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SREBP1c mediates the effect of acetaldehyde on Cidea expression in Alcoholic fatty liver Mice
Qi He1,2, Yan Diao1,2, Tingting Zhao1,2
1Department of Biochemistry and Molecular Biology, Harbin Medical University, Harbin, China.
Abstract:
Cell death inducing DNA fragmentation factor-alpha-like A (Cidea) is a member of cell death-inducing DFF45-like effector (CIDE) protein. The initial function of CIDE is the promotion of cell death and DNA fragmentation in mammalian cells. Cidea was recently reported to play critical roles in the development of hepatic steatosis. The purpose of present study is to determine the effect of chronic alcohol intake on Cidea expression in the livers of mice with alcoholic fatty liver disease. Cidea expression was significantly increased in the liver of alcohol-induced fatty liver mice. While, knockdown of Cidea caused lipid droplets numbers reduction. Next, we detected the activity of ALDH2 reduction and the concentration of serum acetaldehyde accumulation in our alcohol-induced fatty liver mice. Cidea expression was elevated in AML12 cells exposed to 100uM acetaldehyde. Interestingly, Dual-luciferase reporter gene assay showed that 100 uM acetaldehyde led to the activation of Cidea reporter gene plasmid which containing SRE element. What's more, the knockdown of SREBP1c suppressed acetaldehyde-induced Cidea expression. Overall, our findings suggest that Cidea is highly associated with alcoholic fatty liver disease and Cidea expression is specifically induced by acetaldehyde, and this up-regulation is most likely mediated by SREBP1c.
Insights
Cell death inducing DNA fragmentation factor-alpha-like A (Cidea) expression increases in alcoholic fatty liver disease. Acetaldehyde, mediated by SREBP1c, induces Cidea, impacting lipid accumulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Hepatology
Background:
- Cell death inducing DNA fragmentation factor-alpha-like A (Cidea) is a member of the CIDE protein family.
- Cidea plays critical roles in hepatic steatosis development.
- The role of Cidea in alcoholic fatty liver disease (AFLD) requires further investigation.
Purpose of the Study:
- To investigate the effect of chronic alcohol intake on Cidea expression in mice with AFLD.
- To elucidate the molecular mechanisms underlying Cidea regulation in AFLD.
Main Methods:
- Alcohol-induced fatty liver mouse model.
- Cidea gene knockdown.
- Analysis of ALDH2 activity and serum acetaldehyde levels.
- Acetaldehyde exposure in AML12 cells.
- Dual-luciferase reporter gene assay.
- SREBP1c knockdown.
Main Results:
- Cidea expression was significantly increased in alcohol-induced fatty liver mice.
- Knockdown of Cidea reduced lipid droplet accumulation.
- Acetaldehyde exposure elevated Cidea expression in AML12 cells.
- Acetaldehyde activated the Cidea reporter gene via the SRE element.
- SREBP1c knockdown suppressed acetaldehyde-induced Cidea expression.
Conclusions:
- Cidea is significantly associated with alcoholic fatty liver disease.
- Acetaldehyde specifically induces Cidea expression.
- SREBP1c mediates the up-regulation of Cidea by acetaldehyde in AFLD.
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