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野油菜黄单胞菌野油菜致病变种中两条果糖转运及磷酸化途径的鉴定

Identification of two fructose transport and phosphorylation pathways in Xanthomonas campestris pv. campestris.

作者信息

de Crécy-Lagard V, Lejeune P, Bouvet O M, Danchin A

机构信息

Unité de Régulation de l'Expression Génétique, Institut Pasteur, Paris, France.

出版信息

Mol Gen Genet. 1991 Jul;227(3):465-72. doi: 10.1007/BF00273939.

Abstract

Fructose was shown to be phosphorylated by a specific phosphoenolpyruvate-dependent phosphotransferase system (PTS) in Xanthomonas campestris pv. campestris. Transposon mutagenesis of X. campestris was performed and two mutants affected in growth on fructose were isolated. Both mutants were deficient in PTS activity. Comparison of the rate of uptake and phosphorylation of fructose in the wild-type and in the mutant strains revealed the presence of a second fructose permeation and phosphorylation pathway in this bacterium: an unidentified permease coupled to an ATP-dependent fructokinase. One of the two mutants was also deficient in fructokinase activity. Chromosomal DNA fragments containing the regions flanking the transposon insertion site were cloned from both mutant strains. Their physical study revealed that the insertion sites were separated by 1.4 kb, allowing the reconstruction of a wild-type DNA fragment which complemented one of the two mutants. The region flanking the transposon insertion site was sequenced in one of the mutants, showing that the transposon had interrupted the gene encoding the fructose EII. The mutant strains also failed to utilize mannose, sucrose and mannitol, suggesting the existence of a branch point between the metabolism of fructose and of these latter carbohydrates.

摘要

已证明果糖可被野油菜黄单胞菌野油菜致病变种中的一种特定的磷酸烯醇丙酮酸依赖性磷酸转移酶系统(PTS)磷酸化。对野油菜黄单胞菌进行了转座子诱变,并分离出两个在果糖上生长受影响的突变体。两个突变体的PTS活性均不足。对野生型和突变菌株中果糖的摄取和磷酸化速率进行比较,结果表明该细菌中存在第二条果糖渗透和磷酸化途径:一种与ATP依赖性果糖激酶偶联的未知通透酶。两个突变体中的一个在果糖激酶活性方面也存在缺陷。从两个突变菌株中克隆了含有转座子插入位点侧翼区域的染色体DNA片段。对它们的物理研究表明,插入位点相隔1.4 kb,从而能够重建一个可互补两个突变体之一的野生型DNA片段。对其中一个突变体中转座子插入位点侧翼区域进行了测序,结果表明转座子中断了编码果糖EII的基因。突变菌株也无法利用甘露糖、蔗糖和甘露醇,这表明果糖代谢与这些碳水化合物代谢之间存在一个分支点。

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