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E McFall

Publications and source records attributed to E McFall.

At least 19 recordsLinked to original sources

D-serine deaminase is a stringent selective marker in genetic crosses.

The presence of the locus for D-serine deaminase (dsd) renders bacteria resistant to growth inhibition by D-serine and enables them to grow with D-serine as the sole nitrogen source. The two properties permit stringent selection in genetic crosses and make the D-serine deaminase gene an excellent marker, especially in the construction of strains for which the use of antibiotic resistance genes as selective markers is not allowed.

Cloning, Molecular↗

Organization and transcriptional regulation of the Escherichia coli K-12 D-serine tolerance locus.

We have reinvestigated the genetic organization and the transcription regulation of the dsd operon of Escherichia coli. By combining genetic and biochemical studies, it is demonstrated that the regulatory region of the operon and the gene encoding the specific regulator of D-serine tolerance (dsdC) had been misplaced in previous work on the dsd system. Also, the previous erroneous DNA sequence of the dsdC gene has been corrected. It turned out that an additional gene (dsdX) is present immediately upstream of dsdA (encoding D-serine deaminase) and that dsdC is located adjacent to dsdX. The dsdXA genes are cotranscribed from a common promoter region present in the dsdX-dsdC intercistronic region. The DsdC activator belongs to the LysR-type of transcriptional regulators and is absolutely required for dsdA expression. Additionally, the activity of the dsdXA promoter depends on the cyclic AMP receptor protein, and the two activators act in concert to synergistically activate transcription.

Amino Acid Sequence↗

Effects of structural changes in the dsdA-dsdC intergenic region on D-serine deaminase synthesis.

Single-base-pair changes well upstream of its transcription initiation site resulted in partially to fully constitutive expression of the D-serine deaminase structural gene, dsdA, independently of the cyclic AMP-cyclic AMP-binding protein complex and of the specific D-serine deaminase activator protein. These promoter mutations appear to define a consensus sequence that is repeated several times. Basal expression of dsdA+ was also strongly enhanced by subcloning on multicopy plasmids, by the DNA gyrase inhibitor novobiocin, and in dsdC(Con) mutants by increasing growth temperature. These results suggest that activation of dsdA+ expression by the dsdC-encoded protein involves distortion of promoter DNA. A dsdA translation start at bp -731 was verified by subcloning of dsdC+. Plasmid-specified activator at a high concentration interfered with chromosomal dsdC(Con) expression, and the interference was enhanced by deletion of most of the intergenic region from the plasmid. Even at a high concentration, however, plasmid-specified activator did not activate expression of chromosomal dsdA+, and in one case it was actually repressive. These results confirm the strong cis tropism of plasmid-specified dsdC-encoded protein and suggest that it is mediated by multiple sites in the dsdA-dsdC intergenic region.

Base Sequence↗

D-serine dehydratase from Escherichia coli. DNA sequence and identification of catalytically inactive glycine to aspartic acid variants.

We have identified two glycyl residues whose integrity is essential for the catalytic competence of a model pyridoxal 5'-phosphate requiring enzyme, D-serine dehydratase from Escherichia coli. This was accomplished by isolating and sequencing the structural gene from wild type E. coli and from two mutant strains that produce inactive D-serine dehydratase. DNA sequencing indicated the presence of a single glycine to aspartic acid replacement in each variant. The amino acid replacements lie in a glycine-rich region of D-serine dehydratase well removed from pyridoxal 5'-phosphate-binding lysine 118 in the primary structure of the enzyme. The striking effect of these two glycine to aspartic acid replacements on catalytic activity, the conservation of the glycine-rich region in several pyridoxal 5'-phosphate-dependent enzymes that catalyze alpha/beta-eliminations, and the placement of similar glycine-rich sequences in well-characterized active site structures suggest that the glycine-rich region interacts with the cofactor at the active site of the enzyme.

Amino Acid Sequence↗

DNA sequence of the D-serine deaminase activator gene dsdC.

We have determined the DNA sequence of dsdC, the gene that encodes the D-serine deaminase activator protein of Escherichia coli K-12. The sequence contains a single open reading frame that terminates in a UGA codon. One the basis of the size of the protein, 33 kilodaltons, and the amino acid sequence encoded by the open reading frame, we identified a likely translation initiation codon 731 base pairs upstream of the translation initiation codon for the divergently transcribed D-serine deaminase gene. There is a broad range of codon usage, not surprising in view of the weak expression of the gene. The N-terminal two-thirds of the activator is arginine-lysine rich and quite polar; the remainder is more neutral. The segment of the protein that seems most likely to have potential to form the helix-turn-helix structure characteristic of DNA-regulatory proteins is located near the end of the polar region. The protein contains a region with significant homology to lambda attB.

Amino Acid Sequence↗

In vivo D-serine deaminase transcription start sites in wild-type Escherichia coli and in dsdA promoter mutants.

The D-serine deaminase structural (dsdA) and regulatory (dsdC) genes are transcribed with opposite polarity from an intergenic region comprising more than 600 base pairs. The order of genes in the dsd region is supN-dsdA-dsdC-aroC---his. The DNA sequence of the intergenic region has been slightly revised from a previously published version (E. McFall and L. Runkel, J. Bacteriol. 154:1508-1512, 1983). The dsdA gene is preceded by a long open reading frame. The dsdA in vivo transcription start sites for the wild type (base pair +1) and for three phenotypically distinct promoter constitutive mutants were determined by the S1 nuclease method. They are identical and are located about 81 base pairs upstream of the translation start site. D-Serine deaminase regulation is normal in rho mutants. Possible mechanisms for dsdA activation are discussed.

Amino Acid Sequence↗

cis-acting proteins.

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Bacteriophage lambda↗

Purification and characterization of D-serine deaminase activator protein.

We purified the dsdC gene product, the specific activator of dsdA (D-serine deaminase) gene expression, to about 25% homogeneity from a strain in which its expression was amplified 100-fold. The purification involved, successively: DNase and high-salt treatment of cell extracts, DNA-cellulose chromatography, and Dyematrex (Amicon Corp.) column chromatography. We identified the protein as a discrete spot on two-dimensional O'Farrell gels after the DNA-cellulose step and quantitated it by densitometry. The active form was found to be a dimer. We estimated that there were eight activator dimers per wild-type cell. The activator is a slightly basic protein, with an experimental Km for its ligand D-serine of about 7 X 10(-6)M. The low concentration of the activator in wild-type cells and its autorepression may explain the previously observed partial dominance of dsdC+ in dsdCc/dsdC+ merodiploids.

Bacterial Proteins↗

Identification and control of synthesis of the dsdC activator protein.

Operon fusions between the D-serine deaminase regulatory and structural genes and lacZ were constructed and used to examine the control of expression of the positive regulatory gene, dsdC. Merodiploid strains containing both dsdCp::Mu d (lac Apr) and dsdC+A+ produced only one-fourth as much beta-galactosidase as did the haploid dsdCp::Mu d (lac Apr) strains, indicating that the dsdC+ product repressed its own synthesis. The repression was reversed by D-serine. dsdC expression was not depressed in a cya background. The basal level of D-serine deaminase was the same in wild-type and dsdCp fusion strains. The dsdC gene product was identified in maxicell strains harboring dsd plasmids as a 34,000-dalton protein. dsdC gene transcription proceeded clockwise; thus, its promoter is adjacent to that of dsdA.

Bacterial Proteins↗

DNA sequences of the D-serine deaminase control region and N-terminal portion of the structural gene.

We determined the DNA sequence of the D-serine deaminase promoter region and of the N-terminal region of the structural gene. There are possibilities in the promoter for secondary structure and for initiation recognition sequences, and there is an open reading frame. The N-terminal sequence for the structural gene confirms that part of the amino acid sequence previously determined by E. Schlitz and W. Schmitt (FEBS Lett. 134:57-62, 1981), including the active site of the enzyme, and spans the two regions unresolved by their work.

Amino Acid Sequence↗

Physical mapping of the Escherichia coli D-serine deaminase region: contiguity of the dsd structural and regulatory genes.

The genes dsdA, dsdO, and dsdC have been located on a 3.0-kilobase pair (kb) fragment of the Escherichia coli chromosome by a combination of techniques. The loci were first cloned onto lambda and various plasmid vectors. dsd hybrid plasmids were then digested with restriction enzymes, and the fragments were recloned to test for the presence of dsdC or dsdA. In one case, a 4.2-kb restriction fragment containing the dsdA operon was used to form a heteroduplex with a well-defined lambda dsd deoxyribonucleic acid. The results show that dsdA, dsdO, and at least 0.6 kb of dsdC are present on this piece of deoxyribonucleic acid. On the basis of the mapping analysis and the molecular weight of D-serine deaminase, 1.9 kb of the 4.2-kb fragment is accounted for by the three dsd loci. We conclude that dsdO and dsdC are contiguous. A detailed dsd restriction map is presented.

Bacteriophage lambda↗

Position effect on expression of dsd genes cloned onto multicopy plasmids.

In the D-serine deaminase system of Escherichia coli, which is regulated by positive control, we have fouand a complete lack of trans activation in vivo with multicopy dsd hybrid plasmids. A PLASmid carrying the regulatory gene, dsdC+, did not promote expression of chromosomal dsdCO+A+ loci, nor did a chromosomal dsdC+ gene promote expression of plasmid-borne dsdC delta O+A+ (dsd regulatory gene negative) restriction fragments. However, hybrid plasmids that comprise the entire dsd system (dsdC+O+A+) are highly inducible for the enzyme. These dsd hybrid plasmid deoxyribonucleic acids functioned well as templates in the in vitro coupled transcription-translation system. In vitro-synthesized dsdC+ protein promoted expression of the dsdA+ operation efficiently. Exogenously purified dsdC+ protein also activated expression of several dsdC delta O+A+ plasmid deoxyribonucleic acid templates in vitro. An explanation that reconciles these results with previous dominance studies is presented.

Cloning, Molecular↗

Positive control of D-serine deaminase synthesis in vitro.

Efficient constitutive synthesis of D-serine deaminase [D-serine hydro-lyase (deaminating); EC 4.2.1.14] is obtained in vitro by using a slightly modified Zubay system programmed with dsdO6 dsdA+DNA. Synthesis from a dsdO+ dsdA+ template requires active dsdC gene product and 3':5'-cyclic AMP. In vitro synthesis of dsdC product is obtained with a dsdC+ dsdO+ dsdA+ or a dsdCc dsdO+ dsdA+ template; this synthesis is thermosensitive and can be uncoupled from D-serine deaminase synthesis by temperature shift.

Cell-Free System↗

Role of small molecules in regulation of D-serine deaminase synthesis.

Cyclic AMP is required for optimal synthesis of D-serine deaminase synthesis from dsdO+ templates and for optimal hyperinducible synthesis from low constitutive dsdO templates both in vitro and in vivo. Neither D-serine, cyclic AMP, nor dsdC activator has an effect on expression of a high constitutive dsdO template. The synthesis of the dsdC activator itself in vitro is independent of cyclic AMP. Guanosine tetraphosphate does not have a significant effect on in vitro D-serine deaminase synthesis from dsdO+ or dsdO templates. A previously described class of dsdO mutants showing partial catabolite sensitivity of constitutive D-serine deaminase synthesis proved to be low dsdO types. They all contain a low constitutive dsdC mutation; the two effects are additive with regard to level of constitutivity, but only that portion of synthesis attributable to the dsdC mutation is cyclic AMP dependent.

Bacterial Proteins↗

Role of the dsdC activator in regulation of D-serine deaminase synthesis.

The activator of the D-serine deaminase operon, the product of the dsdC gene, has been partially purified. It is reasonably stable to routine purification procedures in the presence of its ligand D-serine, but not in its absence. It loses activity upon dialysis in amino acid-free buffer, but activity is completely restored upon readdition of D-serine. It apparently functions purely as an activator, no repressor function could be demonstrated at suboptimal D-serine concentration. It is a transcriptional control element. The time required for in vitro transcription of D-serine deaminase mRNA, nearly 4 min, is similar to that for beta-galactosidase. Since the beta-galactosidase monomer is a much protein, this is surprisingly long.

Bacterial Proteins↗

Specific in vivo cleavage of D-serine deaminase and properties of tetrameric polypeptide aggregates of the fragments.

The primary D-serine deaminase (D-serine dehydratase, EC 4.2.1.14) of Escherichia coli K-12 is unstable within the cell. The protein, a single polypeptide chain, is cleaved at a lysine residue by a cellular proteolytic activity. Fragments containing the active site then aggregate into tetramers, which retain substrate affinity and show very low catalytic activity. Such degradations may represent an evolutionary mechanism for the generation of new enzymes.

Amino Acids↗

Specialized transduction of D-serine deaminase genes: formation of lysogens that yield high lambda-d dsd/lambda ratios and formation of a dimeric lambda-d dsd.

We have obtained two classes of double lysogens that on induction yield higher titers of lambda-d dsd transducing phage than of helper phage. One class was obtained by lysogenization of strain EM6116 (dsddelta attlambdadelta HfrC) with lambda-dsd type 2 (dsdC+ dsdO+ dsdA+, head-tail substitution). In the absence of either a normal attlambda or the homology of a chromosomal dsd region, the transducing phage integrated at other sites, at least one of which, in strain EM6177, is near the origin of HfrC. On induction, strain EM6177 yields a phage burst of 20 to 50 with a lambdadsd:lambda ratio of 10(4):1. The asnychronously high yield of lambda dsd is attributed to an efficiency of excision greater than that of lambda. The other class was obtained by lysogenization of strain EM1407 (dsdA attlambda+) with lambda-dsd type 2 (dsdO6 dsdA, partial deletion of dsdC). The DNA of mature lambda-dsd type 2 is a complete dimer. It lacks nearly all the phage late genes and b2 and carries about five bacterial genes. It could not be packaged as a monomer but is just within the packaging size limit as a dimer. Models for the derivation of these lambda dsd phages and the high-yielding lysogens are presented.

Chromosome Mapping↗