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Published on: July 27, 2022
SENP3-regulated Nodal signaling plays a potential role in cardiac left-right asymmetry development
1Key Laboratory of the Ministry of Education for Medicinal Resources and Natural Pharmaceutical Chemistry, National Engineering Laboratory for Resource Developing of Endangered Chinese Crude Drugs in Northwest China, College of Life Sciences, Shaanxi Normal University, Xi'an, Shaanxi, China.
Abstract:
Congenital heart disease (CHD) is a type of major defect that occurs during embryonic development. Although significant advances have been made in the treatment of CHD, its etiology and molecular mechanism remain unclear. To identify the critical role of SUMOylation in cardiac development, we generated SENP3 knockout mice and showed that SENP3 knockout mice die on embryonic day 8.5 with an open neural tube and reversed left-right cardiac asymmetry. Moreover, SENP3 knockout promoted apoptosis and senescence of H9C2 cells. Further studies showed that Nodal, a critical gene that forms left-right asymmetry, is regulated by SENP3 and that SENP3 regulates cell apoptosis and senescence in a Nodal-dependent manner. Furthermore, Nodal was hyper-SUMOylated after SENP3 knockout, and SUMOylation of Nodal inhibited its ubiquitination and ubiquitin-proteasome degradation pathway. Nodal overexpression enhanced cell apoptosis and senescence; however, the mutation at the SUMOylation site of Nodal reversed its effect on the apoptosis and senescence of H9C2 cells. More importantly, the SENP3-Nodal axis regulates cell senescence by inducing cell autophagy. These results suggest that the SENP3-Nodal signaling axis regulates cardiac senescence-autophagy homeostasis, which in turn affects cardiac development and results in the occurrence of CHD.
Insights
SENP3 protein is crucial for heart development. Its absence causes congenital heart defects by disrupting Nodal signaling, leading to cell death and senescence.
Area of Science:
- Developmental Biology
- Molecular Biology
- Cardiovascular Research
Background:
- Congenital heart disease (CHD) etiology remains unclear despite treatment advances.
- SUMOylation's role in cardiac development requires further investigation.
Purpose of the Study:
- To elucidate the function of SENP3 in cardiac development.
- To identify the molecular mechanisms underlying SENP3-mediated cardiac development.
Main Methods:
- Generated SENP3 knockout mice.
- Utilized H9C2 cell line for apoptosis and senescence studies.
- Investigated Nodal gene regulation and SUMOylation status.
Main Results:
- SENP3 knockout mice exhibit embryonic lethality with cardiac and neural tube defects.
- SENP3 regulates Nodal, a key gene for left-right asymmetry.
- SENP3 deficiency leads to Nodal hyper-SUMOylation, inhibiting its degradation and promoting cell apoptosis and senescence via autophagy.
Conclusions:
- The SENP3-Nodal signaling axis is vital for cardiac development.
- Dysregulation of this axis impacts cardiac senescence-autophagy homeostasis, contributing to CHD.
- SENP3 is a potential therapeutic target for congenital heart defects.
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