Tampo Y, Yonaha M
Hokkaido Institute of Pharmaceutical Sciences, Otaru, Japan.
Pharmacol Toxicol. 1990 Apr;66(4):259-65. doi: 10.1111/j.1600-0773.1990.tb00744.x.
Glutathione (GSH) inhibited lipid peroxidation induced by NADPH-BrCCl3 in vitamin E sufficient microsomes, but did not in phenobarbital (PB)-treated microsomes (containing about 60% of normal vitamin E) or in vitamin E-deficient microsomes (containing about 30% of normal vitamin E). There was a good correlation between the increased formation of CHCl3 from BrCCl3 in the presence of GSH under anaerobic conditions and the vitamin E level in the microsomes. A normal level of vitamin E in microsomes was thus very important for GSH-dependent inhibition of lipid peroxidation and for the efficient formation of CHCl3 from BrCCl3. Bromosulfophthalein (BSP) eliminated the effects of GSH on lipid peroxidation and CHCl3 formation. The apparent Km and Vmax of substrates for GSH S-transferase were changed by in vivo depletion of vitamin E in microsomes, and the Vmax/Km values were significantly reduced. The enzyme activity in microsomes was inactivated following the loss of vitamin E during in vitro lipid peroxidation, and GSH prevented the loss of vitamin E and protected the enzyme from attack by free radicals. GSH inhibited lipid peroxidation induced by NADPH-Fe2+ and the loss of GSH S-transferase activity during the peroxidation in PB-treated microsomes, but did not in the case of induction by NADPH-BrCCl3. A possible relation between the microsomal GSH S-transferase activity and defense by GSH against lipid peroxidation in microsomes is discussed.
谷胱甘肽(GSH)可抑制在维生素E充足的微粒体中由NADPH-三氯溴甲烷诱导的脂质过氧化,但在经苯巴比妥(PB)处理的微粒体(含约60%正常维生素E)或维生素E缺乏的微粒体(含约30%正常维生素E)中则不能抑制。在厌氧条件下,GSH存在时三氯溴甲烷生成三氯甲烷的增加与微粒体中的维生素E水平之间存在良好的相关性。因此,微粒体中正常水平的维生素E对于GSH依赖的脂质过氧化抑制以及三氯溴甲烷高效生成三氯甲烷非常重要。溴磺酞(BSP)消除了GSH对脂质过氧化和三氯甲烷生成的影响。微粒体中GSH S-转移酶底物的表观Km和Vmax因体内维生素E耗竭而改变,且Vmax/Km值显著降低。在体外脂质过氧化过程中,随着维生素E的丧失,微粒体中的酶活性失活,而GSH可防止维生素E的丧失并保护该酶免受自由基攻击。GSH抑制了PB处理的微粒体中由NADPH-亚铁离子诱导的脂质过氧化以及过氧化过程中GSH S-转移酶活性的丧失,但在NADPH-三氯溴甲烷诱导的情况下则不能抑制。本文讨论了微粒体GSH S-转移酶活性与GSH对微粒体脂质过氧化防御之间的可能关系。