首页> 美国卫生研究院文献>Plant Physiology >The Role of Vacuolar Malate-Transport Capacity in Crassulacean Acid Metabolism and Nitrate Nutrition. Higher Malate-Transport Capacity in Ice Plant after Crassulacean Acid Metabolism-Induction and in Tobacco under Nitrate Nutrition
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The Role of Vacuolar Malate-Transport Capacity in Crassulacean Acid Metabolism and Nitrate Nutrition. Higher Malate-Transport Capacity in Ice Plant after Crassulacean Acid Metabolism-Induction and in Tobacco under Nitrate Nutrition

机译:苹果酸的苹果酸转运能力在Crassulacean酸代谢和硝酸盐营养中的作用。硝酸盐营养作用下洋蓟酸代谢诱导后冰厂和烟草中苹果酸的转运能力更高

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摘要

Anion uptake by isolated tonoplast vesicles was recorded indirectly via increased H+-transport by H+-pumping of the V-ATPase due to dissipation of the electrical component of the electrochemical proton gradient, ΔμH+, across the membrane. ATP hydrolysis by the V-ATPase was measured simultaneously after the Palmgren test. Normalizing for ATP-hydrolysis and effects of chloride, which was added to the assays as a stimulating effector of the V-ATPase, a parameter, Jmalrel, of apparent ATP-dependent malate-stimulated H+-transport was worked out as an indirect measure of malate transport capacity. This allowed comparison of various species and physiological conditions. Jmalrel was high in the obligate crassulacean acid metabolism (CAM) species Kalanchoë daigremontiana Hamet et Perrier, it increased substantially after CAM induction in ice plant (Mesembryanthemum crystallinum), and it was positively correlated with NO3 nutrition in tobacco (Nicotiana tabacum). For tobacco this was confirmed by measurements of malate transport energized via the V-PPase. In ice plant a new polypeptide of 32-kD apparent molecular mass appeared, and a 33-kD polypeptide showed higher levels after CAM induction under conditions of higher Jmalrel. It is concluded that tonoplast malate transport capacity plays an important role in physiological regulation in CAM and NO3 nutrition and that a putative malate transporter must be within the 32- to 33-kD polypeptide fraction of tonoplast proteins.
机译:分离的液泡膜小泡对阴离子的吸收是通过H + 的H-sup> + -泵化的V-ATPase的增加的H + -转运而间接记录的,这是由于电化学质子的电耗散整个膜的梯度ΔμH+。在Palmgren测试后,同时测量V-ATPase的ATP水解。归一化ATP水解和氯化物的影响,将其添加到测定中作为V-ATPase的刺激效应,V-ATPase是明显的依赖ATP的苹果酸刺激的H rel > + -运输被认为是苹果酸运输能力的间接度量。这样可以比较各种物种和生理条件。 Jmal rel 在专性的克拉苏兰酸代谢(CAM)物种Kalanchoëdaigremontiana Hamet et Perrier中较高,在冰厂(Mesembryanthemum crystallinum)CAM诱导后其显着增加,并且与NO3 营养。对于烟草,这通过测量通过V-PPase激发的苹果酸转运得到了证实。在冰厂中,出现了一种新的表观分子量为32 kD的多肽,在较高的Jmal rel 条件下CAM诱导后,一种33-kD的多肽显示出更高的水平。结论是,液泡膜苹果酸转运能力在CAM和NO3 -营养中的生理调节中起着重要作用,假定的苹果酸转运蛋白必须在液泡膜蛋白的32-33kD多肽部分内。

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