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Published on: June 7, 2018
Hdac1-deficiency affects the cell cycle axis Cdc25-Cdk1 causing impaired G2/M phase progression and reduced
Alena Boos1, Bernd Martin Gahr1, Deung-Dae Park1
1Molecular Cardiology, Department of Internal Medicine II, Ulm University, Ulm, Germany.
Abstract:
Zebrafish have the ability to fully regenerate their hearts after injury since cardiomyocytes subsequently dedifferentiate, re-enter cell cycle, and proliferate to replace damaged myocardial tissue. Recent research identified the reactivation of dormant developmental pathways during cardiac regeneration in adult zebrafish, suggesting pro-proliferative pathways important for developmental heart growth to be also critical for regenerative heart growth after injury. Histone deacetylase 1 (Hdac1) was recently shown to control both, embryonic as well as adult regenerative cardiomyocyte proliferation in the zebrafish model. Nevertheless, regulatory pathways controlled by Hdac1 are not defined yet. By analyzing RNA-seq-derived transcriptional profiles of the Hdac1-deficient zebrafish mutant baldrian, we here identified DNA damage response (DDR) pathways activated in baldrian mutant embryos. Surprisingly, although the DDR signaling pathway was transcriptionally activated, we found the complete loss of protein expression of the known DDR effector and cell cycle inhibitor p21. Consequently, we observed an upregulation of the p21-downstream target Cdk2, implying elevated G1/S phase transition in Hdac1-deficient zebrafish hearts. Remarkably, Cdk1, another p21-but also Cdc25-downstream target was downregulated. Here, we found the significant downregulation of Cdc25 protein expression, explaining reduced Cdk1 levels and suggesting impaired G2/M phase progression in Hdac1-deficient zebrafish embryos. To finally prove defective cell cycle progression due to Hdac1 loss, we conducted Cytometer-based cell cycle analyses in HDAC1-deficient murine HL-1 cardiomyocytes and indeed found impaired G2/M phase transition resulting in defective cardiomyocyte proliferation. In conclusion, our results suggest a critical role of Hdac1 in maintaining both, regular G1/S and G2/M phase transition in cardiomyocytes by controlling the expression of essential cell cycle regulators such as p21 and Cdc25.
Insights
Histone deacetylase 1 (Hdac1) is crucial for zebrafish heart regeneration by regulating cell cycle progression. Loss of Hdac1 impairs cardiomyocyte proliferation by affecting cell cycle regulators p21 and Cdc25.
Area of Science:
- Cardiology
- Developmental Biology
- Molecular Biology
Background:
- Zebrafish exhibit remarkable heart regeneration capacity.
- Regeneration involves cardiomyocyte dedifferentiation, cell cycle re-entry, and proliferation.
- Reactivated developmental pathways are key for regenerative growth.
Purpose of the Study:
- To define regulatory pathways controlled by Histone deacetylase 1 (Hdac1) in zebrafish cardiac regeneration.
- To investigate the role of Hdac1 in cardiomyocyte cell cycle progression.
Main Methods:
- RNA-sequencing of Hdac1-deficient zebrafish (baldrian mutant).
- Analysis of DNA damage response (DDR) pathways and cell cycle regulators (p21, Cdk2, Cdk1, Cdc25).
- Flow cytometry-based cell cycle analysis in Hdac1-deficient murine HL-1 cardiomyocytes.
Main Results:
- Hdac1 deficiency activates DDR pathways but leads to loss of p21 protein.
- Upregulation of Cdk2 suggests enhanced G1/S phase transition.
- Downregulation of Cdc25 and Cdk1 indicates impaired G2/M phase progression.
- Hdac1-deficient cardiomyocytes show defective proliferation.
Conclusions:
- Hdac1 plays a critical role in maintaining cardiomyocyte cell cycle progression.
- Hdac1 regulates both G1/S and G2/M phase transitions.
- Hdac1 controls essential cell cycle regulators like p21 and Cdc25 for heart regeneration.
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