MITOCHONDRIAL DYSFUNCTION IN ISCHEMIA-REPERFUSION

被引:52
作者
SARIS, NEL
ERIKSSON, KO
机构
[1] The Helsinki Bioenergetics Group, Department of Medical Chemistry, Institute of Biomedicine, University of Helsinki, Helsinki
关键词
ATP; CALCIUM; ISCHEMIA; MITOCHONDRIAL PERMEABILITY TRANSITION; REPERFUSION; TISSUE DAMAGE; UNCOUPLING;
D O I
10.1111/j.1399-6576.1995.tb04353.x
中图分类号
R614 [麻醉学];
学科分类号
100217 ;
摘要
The mitochondrial dysfunction in ischaemia-reperfusion is shortly reviewed. During ischaemia the ATP level and pH drops, phospholipids are degraded, membrane permeabilities increased and the cytosolic levels of Na+ and Ca2+ raised. During the following reperfusion the Ca2+ levels may further increase while pH is raised. The oxidative phosphorylation is resumed and the ATP used for membrane repair and ion pumping. The mitochondrial Ca2+ handling is important in removing Ca2+ from the cytosol since the mitochondria are able to take up substantial amounts of Ca2+. However, if a certain threshold is exceeded, mitochondria undergo a so-called permeability transition (MPT), release their Ca2+, undergo swelling and become uncoupled. MPT has been shown to be due to the opening of large pore allowing passage of substances with a M(R)<1500. Data are presented showing by electron microscopy swelling of mitochondria in cells in perfused liver before other gross morphological changes have taken place. There are a number of factors lowering the threshold for Ca2+ in inducing the MPT: inorganic phosphate, prooxidants that oxidize membrane SH-groups, oxidation of NAD(P)H and GSH, while a protective effect is exerted by Mg2+, ADP (and ATP), some antioxidants, carnitine, decrease in pH, and cyclosporin A that binds to cyclophilin. The potential benefit of these in minimizing reperfusion-induced tissue damage is discussed.
引用
收藏
页码:171 / 176
页数:6
相关论文
共 75 条
[51]   PERFUSATE SODIUM DURING ISCHEMIA MODIFIES POST-ISCHEMIC FUNCTIONAL AND METABOLIC RECOVERY IN THE RABBIT HEART [J].
RENLUND, DG ;
GERSTENBLITH, G ;
LAKATTA, EG ;
JACOBUS, WE ;
KALLMAN, CH ;
WEISFELDT, ML .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1984, 16 (09) :795-801
[52]   PRO-OXIDANTS AND MITOCHONDRIAL CA2+ - THEIR RELATIONSHIP TO APOPTOSIS AND ONCOGENESIS [J].
RICHTER, C .
FEBS LETTERS, 1993, 325 (1-2) :104-107
[53]   MICRODOMAINS WITH HIGH CA2+ CLOSE TO IP(3)-SENSITIVE CHANNELS THAT ARE SENSED BY NEIGHBORING MITOCHONDRIA [J].
RIZZUTO, R ;
BRINI, M ;
MURGIA, M ;
POZZAN, T .
SCIENCE, 1993, 262 (5134) :744-747
[54]   RAPID CHANGES OF MITOCHONDRIAL CA2+ REVEALED BY SPECIFICALLY TARGETED RECOMBINANT AEQUORIN [J].
RIZZUTO, R ;
SIMPSON, AWM ;
BRINI, M ;
POZZAN, T .
NATURE, 1992, 358 (6384) :325-327
[55]   REGULATION OF CA2+ EFFLUX FROM KIDNEY AND LIVER-MITOCHONDRIA BY UNSATURATED FATTY-ACIDS AND NA+ IONS [J].
ROMAN, I ;
GMAJ, P ;
NOWICKA, C ;
ANGIELSKI, S .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1979, 102 (02) :615-623
[56]   EFFECTS OF ZN2+ ON THE ACTIVITY AND BINDING OF THE MITOCHONDRIAL ATPASE INHIBITOR PROTEIN, IF1 [J].
ROUSLIN, W ;
BROGE, CW ;
CHERNYAK, BV .
JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 1993, 25 (03) :297-306
[57]  
RUTTER GA, 1993, J BIOL CHEM, V268, P22385
[58]   CALPAIN - NEW PERSPECTIVES IN MOLECULAR DIVERSITY AND PHYSIOLOGICAL-PATHOLOGICAL INVOLVEMENT [J].
SAIDO, TC ;
SORIMACHI, H ;
SUZUKI, K .
FASEB JOURNAL, 1994, 8 (11) :814-822
[59]  
Saris N.E., 1963, SOC SCI FENN COMMENT, V28, P1
[60]   REGULATION OF CA-2+ FLUXES IN RAT-LIVER MITOCHONDRIA BY CA-2+ - EFFECTS ON CA-2+ DISTRIBUTION [J].
SARIS, NEL ;
KRONER, H .
JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 1990, 22 (01) :81-90