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致病性奈瑟菌的生理学与代谢:淋病奈瑟菌中的三羧酸循环活性

Physiology and metabolism of pathogenic neisseria: tricarboxylic acid cycle activity in Neisseria gonorrhoeae.

作者信息

Hebeler B H, Morse S A

出版信息

J Bacteriol. 1976 Oct;128(1):192-201. doi: 10.1128/jb.128.1.192-201.1976.

Abstract

Tricarboyxlic acid cycle activity was examined in Neisseria gonorrhoeae CS-7. The catabolism of glucose in N. gonorrheae by a combination of the Entner-Doudoroff and pentose phosphate pathways resulted in the accumulation of acetate, which was not further catabolized until the glucose was depleted or growth became limiting. Radiorespirometric studies revealed that the label in the 1 position of acetate was converted to CO2 at twice the rate of the label in the 2 position, indicating the presence of a tricarboxylic acid cycle. Growth on glucose markedly reduced the levels of all tricarboxylic acid cycle enzymes except citrate synthase (EC 4.1.3.7). Extracts of glucose-grown cells contained detectable levels of all tricarboxylic acid cycle enzymes except aconitase (EC 4.2.1.3), isocitrate dehydrogenase (EC 1.1.1.42), and a pyridine nucleotide-dependent malate dehydrogenase (EC 1.1.1.37). Extracts of cells capable of oxidizing acetate lacked only the pyridine nucleotide-dependent malate dehydrogenase. In lieu of this enzyem, a particulate pyridine nucleotide-independent malate oxidase (EC 1.1.3.3) was present. This enzyme required flavin adenine dinucleotide for activity and appeared to be associated with the electron transport chain. Radiorespirometric studies utilizing labeled glutamate demonstrated that a portion of the tricarboxylic acid cycle functioned during glucose catabolism. In spite of the presence of all tricarboxylic acid cycle enzymes, N. gonorrhoeae CS-7 was unable to grow in medium supplemented with cycle intermediates.

摘要

在淋病奈瑟菌CS-7中检测了三羧酸循环活性。淋病奈瑟菌通过恩特纳-杜德洛夫途径和磷酸戊糖途径相结合来分解葡萄糖,导致乙酸盐积累,直到葡萄糖耗尽或生长受到限制时乙酸盐才会进一步分解代谢。放射性呼吸测定研究表明,乙酸盐1位上的标记物转化为二氧化碳的速率是2位上标记物的两倍,这表明存在三羧酸循环。在葡萄糖上生长显著降低了除柠檬酸合酶(EC 4.1.3.7)外所有三羧酸循环酶的水平。葡萄糖生长细胞的提取物中,除乌头酸酶(EC 4.2.1.3)、异柠檬酸脱氢酶(EC 1.1.1.42)和吡啶核苷酸依赖性苹果酸脱氢酶(EC 1.1.1.37)外,其他所有三羧酸循环酶的水平均可检测到。能够氧化乙酸盐的细胞提取物仅缺乏吡啶核苷酸依赖性苹果酸脱氢酶。取而代之的是,存在一种颗粒状的不依赖吡啶核苷酸的苹果酸氧化酶(EC 1.1.3.3)。该酶的活性需要黄素腺嘌呤二核苷酸,并且似乎与电子传递链相关。利用标记谷氨酸的放射性呼吸测定研究表明,在葡萄糖分解代谢过程中,部分三羧酸循环发挥了作用。尽管存在所有三羧酸循环酶,但淋病奈瑟菌CS-7无法在添加了循环中间产物的培养基中生长。

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Acta Pathol Microbiol Scand B. 1977 Apr;85(2):117-24. doi: 10.1111/j.1699-0463.1977.tb01684.x.
8
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9
Gluconate catabolism in Rhizobium japonicum.日本根瘤菌中的葡萄糖酸盐分解代谢
J Bacteriol. 1970 Mar;101(3):698-704. doi: 10.1128/jb.101.3.698-704.1970.
10
Glucose catabolism in Rhizobium japonicum.日本根瘤菌中的葡萄糖分解代谢
J Bacteriol. 1969 Mar;97(3):1184-91. doi: 10.1128/jb.97.3.1184-1191.1969.

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6
The Hfq regulon of .……的Hfq调控子 (原文不完整,翻译可能不准确,你可补充完整原文后继续让我翻译)
FEBS Open Bio. 2017 Apr 25;7(6):777-788. doi: 10.1002/2211-5463.12218. eCollection 2017 Jun.

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The adaptive oxidation of L-glutamic acid in meningococci.
Acta Pathol Microbiol Scand. 1960;48:361-6. doi: 10.1111/j.1699-0463.1960.tb04779.x.
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Intermediate reactions of the tricarboxylic acid cycle in meningococci.脑膜炎球菌中三羧酸循环的中间反应
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The teleonomic significance of biosynthetic control mechanisms.生物合成控制机制的目的性意义。
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Regulation of staphylococcal enterotoxin B.葡萄球菌肠毒素B的调控
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