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A Familial Hypercholesterolemia Human Liver Chimeric Mouse Model Using Induced Pluripotent Stem Cell-derived Hepatocytes
Published on: September 15, 2018
SORBS2 as a molecular target for atherosclerosis in patients with familial hypercholesterolemia
Ming-Ming Liu1, Jia Peng1, Yuan-Lin Guo1
1Cardiovascular Metabolic Center, State Key Laboratory of Cardiovascular Diseases, Fu Wai Hospital, National Clinical Research Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical College, No. 167 BeiLiShi Road, XiCheng District, Beijing, China.
Insights
Sorbin and SH3 Domain Containing 2 (SORBS2) promotes inflammation and foam cell formation in familial hypercholesterolemia. Silencing SORBS2 reduces inflammation and lipid accumulation, suggesting it as a therapeutic target for hypercholesterolemia.
Area of Science:
- Cardiovascular Biology
- Metabolic Diseases
- Molecular Mechanisms
Background:
- Familial hypercholesterolemia (FH) is a metabolic disorder linked to premature atherosclerosis.
- Sorbin and SH3 Domain Containing 2 (SORBS2) is implicated in coronary heart disease, but its role in FH is unclear.
- Investigating SORBS2's mechanism in hypercholesterolemia, inflammation, and foam cell formation is crucial.
Purpose of the Study:
- To elucidate the role of SORBS2 in the development of hypercholesterolemia.
- To examine the effects of SORBS2 on macrophage inflammation and foam cell formation.
- To identify potential therapeutic targets for FH.
Main Methods:
- Bioinformatics analysis identified SORBS2 upregulation in FH patients.
- ELISA measured circulating SORBS2 levels.
- In vitro studies involved SORBS2 silencing in oxidized LDL-induced macrophages, followed by western blot and immunofluorescence.
Main Results:
- Circulating SORBS2 levels positively correlated with inflammatory factors and lipid indexes.
- SORBS2 silencing attenuated NLRP3-caspase1 and NF-κB activation, decreasing pro-inflammatory cytokine secretion.
- SORBS2 silencing reduced ROS production and lipid accumulation, enhancing cholesterol efflux via the ABCG1-PPARγ pathway.
Conclusions:
- SORBS2 plays a significant role in regulating lipid-induced inflammation and foam cell formation.
- SORBS2 is identified as a potential therapeutic target for managing hypercholesterolemia.
- Understanding SORBS2's molecular pathways offers insights into FH pathogenesis.
Background:
Familial hypercholesterolemia (FH) is a metabolic disease in which patients are prone to develop premature atherosclerosis (AS). Sorbin and SH3 Domain Containing 2 (SORBS2) is known to play a role in coronary heart disease (CHD). However, the mechanism underlying SORBS2 involvement in the development of hypercholesterolemia remains unknown. Here, we investigated the effects of SORBS2 on inflammation and foam cell formation and its underlying mechanisms.
Methods:
Using Bioinformatics analysis, we established that SORBS2 is upregulated in patients with FH. Circulating concentrations of SORBS2 were measured using ELISA kit (n = 30). The association between circulating SORBS2 levels and inflammatory factors or lipid indexes were conducted using Spearman correlation analysis. We further conducted in vitro experiments that the expression of SORBS2 were analyzed, and SORBS2 siRNA were transfected into oxidized LDL (OxLDL)-induced macrophages, followed by western blot and immunofluorescence.
Results:
Circulating SORBS2 levels were positively associated with inflammatory factors and lipid indexes. We also observed that high in vitro expression of SORBS2 in OxLDL-induced macrophages. After SORBS2 silencing, Nod like receptor family pyrin domain-containing 3 protein(NLRP3)-Caspase1 activation and NF-κB activation were attenuated, and secretion of pro-inflammatory cytokines (IL-1β and IL-18) was decreased. Moreover, SORBS2 silencing blocked reactive oxygen species (ROS) production and lipid accumulation, and promoted cholesterol efflux through ABCG1-PPARγ pathway.
Conclusions:
SORBS2 regulates lipid-induced inflammation and foam cell formation, and is a potential therapeutic target for hypercholesterolemia.
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