Oxidative modification of low-density lipoprotein by the human hepatoma cell line HepG2

被引:7
作者
Pico, I
Myara, I
PechAmsellem, MA
Vedie, B
Chappey, B
Moatti, N
机构
[1] FAC SCI PHARMACEUT & BIOL CHATENAY MALABRY,LAB BIOCHIM APPL,F-92296 CHATENAY MALABRY,FRANCE
[2] HOP BROUSSAIS,BIOCHIM LAB,F-75674 PARIS 14,FRANCE
关键词
low density lipoprotein; modified LDL; lipid peroxidation; human hepatoma cell line; liver;
D O I
10.3109/10715769609149055
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The human hepatoblastoma cell line HepG2 is a liver model commonly used for lipid metabolism studies. Numerous cell types have been found to oxidize low-density lipoprotein (LDL) but, to our knowledge, the effects of HepG2 cells on LDL have not been investigated. We found that LDL is modified by HepG2 cells through a peroxidative mechanism, as judged by an increase in TEARS content (which was prevented in the presence of the antioxidants vitamin E, 2,6-di-tert-butyl-cresol and probucol), increased degradation by J774 macrophages, decreased internalization by MRC5 fibroblasts, and aggregation of apo B. Aspirin and allopurinol, which inhibit cyclooxygenase and xanthine-oxidase activities, respectively, had no effect on HepG2-induced LDL modification, and neither did catalase, which dismutates hydrogen peroxide; or mannitol, which scavenges hydroxyl radicals. In contrast, superoxide dismutase, a superoxide anion scavenger, and glutamate and threonine, which alter cellular cystine uptake, prevented LDL modifications, as did the removal of cysteine/cystine from the culture medium. Oxidation of LDL by HepG2 cells might thus involve superoxide anion production and/or thiol metabolism.
引用
收藏
页码:321 / 336
页数:16
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