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W Walczak

Publications and source records attributed to W Walczak.

At least 19 recordsLinked to original sources

Two distinct types of mutations conferring to Escherichia coli K12 capability of D-tryptophan utilization.

We showed that the ability of Escherichia coli K12 tryptophan auxotrophs to utilize D-tryptophan as a substitute for L-tryptophan may result from two types of mutations. The first type consisted in changes in the dadR regulatory site of the dad operon increasing the synthesis of D-amino acid dehydrogenase. The mutations of the second type mapped within the dad A structural gene. They changed the apparent substrate specificity of D-amino acid dehydrogenase. We suppose that the change may be due to an altered enzyme structure which make it more accessible to D-tryptophan.

Alanine

Identification of the dadX gene coding for the predominant isozyme of alanine racemase in Escherichia coli K12.

Evidence is presented that alanine racemase activity in E. coli K12 is due to two distinct gene products. The predominant isozyme is inducible by either alanine stereoisomer and repressible by glucose. The gene dadX coding for its structure is located by the dadA gene determining the structure of D-amino acid dehydrogenase. The regulatory site for the expression of both genes, dadR, is located on the other side of dadA. The orientation of the dad operon established by multiple-point crosses and deletion mapping is as follows: fadR ...dadRAX ...hemA. The dadX alanine racemase activity is unusually refractory to changes of incubation temperature. It differs strikingly from that of the other isozyme, probably the product of the alr gene. The latter isozyme shows a typical dependence upon incubation temperature. The synthesis of alr alanine racemase is constitutive in respect of both alanine and glucose. In dadX mutants, in which alanine racemase activity equals only 15% of that in wild-type cells grown in the absence of an inducer or catabolite repressor, the dad operon cannot be induced by D-alanine. We presume, therefore, that L-alanine is involved more directly than D-alanine in dad operon regulation.

Alanine Racemase

Mutants of Salmonella typhimurium able to utilize D-histidine as a source of L-histidine.

Secondary mutants able to utilize d-histidine, dhu, were isolated in histidine auxotrophs of Salmonella typhimurium. Mutations of one class (dhuA) are closely linked with the hisP locus which codes for a component of histidine permease. The specific activity of l-histidine permeation was estimated as increased two- to seven-fold in dhuA mutants. The dhuB mutants which have not been mapped also had elevated specific activity of l-histidine permeation. The uptake of d-histidine, barely detectable in the parental strains, was prominent in dhuA mutants and showed an apparent Michaelis constant about 1,000-fold higher than that observed with l-histidine. No change was detected in the kinetics of l-histidine permeation. d- and l-histidine competed in the uptake process. Tertiary mutants which lost the ability to grow on d-histidine were isolated by ampicillin counter-selection in dhuA his(-) strains. All of them mapped in the dhuA hisP region. Most of them had all known properties of hisP mutants. It is inferred from these data that the dhuA mutations increase synthesis of components critical to d- and l-histidine permeation.

Carbon Isotopes