Paventi Gianluca, Pizzuto Roberto, Chieppa Gabriella, Passarella Salvatore
Dipartimento di Scienze per la Salute, Università del Molise, Via De Sanctis, 86100 Campobasso, Italy.
FEBS J. 2007 Mar;274(6):1459-69. doi: 10.1111/j.1742-4658.2007.05687.x.
We investigated the metabolism of L-lactate in mitochondria isolated from potato tubers grown and saved after harvest in the absence of any chemical agents. Immunologic analysis by western blot using goat polyclonal anti-lactate dehydrogenase showed the existence of a mitochondrial lactate dehydrogenase, the activity of which could be measured photometrically only in mitochondria solubilized with Triton X-100. The addition of L-lactate to potato tuber mitochondria caused: (a) a minor reduction of intramitochondrial pyridine nucleotides, whose measured rate of change increased in the presence of the inhibitor of the alternative oxidase salicyl hydroxamic acid; (b) oxygen consumption not stimulated by ADP, but inhibited by salicyl hydroxamic acid; and (c) activation of the alternative oxidase as polarographically monitored in a manner prevented by oxamate, an L-lactate dehydrogenase inhibitor. Potato tuber mitochondria were shown to swell in isosmotic solutions of ammonium L-lactate in a stereospecific manner, thus showing that L-lactate enters mitochondria by a proton-compensated process. Externally added L-lactate caused the appearance of pyruvate outside mitochondria, thus contributing to the oxidation of extramitochondrial NADH. The rate of pyruvate efflux showed a sigmoidal dependence on L-lactate concentration and was inhibited by phenylsuccinate. Hence, potato tuber mitochondria possess a non-energy-competent L-lactate/pyruvate shuttle. We maintain, therefore, that mitochondrial metabolism of L-lactate plays a previously unsuspected role in the response of potato to hypoxic stress.
我们研究了从收获后在无任何化学试剂的情况下种植和保存的马铃薯块茎中分离出的线粒体中L-乳酸的代谢情况。使用山羊多克隆抗乳酸脱氢酶进行的蛋白质免疫印迹分析表明存在线粒体乳酸脱氢酶,其活性只能在用Triton X-100溶解的线粒体中通过光度法测量。向马铃薯块茎线粒体中添加L-乳酸导致:(a)线粒体内吡啶核苷酸略有减少,在交替氧化酶抑制剂水杨羟肟酸存在下,其测量的变化速率增加;(b)氧气消耗不受ADP刺激,但受水杨羟肟酸抑制;(c)交替氧化酶被激活,这是通过极谱监测的,而草氨酸(一种L-乳酸脱氢酶抑制剂)可阻止这种激活。结果表明,马铃薯块茎线粒体在L-乳酸铵等渗溶液中以立体特异性方式肿胀,从而表明L-乳酸通过质子补偿过程进入线粒体。外部添加的L-乳酸导致线粒体外丙酮酸的出现,从而有助于线粒体外NADH的氧化。丙酮酸流出速率对L-乳酸浓度呈S形依赖性,并受苯基琥珀酸抑制。因此,马铃薯块茎线粒体具有一种无能量功能的L-乳酸/丙酮酸穿梭机制。所以,我们认为L-乳酸的线粒体代谢在马铃薯对缺氧胁迫的反应中发挥了之前未被怀疑的作用。