Abstract
Two classes of alkaline phosphatase constitutive mutations which comprise the original phoS locus (genes phoS and phoT) on the Escherichia coli genome have been implicated in the regulation of alkaline phosphatase synthesis. When these mutations were introduced into a strain dependent on a single system, the pst system, for inorganic phosphate (P(i)) transport, profound changes in P(i) transport were observed. The phoT mutations led to a complete P(i) (-) phenotype in this background, and no activity of the pst system could be detected. The introduction of the phoS mutations changed the specificity of the pst system so that arsenate became growth inhibitory. Changes in the phosphate source led to changes in the levels of constitutive alkaline phosphatase synthesis found in phoS and phoT mutants. When glucose-6-phosphate or l-alpha-glycerophosphate was supplied as the sole source of phosphate, phoT mutants showed a 3- to 15- fold reduction in constitutive alkaline phosphatase synthesis when compared to the maximal levels found in limiting P(i) media. However, these levels were still 100 times greater than the basal level of alkaline phosphatase synthesized in wild-type strains under these conditions. The phoS mutants showed only a two- to threefold reduction when grown with organic phosphate sources. The properties of the phoT mutants selected on the basis of constitutive alkaline phosphatase synthesis were similar in many respects to those of pst mutants selected for resistance to growth inhibition caused by arsenate. It is suggested that the phoS and phoT genes are primarily involved in P(i) transport and, as a result of this function, play a role in the regulation of alkaline phosphatase synthesis.
MeSH Terms
Alkaline Phosphatase/biosynthesis,metabolism
Arsenic/pharmacology
Biological Transport, Active
Culture Media
Drug Resistance, Microbial
Enzyme Repression
Escherichia coli/drug effects,enzymology,growth & development,metabolism
Genes, Regulator
Glucose/metabolism
Glucosephosphates/metabolism
Glycerol/metabolism
Glycerophosphates/metabolism
Mutation
Phosphates/metabolism
Phosphorus Isotopes
Recombination, Genetic
Spectrophotometry
Stereoisomerism
Transduction, Genetic
Chemicals
Culture Media
Glucosephosphates
Glycerophosphates
Phosphates
Phosphorus Isotopes
Alkaline Phosphatase
Glucose
Arsenic
Glycerol
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Willsky G R
Bennett R L
Malamy M H
References (22)
22 references, click to expand
-
Mutants of Escherichia coli constitutive for alkaline phosphatase.
J Bacteriol. 1961 May;81:835-6
PMID: 13777588
-
Current linkage map of Escherichia coli.
Bacteriol Rev. 1970 Jun;34(2):155-75
PMID: 4918631
-
Properties of two regulating genes for alkaline phosphatase.
J Bacteriol. 1962 Feb;83:297-300
PMID: 13896932
-
An improved method for the colorimetric determination of phosphate.
Biochem J. 1938 Feb;32(2):295-8
PMID: 16746620
-
Inducible system for the utilization of beta-glucosides in Escherichia coli. I. Active transport and utilization of beta-glucosides.
J Bacteriol. 1967 Jan;93(1):254-63
PMID: 5335892
-
Reactivation and hybridization of reduced alkaline phosphatase.
Proc Natl Acad Sci U S A. 1962 Jul 15;48:1230-7
PMID: 14464689
-
Genetic control of basal level of alkaline phosphatase in Escherichia coli.
Mol Gen Genet. 1969 Oct 13;105(2):91-100
PMID: 4904516
-
Genetic control of repression of alkaline phosphatase in E. coli.
J Mol Biol. 1961 Aug;3:425-38
PMID: 13725581
-
Genetic mapping of regulator gene phoS for alkaline phosphatase in Escherichia coli.
J Bacteriol. 1968 Mar;95(3):1182-3
PMID: 4868357
-
Phosphate transport in Escherichia coli.
Biochim Biophys Acta. 1971 Aug 13;241(2):494-506
PMID: 4334147
-
ISOLATION OF A PROTEIN SPECIFIED BY A REGULATOR GENE.
J Mol Biol. 1964 Jun;8:841-52
PMID: 14192076
-
Physiological factors in the regulation of alkaline phosphatase synthesis in Escherichia coli.
J Bacteriol. 1972 May;110(2):616-23
PMID: 4553839
-
Utilization of L-alpha-glycerophosphate by Escherichia coli without hydrolysis.
Proc Natl Acad Sci U S A. 1962 Dec 15;48:2145-50
PMID: 13930693
-
Transduction of linked genetic characters of the host by bacteriophage P1.
Virology. 1955 Jul;1(2):190-206
PMID: 13267987
-
Influence of inorganic phosphate in the formation of phosphatases by Escherichia coli.
Biochim Biophys Acta. 1960 Mar 11;38:460-9
PMID: 13838951
-
Positive control of enzyme synthesis by gene C in the L-arabinose system.
J Bacteriol. 1965 Oct;90(4):946-57
PMID: 5321403
-
Arsenate resistant mutants of Escherichia coli and phosphate transport.
Biochem Biophys Res Commun. 1970 Jul 27;40(2):496-503
PMID: 4919964
-
A proposal for a uniform nomenclature in bacterial genetics.
Genetics. 1966 Jul;54(1):61-76
PMID: 5961488
-
Inducible system for the utilization of beta-glucosides in Escherichia coli. II. Description of mutant types and genetic analysis.
J Bacteriol. 1967 Jan;93(1):264-72
PMID: 5335893
-
Histidine regulation in Salmonella typhimurium. XI. The percentage of transfer RNA His charged in vivo and its relation to the repression of the histidine operon.
J Mol Biol. 1972 Apr 28;66(1):131-42
PMID: 4339187
-
A possible negative feedback phenomenon controlling formation of alkaline phosphomonoesterase in Escherichia coli.
Nature. 1959 May 30;183(4674):1529-30
PMID: 13666805
-
Genetic control of hexose phosphate uptake by Escherichia coli.
Nature. 1969 Dec 27;224(5226):1261-2
PMID: 4902320