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Regulation of Escherichia coli pyrC by the purine regulon repressor protein. 总被引:1,自引:10,他引:1 下载免费PDF全文
The purine regulon repressor, PurR, was identified as a component of the Escherichia coli regulatory system for pyrC, the gene that encodes dihydroorotase, an enzyme in de novo pyrimidine nucleotide synthesis. PurR binds to a pyrC control site that resembles a pur regulon operator and represses expression by twofold. Mutations that increase binding of PurR to the control site in vitro concomitantly increase in vivo regulation. There are completely independent mechanisms for regulation of pyrC by purine and pyrimidine nucleotides. Cross pathway regulation of pyrC by PurR may provide one mechanism to coordinate synthesis of purine and pyrimidine nucleotides. 相似文献
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Robert Shoeman Betty Redfield Timothy Coleman Nathan Brot Herbert Weissbach Ronald C. Greene Albert A. Smith Isabelle Saint-Girons Mario M. Zakin Georges N. Cohen 《BioEssays : news and reviews in molecular, cellular and developmental biology》1985,3(5):210-213
The genes involved in methionine biosynthesis are scattered throughout the Escherichia coli chromosome and are controlled in a similar but not coordinated manner. The product of the metJ gene and S-adenosylmethionine are involved in the repression of this ‘regulon’. 相似文献
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Dual transcriptional regulation of the Escherichia coli phosphate-starvation-inducible psiE gene of the phosphate regulon by PhoB and the cyclic AMP (cAMP)-cAMP receptor protein complex 下载免费PDF全文
Kim SK Kimura S Shinagawa H Nakata A Lee KS Wanner BL Makino K 《Journal of bacteriology》2000,182(19):5596-5599
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Regulation of transcription of the glnALG operon of Escherichia coli by protein phosphorylation 总被引:2,自引:0,他引:2
B Magasanik 《Biochimie》1989,71(9-10):1005-1012
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B L Wanner 《Journal of molecular biology》1986,191(1):39-58
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A Torriani 《BioEssays : news and reviews in molecular, cellular and developmental biology》1990,12(8):371-376
Most of the essential cellular components, like nucleic acids, lipids and sugars, are phosphorylated. The phosphate equilibrium in Escherichia coli is regulated by the phosphate (Pi) input from the surrounding medium. Some 90 proteins are synthesized at an increased rate during Pi starvation and the global control of the cellular metabolism requires cross-talk with other regulatory mechanisms. Since the Pi concentration is normally low in E. coli's natural habitat, these cells have devised a mechanism for synthesis of about 15 proteins to accomplish two specific functions: transport of Pi and its intracellular regulation. The synthesis of these proteins is controlled by two genes (the phoB-phoR operon), involving both negative and positive functions. PhoR protein is a histidine protein kinase, induced in Pi starvation and is a transmembrane protein. It phosphorylates the regulator protein PhoB which is also Pi starvation-induced. The PhoB phosphorylated form binds specifically to a DNA sequence of 18 nucleotides (the pho Box), which is part of the promoters of the Pho genes. The genes controlled by phoB constitute the Pho regulon. The repression of phoA (the gene encoding alkaline phosphatase) by high Pi concentrations in the medium requires the presence of an intact Pst operon (pstS, pstC, pstA, pstB and phoU) and phoR. The products of pstA and pstC are membrane bound, whereas the product of pstS is periplasmic and PstB and PhoU proteins are cytoplasmic. The function of the PhoU protein may be regulated by cofactor nucleotides and may be involved in signaling the activation of the regulon via PhoR. 相似文献
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Regulation of components of the Pseudomonas aeruginosa phosphate-starvation-inducible regulon in Escherichia coli 总被引:4,自引:2,他引:4
Plasmids pPBP and pRS-XP containing the cloned genes for the Pseudomonas aeruginosa phosphate-starvation-inducible periplasmic phosphate-binding protein and outer membrane porin P (oprP), respectively, were introduced into various Escherichia coli Pho-regulon regulatory mutants. Using Western immunoblots and specific antisera, the production of both gene products was observed to be under the control of regulatory elements of the E. coli Pho regulon. Sequencing of the region upstream of the translational start site of the oprP gene revealed a 'Pho box' with strong homology to the E. coli consensus 'Pho box', the putative binding site of the PhoB activator. Since P. aeruginosa and E. coli belong to different families and have quite different GC contents, these data suggest strong evolutionary conservation of regulatory elements of the Pho regulon. 相似文献
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Regulation of the multiple antibiotic resistance (mar) regulon by marORA sequences in Escherichia coli. 总被引:2,自引:1,他引:2 下载免费PDF全文
The mar operon and adjacent sequences were subcloned on a low-copy-number plasmid to identify essential regulatory elements. A 1.1-kbp fragment containing 133 bp of the operator-promoter region (marO), the full marRA gene sequences, and only 10 of 72 marB codons provided a dela mar strain with normal repressibility and inducibility and the ability to beget mar constitutive mutants. 相似文献
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Role of the catabolite activator protein in the maltose regulon of Escherichia coli. 总被引:4,自引:20,他引:4 下载免费PDF全文
C Chapon 《Journal of bacteriology》1982,150(2):722-729
The maltose regulon consists of three operons controlled by a positive regulatory gene, malT. Deletions of the gene crp were introduced into strains which carried a malT-lacZ hybrid gene. From the observed reduction in beta-galactosidase activity it was concluded that the expression of malT-lacZ, and therefore of malT, is controlled by the catabolite activator protein (CAP), the product of the gene crp. Mutations were obtained which allowed a malT-lacZ hybrid gene to be expressed at a high level even in the absence of CAP. These mutations were shown to be located in or close to the promoter of the malT gene and were called malTp. The malTp mutations were transferred in the cis position to a wild-type malT gene. In the resulting strains, the expression of two of the maltose operons, malEFG and malK-lamB, still required the action of CAP, whereas that of the third operon, malPQ, was CAP independent. Therefore, in wild-type cells, CAP appears to control malPQ expression mainly, if not solely, by regulating the concentration of MalT protein in the cell. On the other hand, it controls the other two operons more stringently, both by regulating malT expression and by a more direct action, probably exerted in the promoters of these operons. 相似文献