelial-specific Ccm2l overexpression did not enhance cardiomyocyte proliferation or improve heart repair.
Conclusions:
- The P4 neonatal heart exhibits a substantial yet incomplete capacity for cardiac regeneration.
- Overexpression of Ccm2l in endothelial cells does not influence cardiac regeneration after injury.
Purpose:
The neonatal mouse possesses a transient capacity for cardiac regeneration during the first few days of life. The regenerative response of neonatal mouse is primarily mediated by pre-existing cardiomyocyte (CM) proliferation, which has been identified as the primary source of myocardial regeneration. Postnatal 4-day-old (P4) mouse CMs appear to undergo a rapid transition from hyperplastic to hypertrophic growth and binucleation. By 7 days following birth this regenerative potential is lost which coincidently correspond with CM cell cycle arrest and binucleation. CCM2-like (Ccm2l) plays pivotal roles in cardiovascular development and cardiac growth, indicating a potential function in heart regeneration postnatally. The aim of this study was to determine the cardiac regeneration ability of P4 neonatal mouse using a novel and more reproducible injury model and to determine whether Ccm2l has any functional roles in heart repair following ischemic injury.
Methods:
We performed a modified left anterior descending artery (LAD) ligation procedure on P4 mice to examine cardiac regenerative responses at different time points. Additionally, we generated an endothelial-specific Ccm2l gain-of-function transgenic mouse to determine the role of Ccm2l in neonatal cardiac regeneration.
Results:
We found that the P4 mouse heart harbor a robust regenerative response after injury that was through the proliferation of pre-existing CMs but cardiac hypertrophy and subsequent remodeling was still evident 60 days after LAD ligation. Furthermore, we show that endothelial-specific overexpression of Ccm2l does not promote CM proliferation and heart repair after LAD ligation.
Conclusion:
The neonatal heart at P4 harbors a robust but incomplete capacity for cardiac regeneration. Endothelial overexpression of Ccm2l has no effect on cardiac regeneration.
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