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Selection procedure for mutants defective in the beta-methylgalactoside transport system of Escherichia coli utilizing the compound 2R-glyceryl-beta-D-galactopyranoside.

A procedure has been devised that allows selection of mutants defective in the beta-methylgalactoside transport system (mgl) of Escherichia coli. This procedure utilizes the compound 2R-glyceryl-beta-d-galactopyranoside (glycerylgalactoside), which is known to be transported by only two transport system in E. coli, namely, the lactose and the beta-methylgalactoside transport systems. Mutants lacking glycerol-3-phosphate dehydrogenase (glpD) are sensitive to glycerol. Similarly, mutants lacking uridine diphosphate-galactose-4-epimerase (galE) are sensitive to galactose. Glycerylgalactoside is an inducer of the lactose operon and also a substrate for beta-galactosidase. Thus, a mgl(+)glpD galE lacY strain will not grow in the presence of glycerylgalactoside owing to accumulated glycerol-3-phosphate, galactose-1-phosphate, and uridine diphosphate-galactose. We have constructed such a strain and shown that mgl mutants can be obtained by selecting for those that grow in the presence of glycerylgalactoside.

Autoradiography↗

Regulation of the Escherichia coli methylgalactoside transport system by gene mglD.

Constitutive activity of the methylgalactoside transport system of Escherichia coli K-12 is shown to result from mutation of a genetic locus distinct from the two previously described regulatory loci for this permease. Employing an autoradiographic procedure whereby constitutive and inducible cells can be differentiated, it is demonstrated that this locus, termed mglD, is 20% cotransducible with ptsF by bacteriophage P1. Selection for constitutive mutants among an inducible population yielded cells who mutations mapped in mglD. Cotransduction of mglD with mglB, minus C, and minus A, three genes required for activity of the methylgalactoside transport system, is 95, 88, and 81%, respectively. The results of recombination studies employing three and four factors indicate that the order of genes in this region is ptsF, mglD, B, C, A.

Autoradiography↗

Roles of individual mgl gene products in the beta-methylgalactoside transport system of Escherichia coli K12.

Previous findings showed that galactose-binding protein defective mutants (mgl B-,A+,C+) of Escherichia coli K12 are still capable of growth on methyl-beta-D-galactopyranoside, while mgl A- and mgl C- mutants are not. When assayed by previous methods, none of these mutants exhibited methylgalactoside transport system activity. In this study, we present a modified assay developed for measuring low levels of transport. Using this assay, we found that mgl B-,A+,C+ mutants defective in galactose-binding protein accumulate methyl-beta-D-galactopyranoside up to six times the concentration gradient while mgl A- and mgl C- mutants failed to accumulate this substrate. Similar results were obtained using D-glyceryl-beta-D-galactopyranoside, another substrate of the methylgalactoside transport system. In contrast, all sugars tested which are not substrates of this system were transported equally by all mgl- mutants. The kinetic parameters of transport in mgl B- mutants were compared to those of the isogenic mgl+ strain which accumulates methyl-beta-D-galactopyranoside against a 10,000-fold concentration gradient. The apparent Km of methyl-beta-D-galactopyranoside influx was 1,000 times greater in mgl B- than in mgl+ strains. In contrast, there was no significant difference between these strains in either the Vmax of substrate influx or the rate of substrate exit. D-Galactose competitively inhibited methyl-beta-D-galactopyranoside influx into both mgl B- and mgl+ strains; the Ki of inhibition in mgl B- cells was 2,000-fold greater than that in mgl+ cells.

Biological Transport, Active↗

Inhibition of methylgalactoside transport in Escherichia coli upon the cessation of unsaturated fatty acid biosynthesis.

The activity of the methylgalactoside transport system of E. coli is impaired upon treatment with 3-decynoyl-N-acetylcysteamine, an inhibitor of unsaturated fatty-acid synthesis. Treated cells are unable to be induced for permease activity, while transport sites synthesized before treatment show a regular loss of activity. The inhibition of methylgalactoside transport occurs at a step after translation of the galactose-binding protein, a component of the permease, and appears to be highly specific, since drug-treated cells show normal viability, protein synthesis, and membrane integrity when transport activity is greatly reduced. A second transport system, the galactoside permease, shows significantly less sensitivity to the inhibitor. That the activity of this permease is maintained in the presence of this inhibitor suggests that the inhibitor does not impair energy coupling.

Biological Transport, Active↗

Identification of the mglA gene product in the beta-methylgalactoside transport system of Escherichia coli using plasmid DNA deletions generated in vitro.

Three genes (mglA, mglB, and mglC) required for active transport of substrate by the methylgalactoside permease were identified in a hybrid ColE1-DNA plasmid isolated from a clone (pLC3-14) of the Clarke-Carbon bank of Escherichia coli genes. A 4.6-kilobase DNA fragment obtained from pLC3-14 was cloned into the plasmid vector pBR322. The presence of the three mgl genes in the resultant plasmid, pMG3, was verified by genetic complementation and biochemical analysis of mgl mutants transformed with pMG3 DNA. Derivatives of pMG3 containing deletions in each mgl gene were constructed; restriction endonuclease mapping and functional analysis of these plasmids allowed us to physically locate the mgl genes within the inserted plasmid DNA and also to identify a heretofore unknown protein component of the transport system. Expression of these plasmids in vivo resulted in the specific synthesis of three major proteins of apparent molecular weight of 19,000, 36,000, and 52,000. The 36,000-dalton protein is the galactose-binding protein previously identified as the mglB product. The 19,000-dalton protein maybe the product of mglD, a regulatory gene mapping outside of the mgl gene cluster. The 52,000-dalton protein is a new permease component which we have identified here as the mglA product based on the observation that pMG6, a plasmid with a 0.6-kilobase mglA deletion, failed to encode for this protein but produced a truncated polypeptide showing a reduction in molecular weight comparable to the extent of the deletion. In bacteria bearing an mglA+, B-, C+ plasmid (Pmg4), the 52,000-dalton protein is located to a large extent (73%) in the membrane fraction.

Autoradiography↗

Regulation of the -methylgalactoside transport system and the galatose-binding protein by the cell cycle of Escherichia coli.

The synthesis of the periplasmic galactose-binding protein of E. coli is regulated by events occurring during its cell cycle, and proceeds in synchronized cells for only a short period after cell division is completed. Transport activity mediated by the beta-methylgalactoside transport system follows closely the synthesis pattern of the binding protein.A mutant, E. coli BUG-6, exhibits temperature-sensitive cell division [Reeve et al. (1970) J. Bacteriol. 104, 1052-1064], synthesizing galactose-binding protein at the permissive but not at the nonpermissive temperature. Galactose-binding protein synthesized at the permissive temperature is not degraded after the culture is shifted to the nonpermissive temperature. Polyacrylamide gel electrophoresis of the periplasmic proteins of BUG-6 grown at the permissive and nonpermissive temperatures suggests that several, but not all, periplasmic proteins are subject to the same regulatory control by the cell cycle as the galactose-binding protein.

Alanine↗

Evidence for binding protein-independent substrate translocation by the methylgalactoside transport system of Escherichia coli K12.

Three genes, mgl A, B, and C, are required for active transport of substrate by the methylgalactose permease of E. coli K12. We report here that only two of these genes are required for substrate translocation, as seen by the ability or inability of isogenic mgl mutants (referred to as Tra+ and Tra minus, respectively) to grow on methyl-beta-D-galactopyranoside, supplied as sole carbon source. Individual mutants of both the Tra+ and Tra minus classes exhibited no detectable intracellular accumulation of methyl-beta-D-galactopyranoside; thus, the Tra+ phenotype cannot be explained by the mutants' levels of residual active transport. The phosphotransferase (Pts), the beta-galactoside (LacY), and the arabinose (Ara E and Ara F) transport systems are not required for substrate translocation by Tra+ cells. The Tra+ phenotype was identified with mutants defective in the mgl B, locus of the galactose-binding protein, by genetic complementation; the Tra minus phenotype was observed with both mgl A and mgl C mutants. The conclusion that the galactose-binding protein is not required for substrate translocation was supported by direct assays of the mgl mutants' binding protein activity. Mutants capable of translocation all showed reduced galactose-binding protein activity; mutants incapable of translocation exhibited binding protein activity equal to that of the mgl+ parent.

Bacterial Proteins↗

Studies on cell adhesion and recognition. I. Extent and specificity of cell adhesion triggered by carbohydrate-reactive proteins (glycosidases and lectins) and by fibronectin.

The extent and the specificity of the initial cell attachment induced by various proteins coated on plastic surfaces have been studied with the following results: (a) Cell adhesion on the surfaces coated with sialidase and beta-galactosidase was as strong as on concanavalin A and limulus lectin-coated surfaces and the reactions were strongly inhibited by glycosidase inhibitors or by competitive substrates. The adhesion on sialidase was inhibited by 2-deoxy-2,3-dehydro-N-acetylneuraminic acid and by polysialoganglioside (GT1b) at low concentration (0.05-0.1 mM). The cell adhesion on beta-galactosidase coat was inhibited by 1,4-D-galactonolactone and beta-methylgalactoside but not by alpha-methylgalactoside. Thus, the initiation of cell adhesion on glycosidase surfaces could be mediated through the interactions of the specific binding sites of the enzyme surface with the cell surface substrates under physiological conditions. (b) Cell adhesion on various lectins could be blocked by various competing monosaccharides at the concentrations similar to the inhibitory concentrations for binding of lectins from solution to the cells. (c) Cell adhesion on fibronectin surfaces as well as on gelatin-coated surfaces was equally inhibited by GT1b at relatively high concentrations (0.25-0.5 mM). Lower concentrations of GT1b (0.05-0.1 mM) inhibited the cell adhesion on surfaces of Limulus lectin and sialidase. It is suggested that the cell adhesion mediated by fibronectin is based on yet unknown interactions in contrast to a specific cell adhesion through glycosidases and lectins.

Animals↗

Type 2 fimbrial lectin-mediated phagocytosis of oral Actinomyces spp. by polymorphonuclear leukocytes.

Phagocytosis of Actinomyces viscosus T14V and A. naeslundii WVU45 by human polymorphonuclear leukocytes in the absence of antibody or complement was mediated by the lectin associated with the type 2 fimbriae of these bacteria. This effect was markedly enhanced by exogenous sialidase, an enzyme also secreted by these actinomyces. Since sialidase treatment of the bacteria did not result in increased phagocytosis, this enzyme presumably acts by unmasking receptors for the fimbrial lectin on phagocytic cells. The viability of A. viscosus T14V, which possesses type 1 and type 2 fimbriae (1+ 2+), and A. naeslundii WVU45, which possesses only type 2 fimbriae (2+), was decreased by at least 98% following incubation with polymorphonuclear leukocytes in the presence of sialidase. Entirely analogous findings were obtained with a 1- 2+ mutant of A. viscosus T14V. In contrast, the phagocytosis of 1+ 2- and 1- 2- mutants of A. viscosus T14V and a 2- mutant of A. naeslundii WVU45 was minimal or absent. Lactose and beta-methylgalactoside inhibited the destruction of the bacteria, whereas cellobiose and alpha-methylgalactoside were ineffective. Thus, the type 2 fimbriae of the oral actinomyces recognize galactose-containing receptors on polymorphonuclear leukocytes which have been exposed by the removal of sialic acid, an interaction that is followed by internalization and subsequent killing of the bacteria.

Actinomyces↗

Diffusion and transfer of antibody proteins from a sugar-based hydrogel.

Diffusion of antibody protein from hydrogel films and hydrogel encapsulated in a microcapillary was studied. Thin hydrogel films were formed by crosslinking 6-acryloyl-B-O-methylgalactoside with N,N'-methylene-bis-acrylamide and the diffusive transport of monoclonal antimouse IgG-FITC into and out of the hydrate films was measured. Diffusion coefficients in 2 and 4% crosslinked hydrogel films were measured. The measured diffusion constants determined for IgG in both the 2 and 4% hydrogel films were comparable to the free diffusion of IgG in bulk water (Dmean approximately 10(-7) cm2/s). In addition, 2% crosslinked hydrogels were prepared in a capillary tube and the transport of antimouse IgG-FITC into and out of the hydrated hydrogel was measured. Kinetic analysis indicated that the protein transport through the capillary hydrogel was faster than would be expected for a simple diffusion process. Finally, by utilizing the diffusion of antibody from the capillary hydrogel, transfer of antibody to a silica surface was demonstrated. A capillary hydrogel loaded with antimouse IgG-FITC was used to transfer the protein to a silica surface forming a 30-micron spot of antibody, which was imaged using fluorescence microscopy. These results may lead to the development of a nonlithographic method of patterning antibodies on surfaces for use in integrated microimmunosensors.

Acrylamides↗

Proton movements coupled to sugar transport via the galactose transport system in Salmonella typhimurium.

We have studied proton movements associated with substrate transport via the galactose transport system in Salmonella typhimurium. The addition of galactose to lightly buffered suspensions of anaerobic, non-metabolizing cells of Salmonella typhimurium, specifically induced for the galactose transport system, causes an increase in extracellularpH as galactose and protons enter the cell together. Other substrates for this transport system, D-fucose, 2-deoxygalactose, glucose and 2-deoxyglucose similarly cause an influx of protons when transported. In contrast, transport via the other major transport system for galactose, the methylgalactoside transport system, is not coupled to H+ influx. Comparison of kinetic data obtained from pH measurements with data obtained from measurement of active transport of galactose via the galactose transport system suggests that the apparent Km of the galactose transport system for this sugar differs under energized and non-energized conditions. At pH 7.2 the permeant anion SCN- increases both the rate and extent of galactose-induced proton influx; at pH 6 the rate, but not the extent is increased by SCN-.

Anaerobiosis↗