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枯草芽孢杆菌中分解代谢物控制蛋白A对糖酵解gapA操纵子的调控:CcpA介导调控的一种新机制

Control of the glycolytic gapA operon by the catabolite control protein A in Bacillus subtilis: a novel mechanism of CcpA-mediated regulation.

作者信息

Ludwig Holger, Rebhan Nicole, Blencke Hans-Matti, Merzbacher Matthias, Stülke Jörg

机构信息

Lehrstuhl für Mikrobiologie, Institut für Mikrobiologie, Biochemie und Genetik der Friedrich-Alexander-Universität Erlangen-Nürnberg, Staudtstr. 5, D-91058 Erlangen, Germany.

出版信息

Mol Microbiol. 2002 Jul;45(2):543-53. doi: 10.1046/j.1365-2958.2002.03034.x.

Abstract

Glycolysis is one of the main pathways of carbon catabolism in Bacillus subtilis. Expression of the gapA gene encoding glyceraldehyde-3-phosphate dehydrogenase, the key enzyme of glycolysis from an energetic point of view, is induced by glucose and other sugars. Two regulators are involved in induction of the gapA operon, the product of the first gene of the operon, the CggR repressor, and catabolite control protein A (CcpA). CcpA is required for induction of the gapA operon by glucose. Genetic evidence has demonstrated that CcpA does not control the expression of the gapA operon by binding directly to a target in the promoter region. Here, we demonstrate by physiological analysis of the inducer spectrum that CcpA is required only for induction by sugars transported by the phosphotransferase system (PTS). A functional CcpA is needed for efficient transport of these sugars. This interference of CcpA with PTS sugar transport results from an altered phosphorylation pattern of HPr, a phosphotransferase of the PTS. In a ccpA mutant strain, HPr is nearly completely phosphorylated on a regulatory site, Ser-46, and is trapped in this state, resulting in its inactivity in PTS phosphotransfer. A mutation in HPr affecting the regulatory phosphorylation site suppresses both the defect in PTS sugar transport and the induction of the gapA operon. We conclude that a low-molecular effector derived from glucose that acts as an inducer for the repressor CggR is limiting in the ccpA mutant.

摘要

糖酵解是枯草芽孢杆菌碳分解代谢的主要途径之一。从能量角度来看,编码甘油醛-3-磷酸脱氢酶(糖酵解关键酶)的gapA基因的表达受葡萄糖和其他糖类诱导。有两个调节因子参与gapA操纵子的诱导,即操纵子第一个基因的产物CggR阻遏物和分解代谢物控制蛋白A(CcpA)。CcpA是葡萄糖诱导gapA操纵子所必需的。遗传学证据表明,CcpA并非通过直接结合启动子区域的靶点来控制gapA操纵子的表达。在此,我们通过对诱导剂谱的生理学分析表明,CcpA仅在由磷酸转移酶系统(PTS)转运的糖类诱导时才是必需的。功能性CcpA是这些糖类高效转运所必需的。CcpA对PTS糖类转运的这种干扰源于PTS磷酸转移酶HPr磷酸化模式的改变。在ccpA突变菌株中,HPr在调节位点Ser-46上几乎完全磷酸化,并被困在这种状态,导致其在PTS磷酸转移中无活性。HPr中影响调节性磷酸化位点的突变可同时抑制PTS糖类转运缺陷和gapA操纵子的诱导。我们得出结论,在ccpA突变体中,源自葡萄糖的作为阻遏物CggR诱导剂的低分子效应物是有限的。

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