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miR-153-3p Targets βII Spectrin to Regulate Formaldehyde-Induced Cardiomyocyte Apoptosis
Panyu Yang1, Yanyan Yang2, Xiangqin He1
1Department of Cardiac Ultrasound, The Affiliated Hospital of Qingdao University, Qingdao, China.
Insights
Formaldehyde exposure causes congenital heart disease by promoting fetal cardiomyocyte apoptosis via miR-153-3p targeting of βII spectrin. Inhibiting miR-153-3p reversed these harmful effects, suggesting a therapeutic target.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Molecular Toxicology
Background:
- Formaldehyde (FA) exposure is linked to miscarriage and congenital heart disease (CHD).
- βII spectrin is crucial for cardiomyocyte survival and heart development.
- The role of microRNAs (miRNAs) in FA-induced heart defects remains unclear.
Purpose of the Study:
- To investigate the regulatory role of miRNAs in FA-induced CHD and cardiomyocyte apoptosis.
- To elucidate the molecular mechanism involving miR-153-3p and βII spectrin in heart development.
Main Methods:
- Quantitative PCR and Western blot to assess gene and protein expression.
- Flow cytometry and TUNEL assay for apoptosis evaluation.
- Luciferase assay, RNA pull-down, FISH, and immunohistochemistry to determine molecular interactions and localization.
Main Results:
- miR-153-3p directly targets and downregulates βII spectrin, promoting cardiomyocyte apoptosis.
- miR-153-3p regulates apoptosis by affecting caspase-7 expression.
- Targeting the miR-153-3p/βII spectrin pathway ameliorated FA-induced cardiac damage and fibrosis in an animal model.
Conclusions:
- miR-153-3p promotes FA-induced cardiomyocyte apoptosis by targeting βII spectrin.
- The miR-153-3p/βII spectrin pathway is a key mechanism in FA-induced CHD.
- miR-153-3p represents a potential diagnostic and therapeutic target for CHD.
Abstract:
Background: Formaldehyde (FA) is ubiquitous in the environment and can be transferred to the fetus through placental circulation, causing miscarriage and congenital heart disease (CHD). Studies have shown that βII spectrin is necessary for cardiomyocyte survival and differentiation, and its loss leads to heart development defects and cardiomyocyte apoptosis. Additionally, previous studies have demonstrated that miRNA is essential in heart development and remodeling. However, whether miRNA regulates FA-induced CHD and cardiomyocyte apoptosis remains unclear. Methods: Using commercially available rat embryonic cardiomyocytes and a rat model of fetal cardiomyocyte apoptosis. Real-time quantitative PCR (RT-qPCR) and Western blot were performed to examine the level of miR-153-3p, βII spectrin, caspase 7, cleaved caspase7, Bax, Bcl-2 expression in embryonic cardiomyocytes and a rat model of fetal cardiomyocyte apoptosis. Apoptotic cell populations were evaluated by flow cytometry and Tunel. Luciferase activity assay and RNA pull-down assay were used to detect the interaction between miR-153-3p and βII spectrin. Masson's trichrome staining detects the degree of tissue fibrosis. Fluorescence in situ hybridization (FISH) and Immunohistochemistry were used to detect the expression of miR-153-3p and βII spectrin in tissues. Results: Using commercially available rat embryonic cardiomyocytes and a rat model of fetal cardiomyocyte apoptosis, our studies indicate that miR-153-3p plays a regulatory role by directly targeting βII spectrin to promote cardiomyocyte apoptosis. miR-153-3p mainly regulates cardiomyocyte apoptosis by regulating the expression of caspase7, further elucidating the importance of apoptosis in heart development. Finally, the results with our animal model revealed that targeting the miR-153-3p/βII spectrin pathway effectively regulated FA-induced damage during heart development. Recovery experiments with miR-153-3p antagomir resulted in the reversal of FA-induced cardiomyocyte apoptosis and fetal cardiac fibrosis. Conclusion: This study investigated the molecular mechanism underpinning the role of βII spectrin in FA-induced CHD and the associated upstream miRNA pathway. The study findings suggest that miR-153-3p may provide a potential target for the clinical diagnosis and treatment of CHD.
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