| Literature DB >> 25855471 |
Yue-Qiao Zhen1, Yu-Min Wu1, Yan-Hong Sang1, Yan Wang1, Qiu-Yan Song1, Ling Yu1, Xiao-Juan Rao1, Rui-Hong Dong2.
Abstract
PURPOSE: 2,3-Oxidosqualene cyclase (OSC), an important enzyme of cholesterol biosynthesis, catalyzes the highly selective cyclization of 2,3-monoepoxysqualene to lanosterol. Intermittent hypoxia (IH) is a hallmark feature in obstructive sleep apnea (OSA) which is increasingly recognized as an independent risk factor for liver injury. The aim of this study was to determine the effect of IH on OSC expression and evaluate the role of OSC in the IH-induced apoptosis in hepatic cell line human liver cell (HL-02).Entities:
Keywords: 2,3-Oxidosqualene cyclase; Intermittent hypoxia; Obstructive sleep apnea; Triglyceride
Mesh:
Substances:
Year: 2015 PMID: 25855471 PMCID: PMC4662960 DOI: 10.1007/s11325-015-1167-1
Source DB: PubMed Journal: Sleep Breath ISSN: 1520-9512 Impact factor: 2.816
Fig. 1Intermittent hypoxia (IH) was toxic for HL-02 cells and inhibited their proliferation. HL-02 cells were exposed to IH (cycle of 5 min 2 % O2 and 10 min 21 % O2) or normoxia (21 % O2) for 4 days. a Effect of the IH on HL-02 cell viability. A total of 104 cells were seeded in each pool of 96-well plates, and then cell viability was assayed using CCK-8 after treatment. b Representative flow cytometry profiles of cell apoptosis probed by annexin V binding (horizontal) and PI exclusion (vertical). c Percentages of apoptotic HL-02 cells after IH treatment. *p < 0.05 vs the cells grown under normoxic conditions
Fig. 2Expression of OSC in HL-02 cells treated with IH (cycles of 0, 2, 5, or 10 % O2 5 min and 21 % O2 10 min) for 4 days. a mRNA levels of OSC expression in HL-02 cells were determined with real-time quantitative PCR under different oxygen concentrations. b Protein levels of OSC expression in HL-02 cells were determined by Western blot after IH treatment. *p < 0.05, **p < 0.01 vs the cells grown under normoxic conditions
Fig. 3Expression of OSC in HL-02 cells treated with IH (cycle of 2 % O2 5 min and 21 % O2 10 min) for different times. a mRNA levels of OSC expression in HL-02 cells were determined with real-time quantitative RT-PCR in an IH treatment time course study. b Protein levels of OSC expression in HL-02 cells were determined by Western blot after IH treatment. *p < 0.05, **p < 0.01 vs the cells grown under normoxic conditions
Fig. 4Over-expression of OSC can protect HL-02 cells from the injury of IH. After transfection, HL-02 cells were exposed to IH (cycle of 2 % O2 5 min and 21 % O2 10 min) or normoxia (21 % O2) for 4 days. a Protein levels of OSC in HL-02 cells transfected with pEGFP-N1 or OSC-pEGFP were determined by Western blot after IH treatment. b Effect of the IH on the cell viability in HL-02 cells transfected with pEGFP-N1 or OSC-PGFP. c Representative flow cytometry profiles of cell apoptosis probed by annexin V binding (horizontal) and PI exclusion (vertical) in HL-02 cells transfected with pEGFP-N1 or OSC-EGFP after IH treatment. d Percentages of apoptotic HL-02 cells transfected with pEGFP-N1 or OSC-EGFP after IH treatment. *p < 0.05 vs the cells transfected with pEGFP-N1 control plasmid
Fig. 5Over-expression of OSC can prevent superabundance of the lipid droplet accumulation and TG content in HL-02 cells treated with IH (cycle of 2 % O2 5 min and 21 % O2 10 min) or normoxia (21 % O2) for 4 days. a State of lipid droplet accumulation in HL-02 cells transfected with pEGFP-N1 or OSC-EGFP after IH treatment. b TG level in HL-02 cells transfected with pEGFP-N1 or OSC-EGFP after IH treatment. c The expression levels of HIF-1, SREBP-1, and FAS in HL-02 cells transfected with pEGFP-N1 or OSC-EGFP after IH treatment. *p < 0.05 vs the cells transfected with pEGFP-N1 control plasmid