首页> 美国卫生研究院文献>Plant Physiology >Decarboxylation of Malate in the Crassulacean Acid Metabolism Plant Bryophyllum (Kalanchoe) fedtschenkoi (Role of NAD-Malic Enzyme).
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Decarboxylation of Malate in the Crassulacean Acid Metabolism Plant Bryophyllum (Kalanchoe) fedtschenkoi (Role of NAD-Malic Enzyme).

机译:Crassulacean酸代谢植物Bryophyllum(Kalanchoe)fedtschenkoi(NAD-苹果酸酶的作用)中苹果酸的脱羧。

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摘要

The role of NAD-malic enzyme (NAD-ME) in the Crassulacean acid metabolism plant Bryophyllum (Kalanchoe) fedtschenkoi was investigated using preparations of intact and solubilized mitochondria from fully expanded leaves. Intact, coupled mitochondria isolated during the day or night did not differ in their ability to take up [14C]malic acid from the surrounding medium or to respire using malate or succinate as substrate. However, intact mitochondria isolated from plants during the day decarboxylated added malate to pyruvate significantly faster than mitochondria isolated from plants at night. NAD-ME activity in solubilized mitochondrial extracts showed hysteretic kinetics and was stimulated by a number of activators, including acetyl-coenzyme A, fructose-1,6-bisphosphate, and sulfate ions. In the absence of these effectors, reaction progress curves were nonlinear, with a pronounced acceleration phase. The lag period before a steady-state rate was reached in assays of mitochondrial extracts decreased during the photoperiod and increased slowly during the period of darkness. However, these changes in the kinetic properties of the enzyme could not account for the changes in the rate of decarboxylation of malate by intact mitochondria. Gel-filtration experiments showed that mitochondrial extracts contained three forms of NAD-ME with different molecular weights. The relative proportions of the three forms varied somewhat throughout the light/dark cycle, but this did not account for the changes in the kinetics behavior of the enzyme during the diurnal cycle.
机译:使用完整和可溶性的线粒体制剂,研究了NAD-苹果酸酶(NAD-ME)在Crassulacean酸代谢植物Bryophyllum(Kalanchoe)fedtschenkoi中的作用。在白天或晚上分离出的完整,偶合的线粒体从周围培养基吸收[14C]苹果酸或以苹果酸或琥珀酸为底物呼吸的能力没有差异。但是,白天从植物中分离出来的完整线粒体经脱羧处理后添加苹果酸到丙酮酸的速度要比晚上从植物中分离出来的线粒体快得多。溶解的线粒体提取物中的NAD-ME活性表现出滞后动力学,并被许多活化剂刺激,包括乙酰辅酶A,果糖-1,6-双磷酸酯和硫酸根离子。在没有这些效应子的情况下,反应进程曲线是非线性的,具有明显的加速阶段。线粒体提取物测定中达到稳态速率之前的延迟期在光周期中减少,在黑暗期中缓慢增加。但是,这些酶动力学性质的变化不能解释完整线粒体对苹果酸脱羧速率的影响。凝胶过滤实验表明,线粒体提取物含有三种形式的分子量不同的NAD-ME。三种形式的相对比例在整个明/暗循环中都有所不同,但这并未解释酶在昼夜循环中动力学行为的变化。

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