SIRT6 Reduces Macrophage Foam Cell Formation by Inducing Autophagy and Cholesterol Efflux Under Ox-LDL Condition
Overview
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SIRT6 is a pivotal regulator of lipid metabolism. It is also closely connected to cardiovascular diseases, which are the main cause of death in diabetic patients. We observed a decrease in the expression of SIRT6 and key autophagy effectors (ATG5, LC3B, and LAMP1) in ox-LDL-induced foam cells, a special form of lipid-laden macrophages. In these cells, SIRT6 WT but not SIRT6 H133Y overexpression markedly reduced foam cell formation, as shown by Oil Red O staining, while inducing autophagy flux, as determined by both mRFP-GFP-LC3 labeling and transmission electron microscopy. Silencing the key autophagy initiation gene ATG5, reversed the autophagy-promoting effect of SIRT6 in ox-LDL-treated THP1 cells, as evidenced by an increase in foam cells. Cholesterol efflux assays indicated that SIRT6 overexpression in foam cells promoted cholesterol efflux, increased the levels of ABCA1 and ABCG1, and reduced miR-33 levels. By transfecting miR-33 into cells overexpressing SIRT6, we observed that reduced foam cell formation and autophagy flux induction were largely reversed. These data imply that SIRT6 plays an essential role in protecting against atherosclerosis by reducing foam cell formation through an autophagy-dependent pathway.
Liu C, Pan X, Hao Z, Wang X, Wang C, Song G Exp Ther Med. 2024; 28(2):326.
PMID: 38979023 PMC: 11229395. DOI: 10.3892/etm.2024.12615.
Divya K, Kanwar N, Anuranjana P, Kumar G, Beegum F, George K Cardiovasc Toxicol. 2024; 24(6):598-621.
PMID: 38689163 DOI: 10.1007/s12012-024-09858-1.
Zhang Y, Xin W, Hu X, Wang H, Ye X, Xu C Cell Death Dis. 2023; 14(11):740.
PMID: 37963874 PMC: 10646116. DOI: 10.1038/s41419-023-06270-5.
Prakhar P, Bhatt B, Lohia G, Shah A, Mukherjee T, Kolthur-Seetharam U PLoS Pathog. 2023; 19(10):e1011731.
PMID: 37871034 PMC: 10621959. DOI: 10.1371/journal.ppat.1011731.
The Current State of Research on Sirtuin-Mediated Autophagy in Cardiovascular Diseases.
Wang Y, Li Y, Ding H, Li D, Shen W, Zhang X J Cardiovasc Dev Dis. 2023; 10(9).
PMID: 37754811 PMC: 10531599. DOI: 10.3390/jcdd10090382.