Johnson-Flanagan A M, Spencer M S
Department of Plant Science, University of Alberta, Edmonton, Alberta, Canada, T6G 2P5.
Plant Physiol. 1981 Dec;68(6):1211-7. doi: 10.1104/pp.68.6.1211.
Respiration utilizing NAD-linked substrates in mitochondria isolated from cotyledons of etiolated peas (Pisum sativum L. var. Homesteader) by sucrose density gradient centrifugation exhibited resistance to rotenone. The inhibited rate of alpha-ketoglutarate oxidation was equivalent to the recovered rate of malate oxidation. (The recovered rate is the rate following the transient inhibition by rotenone.) The inhibitory effect of rotenone on malate oxidation increased with increasing respiratory control ratios as the mitochondria developed. The cyanide-resistant and rotenone-resistant pathways followed different courses of development as cotyledons aged. The rotenone-resistant pathway transferred reducing equivalents to the cyanide-sensitive pathway. Malic enzyme was found to be inhibited competitively with respect to NAD by rotenone concentrations as low as 1.67 micromolar. In pea cotyledon mitochondria, rotenone was transformed into elliptone. This reduced its inhibitory effect on intact mitochondria. Malate dehydrogenase was not affected by rotenone or elliptone. However, elliptone inhibited malic enzyme to the same extent that rotenone did when NAD was the cofactor. The products of malate oxidation reflected the interaction between malic enzyme and malate dehydrogenase. Rotenone also inhibited the NADH dehydrogenase associated with malate dehydrogenase. Thus, rotenone seemed to exert its inhibitory effect on two enzymes of the electron transport chain of pea cotyledon mitochondria.
利用蔗糖密度梯度离心法从黄化豌豆(豌豆品种Homesteader)子叶中分离得到的线粒体,利用与NAD相关的底物进行呼吸时,表现出对鱼藤酮的抗性。α-酮戊二酸氧化的抑制率与苹果酸氧化的恢复率相当。(恢复率是指鱼藤酮短暂抑制后的速率。)随着线粒体的发育,鱼藤酮对苹果酸氧化的抑制作用随着呼吸控制率的增加而增强。随着子叶老化,抗氰和抗鱼藤酮途径遵循不同的发育过程。抗鱼藤酮途径将还原当量转移到对氰化物敏感的途径。发现苹果酸酶在低至1.67微摩尔的鱼藤酮浓度下就受到NAD的竞争性抑制。在豌豆子叶线粒体中,鱼藤酮转化为椭圆玫瑰树碱。这降低了其对完整线粒体的抑制作用。苹果酸脱氢酶不受鱼藤酮或椭圆玫瑰树碱的影响。然而,当NAD作为辅因子时,椭圆玫瑰树碱对苹果酸酶的抑制程度与鱼藤酮相同。苹果酸氧化的产物反映了苹果酸酶和苹果酸脱氢酶之间的相互作用。鱼藤酮还抑制与苹果酸脱氢酶相关的NADH脱氢酶。因此,鱼藤酮似乎对豌豆子叶线粒体电子传递链的两种酶发挥抑制作用。