Mandal Amritlal, Chakraborti Tapati, Choudhury Rajdeep, Ghosh Biswarup, Ghosh Amar Nath, Das Sudip, Chakraborti Sajal
Department of Biochemistry and Biophysics, University of Kalyani, Kalyani, West Bengal, India.
Mol Cell Biochem. 2005 Feb;270(1-2):79-87. doi: 10.1007/s11010-005-5260-9.
Treatment of microsomes (preferentially enriched with endoplasmic reticulum) isolated from bovine pulmonary artery smooth muscle tissue with H2O2 (1 mM) markedly stimulated matrix metalloproteinase activity and also inhibited Na+ dependent Ca2+ uptake. Electron micrograph revealed that H2O2 (1 mM) does not cause any damage to the microsomes. MMP-2 and TIMP-2 were determined to be the ambient protease and corresponding antiprotease of the microsomes. Pretreatment with vitamin E (1 mM) and TIMP-2 (50 microg/ml) reversed the effect produced by H2O2 (1 mM) on Na+ dependent Ca2+ uptake in the microsomes. However, H2O2 (1 mM) caused changes in MMP-2 activity and Na+ dependent Ca2+ uptake were not reversed upon pretreatment of the microsomes with a low concentration of 5 microg/ml of TIMP-2 which otherwise reversed MMP-2 (1 microg/ml) mediated increase in 14C-gelatin degradation and inhibition of Na+ dependent Ca2+ uptake. Combined treatment of the microsomes with a low dose of MMP-2 (0.5 microg/ml) and H2O2 (0.5 mM) inhibited Na+ dependent Ca2+ uptake in the microsomes compared to the respective low dose of either of them. Direct treatment of TIMP-2 (5 microg/ml) with H2O2 (1 mM) abolished the inhibitory effect of the inhibitor on 14C-gelatinolytic activity elicited by 1 microg/ml of MMP-2. Thus, one of the mechanisms by which H2O2 activates MMP-2 could be due to inactivation of TIMP-2 by the oxidant. The resulting activation of MMP-2 subsequently inhibits Na+ dependent Ca2+ uptake in the microsomes.
用H2O2(1 mM)处理从牛肺动脉平滑肌组织中分离出的微粒体(优先富含内质网),显著刺激了基质金属蛋白酶活性,同时抑制了Na+依赖性Ca2+摄取。电子显微镜照片显示,H2O2(1 mM)不会对微粒体造成任何损伤。MMP-2和TIMP-2被确定为微粒体的环境蛋白酶和相应的抗蛋白酶。用维生素E(1 mM)和TIMP-2(50微克/毫升)预处理可逆转H2O2(1 mM)对微粒体中Na+依赖性Ca2+摄取的影响。然而,H2O2(1 mM)导致MMP-2活性发生变化,在用低浓度5微克/毫升的TIMP-2预处理微粒体时,Na+依赖性Ca2+摄取并未逆转,否则该浓度的TIMP-2可逆转MMP-2(1微克/毫升)介导的14C-明胶降解增加和Na+依赖性Ca2+摄取抑制。与低剂量的单独任何一种物质相比,微粒体用低剂量的MMP-2(0.5微克/毫升)和H2O2(0.5 mM)联合处理可抑制微粒体中Na+依赖性Ca2+摄取。TIMP-2(5微克/毫升)与H2O2(1 mM)直接处理消除了该抑制剂对1微克/毫升MMP-2引发的14C-明胶水解活性的抑制作用。因此,H2O2激活MMP-2的机制之一可能是氧化剂使TIMP-2失活。MMP-2的这种激活随后抑制了微粒体中Na+依赖性Ca2+摄取。