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首页> 外文期刊>Journal of bacteriology >Functions of the Membrane-Associated and Cytoplasmic Malate Dehydrogenases in the Citric Acid Cycle of Corynebacterium glutamicum
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Functions of the Membrane-Associated and Cytoplasmic Malate Dehydrogenases in the Citric Acid Cycle of Corynebacterium glutamicum

机译:膜相关和细胞质苹果酸脱氢酶在谷氨酸棒杆菌柠檬酸循环中的功能

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摘要

Like many other bacteria, Corynebacterium glutamicumpossesses two types of l-malate dehydrogenase, a membrane-associated malate:quinone oxidoreductase (MQO; EC 1.1.99.16) and a cytoplasmic malate dehydrogenase (MDH; EC 1.1.1.37) The regulation of MDH and of the three membrane-associated dehydrogenases MQO, succinate dehydrogenase (SDH), and NADH dehydrogenase was investigated. MQO, MDH, and SDH activities are regulated coordinately in response to the carbon and energy source for growth. Compared to growth on glucose, these activities are increased during growth on lactate, pyruvate, or acetate, substrates which require high citric acid cycle activity to sustain growth. The simultaneous presence of high activities of both malate dehydrogenases is puzzling. MQO is the most important malate dehydrogenase in the physiology of C. glutamicum. A mutant with a site-directed deletion in themqo gene does not grow on minimal medium. Growth can be partially restored in this mutant by addition of the vitamin nicotinamide. In contrast, a double mutant lacking MQO and MDH does not grow even in the presence of nicotinamide. Apparently, MDH is able to take over the function of MQO in an mqo mutant, but this requires the presence of nicotinamide in the growth medium. It is shown that addition of nicotinamide leads to a higher intracellular pyridine nucleotide concentration, which probably enables MDH to catalyze malate oxidation. Purified MDH from C. glutamicum catalyzes oxaloacetate reduction much more readily than malate oxidation at physiological pH. In a reconstituted system with isolated membranes and purified MDH, MQO and MDH catalyze the cyclic conversion of malate and oxaloacetate, leading to a net oxidation of NADH. Evidence is presented that this cyclic reaction also takes place in vivo. As yet, no phenotype of an mdh deletion alone was observed, which leaves a physiological function for MDH in C. glutamicumobscure.
机译:像许多其他细菌一样,谷氨酸棒杆菌具有两种类型的l-苹果酸脱氢酶,一种与膜相关的苹果酸:醌氧化还原酶(MQO; EC 1.1.99.16)和一种细胞质苹果酸脱氢酶(MDH; EC 1.1。)。 1.37)研究了MDH和三种膜相关脱氢酶MQO,琥珀酸脱氢酶(SDH)和NADH脱氢酶的调节。 MQO,MDH和SDH活动根据碳和能源增长而得到协调调节。与葡萄糖生长相比,这些活性在需要高柠檬酸循环活性以维持生长的乳酸,丙酮酸或乙酸盐底物生长期间增加。苹果酸脱氢酶的高活性同时存在令人费解。 MQO是C生理中最重要的苹果酸脱氢酶。谷氨酸。在 mqo 基因中具有定点缺失的突变体不能在基本培养基上生长。通过添加维生素烟酰胺可以使该突变体部分恢复生长。相反,即使存在烟酰胺,缺少MQO和MDH的双突变体也不会生长。显然,MDH能够在 mqo 突变体中接管MQO的功能,但这需要在生长培养基中存在烟酰胺。结果表明,烟酰胺的添加导致较高的细胞内吡啶核苷酸浓度,这可能使MDH催化苹果酸的氧化。从 C中纯化的MDH。在生理pH下,谷氨酸比草酸氧化更容易催化草酰乙酸的还原。在具有分离的膜和纯化的MDH的重构系统中,MQO和MDH催化苹果酸和草酰乙酸的循环转化,从而导致NADH的净氧化。已有证据表明该循环反应也发生在体内。到目前为止,还没有观察到单独的 mdh 缺失表型,从而在 C中留下了MDH的生理功能。谷氨酸晦涩。

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