首页> 外文OA文献 >Phosphorylation of HPr by the Bifunctional HPr Kinase/P-Ser-HPr Phosphatase from Lactobacillus casei Controls Catabolite Repression and Inducer Exclusion but Not Inducer Expulsion
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Phosphorylation of HPr by the Bifunctional HPr Kinase/P-Ser-HPr Phosphatase from Lactobacillus casei Controls Catabolite Repression and Inducer Exclusion but Not Inducer Expulsion

机译:干酪乳杆菌的双功能HPr激酶/ P-Ser-HPr磷酸酶对HPr的磷酸化控制了分解代谢物的抑制和诱导物的排除,但不诱导物的排出

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摘要

We have cloned and sequenced the Lactobacillus casei hprK gene encoding the bifunctional enzyme HPr kinase/P-Ser-HPr phosphatase (HprK/P). Purified recombinant L. casei HprK/P catalyzes the ATP-dependent phosphorylation of HPr, a phosphocarrier protein of the phosphoenolpyruvate:carbohydrate phosphotransferase system at the regulatory Ser-46 as well as the dephosphorylation of seryl-phosphorylated HPr (P-Ser-HPr). The two opposing activities of HprK/P were regulated by fructose-1,6-bisphosphate, which stimulated HPr phosphorylation, and by inorganic phosphate, which stimulated the P-Ser-HPr phosphatase activity. A mutant producing truncated HprK/P was found to be devoid of both HPr kinase and P-Ser-HPr phosphatase activities. When hprK was inactivated, carbon catabolite repression of N-acetylglucosaminidase disappeared, and the lag phase observed during diauxic growth of the wild-type strain on media containing glucose plus either lactose or maltose was strongly diminished. In addition, inducer exclusion exerted by the presence of glucose on maltose transport in the wild-type strain was abolished in the hprK mutant. However, inducer expulsion of methyl β-d-thiogalactoside triggered by rapidly metabolizable carbon sources was still operative in ptsH mutants altered at Ser-46 of HPr and the hprK mutant, suggesting that, in contrast to the model proposed for inducer expulsion in gram-positive bacteria, P-Ser-HPr might not be involved in this regulatory process.
机译:我们已经克隆并测序了编码双功能酶HPr激酶/ P-Ser-HPr磷酸酶(HprK / P)的干酪乳杆菌hprK基因。纯化的重组干酪乳杆菌HprK / P在调节Ser-46上催化HPr(磷酸烯醇丙酮酸:碳水化合物磷酸转移酶系统的磷酸载体蛋白)的ATP依赖性磷酸化,以及丝氨酰磷酸化HPr(P-Ser-HPr)的去磷酸化。 HprK / P的两个相反的活性受果糖1,6-双磷酸果糖(刺激HPr磷酸化)和无机磷酸酯(刺激P-Ser-HPr磷酸酶活性)的调节。发现突变体产生截短的HprK / P没有HPr激酶和P-Ser-HPr磷酸酶活性。当hprK失活时,N-乙酰氨基葡糖苷酶的碳分解代谢阻遏作用消失,并且野生型菌株在含葡萄糖加乳糖或麦芽糖的培养基上双生生长期间观察到的迟滞期大大减少。另外,在hprK突变体中消除了由于葡萄糖的存在对野生型菌株中的麦芽糖运输施加的诱导物排斥。然而,由快速代谢的碳源触发的甲基β-d-硫代半乳糖苷的诱导剂驱除仍在HPr Ser-46和hprK突变体的ptsH突变体中起作用,这表明与提出的以克阳性细菌P-Ser-HPr可能不参与此调控过程。

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