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马铃薯线粒体中阴离子转运植物解偶联线粒体蛋白的证据。

Evidence for anion-translocating plant uncoupling mitochondrial protein in potato mitochondria.

作者信息

Jezek P, Costa A D, Vercesi A E

机构信息

Department of Membrane Transport Biophysics, Institute of Physiology, Academy of Sciences, 14220 Prague 4, Czech Republic.

出版信息

J Biol Chem. 1996 Dec 20;271(51):32743-8. doi: 10.1074/jbc.271.51.32743.

Abstract

Transport properties of plant mitochondria from potato tubers were investigated using the swelling technique and membrane potential measurements. Proton-dependent swelling of fatty acid-depleted mitochondria in potassium acetate with valinomycin was possible only in the presence of fatty acids (linoleic acid and 12-(4-azido-2-nitrophenylamino)dodecanoic acid) and was inhibited by various purine nucleotides including ATP, GDP, and GTP. Swelling representing uptake of hexanesulfonate was also inhibited by purine nucleotides. Also, the membrane potential of fatty acid-depleted potato mitochondria energized by succinate declined upon the addition of linoleic acid or 12-(4-azido-2-nitrophenylamino)dodecanoic acid, and this decrease was prevented by ATP and other purine nucleotides. These transport activities are identical to those reported for brown adipose tissue mitochondria and related to the uncoupling protein; therefore, we ascribed them to the plant mitochondrial uncoupling protein (PUMP). A major difference between plant and mammalian uncoupling protein is that PUMP transports small hydrophilic anions such as Cl- very slowly, if at all. We suggest that PUMP may play an important role in plant physiology, where a regulated uncoupling and thermogenesis can proceed during fruit and seed development.

摘要

利用肿胀技术和膜电位测量方法,对马铃薯块茎植物线粒体的转运特性进行了研究。在缬氨霉素存在的情况下,脂肪酸耗尽的线粒体在醋酸钾中依赖质子的肿胀现象仅在脂肪酸(亚油酸和12 -(4 - 叠氮基 - 2 - 硝基苯氨基)十二烷酸)存在时才会发生,并且受到包括ATP、GDP和GTP在内的各种嘌呤核苷酸的抑制。代表己磺酸盐摄取的肿胀也受到嘌呤核苷酸的抑制。此外,由琥珀酸供能的脂肪酸耗尽的马铃薯线粒体的膜电位在添加亚油酸或12 -(4 - 叠氮基 - 2 - 硝基苯氨基)十二烷酸后下降,而ATP和其他嘌呤核苷酸可阻止这种下降。这些转运活性与棕色脂肪组织线粒体报道的活性相同,并且与解偶联蛋白有关;因此,我们将它们归因于植物线粒体解偶联蛋白(PUMP)。植物和解偶联蛋白之间的一个主要区别是,PUMP运输小的亲水性阴离子(如Cl-)的速度非常慢,如果有运输的话。我们认为PUMP可能在植物生理学中发挥重要作用,在果实和种子发育过程中,可能会发生有调节的解偶联和产热过程。

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