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Published on: November 10, 2017
CISD1 protects against atherosclerosis by suppressing lipid accumulation and inflammation via mediating Drp1
Jinghai Hua1, Zhiming Gao1, Shaochun Zhong1
1Department of Cardiology, The First Affiliated Hospital of Nanchang University, Nanchang 330006, Jiangxi Province, China.
Insights
Increasing CDGSH iron-sulfur domain-containing protein 1 (CISD1) expression protects against atherosclerosis by reducing lipid deposition, oxidative stress, and inflammation in macrophages and mice.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Biology
- Cellular Signaling
Background:
- Atherosclerosis is a leading global cause of death, necessitating novel therapeutic targets.
- CDGSH iron-sulfur domain-containing protein 1 (CISD1) regulates mitochondrial function and oxidative stress, but its role in atherosclerosis is unclear.
Purpose of the Study:
- To investigate the role of CISD1 in atherosclerosis development and its underlying mechanisms.
- To explore CISD1 as a potential therapeutic target for atherosclerosis.
Main Methods:
- Assessed CISD1 expression in lipid-laden THP1 macrophages.
- Utilized lentivirus-mediated CISD1 overexpression in vitro and in vivo models (ox-LDL-stimulated THP1 cells and HFD-fed ApoE-/- mice).
- Measured lipid deposition, reactive oxygen species (ROS) production, mitochondrial membrane potential (MMP), inflammatory markers, and dynamin-related protein 1 (Drp1) expression.
Main Results:
- CISD1 expression was decreased in lipid-laden macrophages.
- CISD1 overexpression ameliorated ox-LDL-induced lipid deposition, ROS generation, MMP impairment, and inflammation in macrophages.
- CISD1 interacted with Drp1, and its protective effects were dependent on Drp1 suppression.
- In vivo, CISD1 overexpression reduced atherosclerotic lesion area, improved lipid profiles, and decreased inflammation and ROS in HFD-fed ApoE-/- mice.
Conclusions:
- CISD1 plays a protective role against atherosclerosis by mitigating mitochondrial dysfunction and inflammation.
- CISD1's therapeutic potential in atherosclerosis is linked to its interaction with and suppression of Drp1.
- Enhancing CISD1 expression represents a promising therapeutic strategy for atherosclerosis.
Abstract:
Atherosclerosis still remains the leading cause of morbidity and mortality worldwide, and deeper understanding of target signaling that protect from the atherosclerosis progression may provide novel therapeutic strategies. CDGSH iron-sulfur domain-containing protein 1 (CISD1) is a protein localized on the outer membrane of mitochondria, and plays key roles in regulating cell death and oxidative stress. However, its potential on atherosclerosis development and the underlying mechanisms are largely unknown. Here, in our study, we found markedly decreased CISD1 expression in lipid-laden THP1 macrophages. Notably, lentivirus (LV)-mediated CISD1 over-expression remarkably ameliorated lipid deposition in macrophages stimulated by ox-LDL. Furthermore, cellular total ROS and mitochondrial ROS generation, and impairment of mitochondrial membrane potential (MMP) were highly induced by ox-LDL in THP1 cells, while being considerably reversed upon CISD1 over-expression. Inflammatory response caused by ox-LDL was also significantly restrained in macrophages with CISD1 over-expression. Mechanistically, we found that CISD1 could interact with dynamin-related protein 1 (Drp1). Intriguingly, CISD1-improved mitochondrial dysfunction and inflammation in ox-LDL-treated macrophages were strongly abolished by Drp1 over-expression, indicating that Drp1 suppression might be necessary for CISD1 to perform its protective effects in vitro. In high fat diet (HFD)-fed apolipoprotein E-deficient (ApoE-/-) mice, tail vein injection of lentiviral vector expressing CISD1 remarkably decreased atherosclerotic lesion area, serum LDL cholesterol levels and triglyceride contents. Inflammatory response, cellular total and mitochondrial ROS production, and Drp1 expression levels in aorta tissues were also dramatically ameliorated in HFD-fed ApoE-/- mice, contributing to the inhibition of atherosclerosis in vivo. Therefore, improving CISD1 expression may be a novel therapeutic strategy for atherosclerosis treatment.
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