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ATF3 regulates SPHK1 in cardiomyocyte injury via endoplasmic reticulum stress
Huiling Chen1, Suxin Luo1, Huamei Chen2
1Division of Cardiology, The First Affiliated Hospital of Chongqing Medical University, Chongqing, P.R. China.
Insights
Downregulating activating transcription factor 3 (ATF3) reduces sphingosine kinase-1 (SPHK1) expression, thereby protecting against cardiomyocyte injury and endoplasmic reticulum (ER) stress during myocardial infarction (MI). This finding offers a potential therapeutic target for heart disease.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Stress Response
Background:
- Endoplasmic reticulum (ER) stress is implicated in cardiac pathologies.
- Sphingosine kinase-1 (SPHK1) plays a role in cardiac function, but its role in ER stress is unclear.
Purpose of the Study:
- To investigate the mechanism by which SPHK1 influences ER stress in cardiomyocytes during myocardial infarction (MI).
Main Methods:
- Differential gene expression analysis of MI-related datasets.
- In vitro (HL-1 cells with oxygen-glucose deprivation) and in vivo (MI mouse model) studies.
- Gene expression manipulation (shRNA, overexpression), cell viability assays, apoptosis and oxidative stress detection, histological staining, and ELISA for inflammatory markers.
Main Results:
- Activating transcription factor 3 (ATF3) and SPHK1 were upregulated in MI models.
- ATF3 downregulation decreased SPHK1 transcription, improving cell viability and reducing apoptosis, oxidative stress, and ER stress.
- Inhibition of ATF3 and SPHK1 attenuated myocardial infarction size, fibrosis, inflammation, and ER stress in mice.
Conclusions:
- ATF3 downregulation mitigates cardiomyocyte injury in myocardial infarction by reducing SPHK1 expression.
- Targeting the ATF3-SPHK1 axis may offer a therapeutic strategy for myocardial infarction.
Aim:
Endoplasmic reticulum (ER) stress is common in different human pathologies, including cardiac diseases. Sphingosine kinase-1 (SPHK1) represents an important player in cardiac growth and function. Nevertheless, its function in cardiomyocyte ER stress remains vague. This study sought to evaluate the mechanism through which SPHK1 might influence ER stress during myocardial infarction (MI).
Methods:
MI-related GEO data sets were queried to screen differentially expressed genes. Murine HL-1 cells exposed to oxygen-glucose deprivation (OGD) and mice with MI were induced, followed by gene expression manipulation using short hairpin RNAs and overexpression vectors. The activating transcription factor 3 (ATF3) and SPHK1 expression was examined in cells and tissues. Cell counting kit-8, TUNEL, DHE, HE, and Masson's staining were conducted in vitro and in vivo. The inflammatory factor concentrations in mouse serum were measured using ELISA. Finally, the transcriptional regulation of SPHK1 by ATF3 was validated.
Results:
ATF3 and SPHK1 were upregulated in vivo and in vitro. ATF3 downregulation reduced the SPHK1 transcription. ATF3 and SPHK1 downregulation increased the viability of OGD-treated HL-1 cells and decreased apoptosis, oxidative stress, and ER stress. ATF3 and SPHK1 downregulation narrowed the infarction area and attenuated myocardial fibrosis in mice, along with reduced inflammation in the serum and ER stress in the myocardium. In contrast, SPHK1 reduced the protective effect of ATF3 downregulation in vitro and in vivo.
Conclusions:
ATF3 downregulation reduced SPHK1 expression to attenuate cardiomyocyte injury in MI.
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