Momken Iman, Fortin Dominique, Serrurier Bernard, Bigard Xavier, Ventura-Clapier Renée, Veksler Vladimir
Cardiologie Cellulaire et Moléculaire U-446 INSERM, Faculté de Pharmacie, Université Paris-Sud, Châtenay-Malabry, 92296, France.
Biochem J. 2002 Nov 15;368(Pt 1):341-7. doi: 10.1042/BJ20020591.
Oxidative capacity of muscles correlates with capillary density and with microcirculation, which in turn depend on various regulatory factors, including NO generated by endothelial nitric oxide synthase (eNOS). To determine the role of eNOS in patterns of regulation of energy metabolism in various muscles, we studied mitochondrial respiration in situ in saponin-permeabilized fibres as well as the energy metabolism enzyme profile in the cardiac, soleus (oxidative) and gastrocnemius (glycolytic) muscles isolated from mice lacking eNOS (eNOS(-/-)). In soleus muscle, the absence of eNOS induced a marked decrease in both basal mitochondrial respiration without ADP (-32%; P <0.05) and maximal respiration in the presence of ADP (-29%; P <0.05). Furthermore, the eNOS(-/-) soleus muscle showed a decrease in total creatine kinase (-29%; P <0.05), citrate synthase (-31%; P <0.01), adenylate kinase (-27%; P <0.05), glyceraldehyde-3-phosphate dehydrogenase (-43%; P <0.01) and pyruvate kinase (-26%; P <0.05) activities. The percentage of myosin heavy chains I (slow isoform) was significantly increased from 24.3+/-1.5% in control to 30.1+/-1.1% in eNOS(-/-) soleus muscle ( P <0.05) at the expense of a slight non-significant decrease in the three other (fast) isoforms. Besides, eNOS(-/-) soleus showed a 28% loss of weight. Interestingly, we did not find differences in any parameters in cardiac and gastrocnemius muscles compared with respective controls. These results show that eNOS knockout has an important effect on muscle oxidative capacity as well on the activities of energy metabolism enzymes in oxidative (soleus) muscle. The absence of such effects in cardiac and glycolytic (gastrocnemius) muscle suggests a specific role for eNOS-produced NO in oxidative skeletal muscle.
肌肉的氧化能力与毛细血管密度和微循环相关,而毛细血管密度和微循环又取决于多种调节因子,包括内皮型一氧化氮合酶(eNOS)产生的一氧化氮(NO)。为了确定eNOS在各种肌肉能量代谢调节模式中的作用,我们研究了皂素通透纤维原位的线粒体呼吸以及从缺乏eNOS(eNOS(-/-))的小鼠分离出的心脏、比目鱼肌(氧化型)和腓肠肌(糖酵解型)中的能量代谢酶谱。在比目鱼肌中,eNOS的缺失导致无ADP时基础线粒体呼吸显著降低(-32%;P<0.05)以及有ADP时最大呼吸显著降低(-29%;P<0.05)。此外,eNOS(-/-)比目鱼肌中总肌酸激酶活性降低(-29%;P<0.05)、柠檬酸合酶活性降低(-31%;P<0.01)、腺苷酸激酶活性降低(-27%;P<0.05)、甘油醛-3-磷酸脱氢酶活性降低(-43%;P<0.01)和丙酮酸激酶活性降低(-26%;P<0.05)。肌球蛋白重链I(慢异构体)的百分比从对照组的24.3±1.5%显著增加到eNOS(-/-)比目鱼肌中的30.1±1.1%(P<0.05),代价是其他三种(快)异构体略有非显著性降低。此外,eNOS(-/-)比目鱼肌重量减轻了28%。有趣的是,与各自的对照组相比,我们未在心脏和腓肠肌的任何参数中发现差异。这些结果表明,eNOS基因敲除对肌肉氧化能力以及氧化型(比目鱼肌)肌肉中的能量代谢酶活性有重要影响。心脏和糖酵解型(腓肠肌)肌肉中不存在此类影响,表明eNOS产生的NO在氧化型骨骼肌中具有特定作用。