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Colonial growth of Neurospora. Sorbose and enzymes alter the composition of the cell wall and induce morphological changes.

L-Sorbose, an agent which induces colonial growth in Neurospora crassa, also induces structural changes in the cell wall. Acid hydrolyzates of cell walls isolated from sorbose-grown (colonial) hyphae contain more glucosamine and less glucose than do hydrolyzates of cell walls obtained from normally growing hyphae. Snail digestive juice, an agent which effects a structural change in the cell wall of N. crassa by liberating from it large quantities of glucose, has been found to induce colonial growth.

Cell Wall↗

Sorbose counterflow as a measure of intracellular glucose in baker's yeast.

Wilkins, Peter O. (New Jersey College of Medicine and Dentistry, Jersey City), and Vincent P. Cirillo. Sorbose counterflow as a measure of intracellular glucose in baker's yeast. J. Bacteriol. 90:1605-1610. 1965.-The intracellular concentration of glucose in metabolizing baker's yeast was determined indirectly from the glucose-induced counterflow of previously accumulated sorbose. The method is based on the concept that sugar transport in yeast is a symmetrical facilitated diffusion. The intracellular glucose concentration increased with an increase in the extracellular concentration and was higher in aerobiosis than in anaerobiosis. The concentrations were considerably greater than those obtained by direct analysis of intracellular glucose. Calculation of the apparent maximal velocity of glucose transport yielded values which varied with the rate of metabolism and the extracellular concentration. This suggests that during glucose metabolism the transport of hexoses includes elements that are not revealed by experiments involving metabolic inhibitors or nonmetabolizable sugars.

Biological Transport↗

ENDOR-assisted study of the stable EPR spectrum of X-irradiated alpha-L-sorbose single crystals: MLCFA and simulation decomposition analyses.

After X irradiation of single crystals of alpha-L-sorbose at 295 K, previous electron paramagnetic resonance (EPR), electron nuclear double resonance (ENDOR), and ENDOR-induced EPR (EI-EPR) results have indicated the formation of at least 10 different free radicals, and also that conceivably each carbon in the pyranose ring is a possible radical center. The radicals appear to be formed mostly by net H-abstraction reactions followed by standard elimination (e.g. beta-OH elimination) reactions or proton shifts, in turn leading to ring opening and fragmentation. In the present work, EPR spectra were recorded at room temperature with the external magnetic field along each of the three crystallographic axes subsequent to careful annealing at different temperatures using a high-temperature cavity. Each of the three sets of spectra was subjected to a maximum likelihood common factor analysis (MLCFA) that contributed to a better understanding of the spectral decays. Furthermore, the most stable spectra were simulated by optimization of previous ENDOR and EI-EPR results. The optimized EPR parameters resulted in excellent simulations of the experimental stable sorbose spectra and hence provided an improved insight of their spectral compositions.

Crystallization↗

Hemolysis in vitro by sorbose, sorbitol and xylitol.

L-sorbose, xylitol and sorbitol solutions (56 mM) were not hemolytic when incubated with erythrocytes of 30 healthy volunteers, 14 thalassemic heterozygotes and in 30 horses, 30 cows and 30 Osborne-Mendel rats. Lysis of dog erythrocytes was most pronounced when incubated with L-sorbose but was also significant in xylitol and sorbitol solutions.

Animals↗

The effect of sorbose on pH of mixed saliva and interproximal plaque.

Stimulated mixed saliva and interproximal plaque were exposed to the ketohexose sorbose. The average pH of an in vitro 1%-sorbose/saliva mixture increased with time when compared with a highly significant pH-decrease of a sucrose/saliva mixture. In contrast to sucrose rinses, the telemetrically recorded pH of interproximal plaque did not drop below pH 5.5 during and subsequent to rinsing with sorbose solutions.

Adult↗

[Purity testing of sorbose and sorbitol using thin layer chromatography on Silufol finished plates].

Different methods had been elaborated for proof and semiquantitative determination of mono-, di- and trisaccharides and of mannitol and sorbitol in sorbose as well as of mannitol, mono-, di- and trisaccharides in sorbitol following their separation by means of Silufol finished plates UV254. According to the results of sample mixtures, there is the possibility to separate from sorbose and to semiquantitatively determine 0.5% fructose and glucose each, 0.3 to 0.5% di- and trisaccharides as well as 1% sorbitol and 5% mannitol. Furthermore 0.5% fructose and glucose each, 0.3-0.5% di- and trisaccharides as well as 5% mannitol can be separated from sorbitol and semiquantitatively be determined.

Chromatography, Thin Layer↗

Cloning of genes coding for L-sorbose and L-sorbosone dehydrogenases from Gluconobacter oxydans and microbial production of 2-keto-L-gulonate, a precursor of L-ascorbic acid, in a recombinant G. oxydans strain.

We have purified L-sorbose dehydrogenase (SDH) and L-sorbosone dehydrogenase (SNDH) from Gluconobacter oxydans T-100 that showed an ability to convert D-sorbitol to 2-keto-L-gulonate (2-KLGA). A genomic library of Gluconobacter oxydans T-100 was screened with a probe, a 180-bp PCR product which was obtained from degenerate oligodeoxyribonucleotides based on the elucidated sequence of the purified SDH (used as primers) and the genomic DNA of G. oxydans T-100 (used as a template). From sequencing of the DNA from a clone positive to the probe, the SNDH and the SDH were estimated to be coded in sequential open reading frames with 1,497 and 1,599 nucleotides, respectively, which was confirmed by expression of the DNA in Escherichia coli that showed both enzymatic activities. The DNA was introduced to a shuttle vector which was prepared from a plasmid of G. oxydans T-100 and pHSG298 to obtain an expression vector designated pSDH155. The production of 2-KLGA by pSDH155 in G. oxydans G624, an L-sorbose-accumulating strain, was improved to 230% compared to that of G. oxydans T-100. Chemical mutation of the host strain to suppress the L-idonate pathway and replacement of the original promoter with that of E. coli tufB resulted in improving the production of 2-KLGA. Consequently, high-level production from D-sorbitol to 2-KLGA (130 mg/ml) was achieved by simple fermentation of the recombinant Gluconobacter.

Acetobacteraceae↗

Construction of a new catabolic pathway for D-fructose in Escherichia coli K12 using an L-sorbose-specific enzyme from Klebsiella pneumoniae.

Starting with a fruK (formerly fpk) mutant of Escherichia coli K12 lacking D-fructose-1-phosphate kinase (E.C. 2.7.1.3.), fructose positive derivatives were isolated after introduction of the cloned gene sorE from Klebsiella pneumoniae coding for an L-sorbose-1-phosphate reductase. The new pathway was shwon to proceed from D-fructose via D-fructose-1-phosphate and D-mannitol-1-phosphate to D-fructose 6-phosphate. It involves a transport system and enzymes encoded in the fru and the mtl operons from E. coli K12 as well as in the sor operon from K. pneumoniae respectively.

Cloning, Molecular↗

Folate requirements of the 2-keto-L-gulonic acid-producing strain Ketogulonigenium vulgare LMP P-20356 in L-sorbose/CSL medium.

In this study, the requirements for growth factors of Ketogulonigenium vulgare LMP P-20356, a 2-keto-L-gulonic acid-producing strain of particular interest for the manufacture of vitamin C, were assessed. Various growth factors were studied in order to obtain improved growth of the strain when cultured in an L-sorbose/corn steep liquor medium. Cultures grown in the presence of reduced mono- and polyglutamated folate derivatives showed a 15- to 20-fold higher biomass content than control cultures lacking these supplements, indicating that the strain has a requirement for folate. Although most folate derivatives used in this study promoted growth, the amplitude of the response varied depending on the compound used. Dihydrofolic acid was found to be the most active form, followed by 5-formyltetrahydrofolic acid, 5-methyltetrahydrofolic acid and tetrahydrofolic acid. Folic acid had no effect. The effectiveness of polyglutamated derivatives was inversely proportional to the polyglutamated chain-length of the derivative used. Our results suggest that the rate-limiting step in the utilisation of monoglutamated folates is most probably related to their transport and/or their intracellular interconversion rather than their polymerisation into polyglutamated forms (physiological forms). The industrial production of 2-keto-L-gulonic acid by K. vulgare LMP P-20356 could be improved by using media in which low-molecular-weight reduced folates are present.

Folic Acid↗

Study of 1-deoxy-1-(indol-3-yl)-L-sorbose, 1-deoxy-1-(indol-3-yl)-L-tagatose, and their analogs.

Alkaline degradation of the ascorbigen 2-C-[(indol-3-yl)methyl]-alpha-L-xylo-hex-3-ulofuranosono-1,4-lactone (1a) led to a mixture of 1-deoxy-1-(indol-3-yl)-L-sorbose (2a) and 1-deoxy-1-(indol-3-yl)-L-tagatose (3a). The mixture of diastereomeric ketoses underwent acetylation and pyranose ring opening under the action of acetic anhydride in pyridine in the presence of 4-dimethylaminopyridine (DMAP) with the formation of a mixture of (E)-2,3,4,5,6-penta-O-acetyl-1-deoxy-1-(indol-3-yl)-L-xylo-hex-1-enitol (4a) and (E)-2,3,4,5,6-penta-O-acetyl-1-deoxy-1-(indol-3-yl)-L-lyxo-hex-1-enitol (5a), which were separated chromatographically. Deacetylation of 4a or 5a afforded cyclised tetrols, tosylation of which in admixture resulted in 1-deoxy-1-(indol-3-yl)-3,5-di-O-tosyl-alpha-L-sorbopyranose (12a) and 1-deoxy-1-(indol-3-yl)-4,5-di-O-tosyl-alpha-L-tagatopyranose (13a). Under alkaline conditions 13a readily formed 2-hydroxy-4-hydroxymethyl-3-(indol-3-yl)cyclopenten-2-one (15a) in 90% yield. Similar transformations were performed for N-methyl- and N-methoxyindole derivatives.

Alkalies↗

Taxonomic characterization of Ketogulonigenium vulgare gen. nov., sp. nov. and Ketogulonigenium robustum sp. nov., which oxidize L-sorbose to 2-keto-L-gulonic acid.

Four bacterial strains that oxidize L-sorbose to 2-keto-L-gulonic acid, a key intermediate in the synthesis of vitamin C, were isolated from soils of geographically distinct locations. All were Gram-negative, facultatively anaerobic, chemoheterotrophic rods. Comparative analysis revealed nearly identical 16S rDNA sequences amongst them (99.7-100% identical) and identified them as members of the alpha-subclass of the Proteobacteria. Phylogenetic analysis identified the closest taxonomically defined genus as Roseobacter (92.1-92.8% identical). On the basis of phylogenetic, phenotypic and genotypic analyses, a new genus is proposed, Ketogulonigenium gen. nov. Based upon these analyses, we also propose the reclassification of strain DSM 4025TP, originally identified as Gluconobacter oxydans, to the genus Ketogulonigenium. Two species are proposed: the type species Ketogulonigenium vulgare gen. nov., sp. nov., consisting of strains 62A-12APP, 266-13BPP and the type strain K. vulgare DSM 4025TP, and Ketogulonigenium robustum gen. nov., sp. nov., consisting of the type strain K. robustum X6LTP (= NRRL B-21627 = KCTC 0858BP). The species affiliation of the fifth strain (291-19PP) remains unresolved.

Base Sequence↗

The HS:19 serostrain of Campylobacter jejuni has a hyaluronic acid-type capsular polysaccharide with a nonstoichiometric sorbose branch and O-methyl phosphoramidate group.

A recent study that examined multiple strains of Campylobacter jejuni reported that HS:19, a serostrain that has been associated with the onset of Guillain-Barré syndrome, had unidentified labile, capsular polysaccharide (CPS) structures. In this study, we expand on this observation by using current glyco-analytical technologies to characterize these unknown groups. Capillary electrophoresis electrospray ionization MS and NMR analysis with a cryogenically cooled probe (cold probe) of CPS purified using a gentle enzymatic method revealed a hyaluronic acid-type [-4)-beta-D-GlcA6NGro-(1-3)-beta-D-GlcNAc-(1-]n repeating unit, where NGro is 2-aminoglycerol. A labile alpha-sorbofuranose branch located at C2 of GlcA was determined to have the L configuration using a novel pyranose oxidase assay and is the first report of this sugar in a bacterial glycan. A labile O-methyl phosphoramidate group, CH3OP(O)(NH2)(OR) (MeOPN), was found at C4 of GlcNAc. Structural heterogeneity of the CPS was due to nonstoichiometric glycosylation with sorbose at C2 of GlcA and the nonstoichiometric, variably methylated phosphoramidate group. Examination of whole bacterial cells using high-resolution magic angle spinning NMR revealed that the MeOPN group is a prominent feature on the cell surface for this serostrain. These results are reminiscent of those in the 11168 and HS:1 strains and suggest that decoration of CPS with nonstoichiometric elements such as keto sugars and the phosphoramidate is a common mechanism used by this bacterium to produce a structurally complex surface glycan from a limited number of genes. The findings of this work with the HS:19 serostrain now present a means to explore the role of CPS as a virulence factor in C. jejuni.

Amides↗

[Suppression of sorbose fermentation of Salmonellae by salicine (author's transl)].

Fermentation of sorbose by Salmonellae splitting this sugar with delay is restrained to a varying degree in presence of salicine, depending on the concentration of this glycoside. There is no support that salicine might become metabolized in this process. A similar salicine effect on the delayed fermentation of dulcitol has not been seen.

Fermentation↗

A model system for increasing the intensity of whole-cell biocatalysis: investigation of the rate of oxidation of D-sorbitol to L-sorbose by thin bi-layer latex coatings of non-growing Gluconobacter oxydans.

We developed a novel <50-microm thick nano-porous bi-layer latex coating for preserving Gluconobacter oxydans, a strict aerobe, as a whole cell biocatalyst. G. oxydans was entrapped in an acrylate/vinyl acetate co-polymer matrix (T (g) approximately 10 degrees C) and cast into 12.7-mm diameter patch coatings (cellcoat) containing approximately 10(9) CFU covered by a nano-porous topcoat. The oxidation of D-sorbitol to L-sorbose was used to investigate the coating catalytic properties. Intrinsic kinetics was studied in microbioreactors using a pH 6.0 D-sorbitol, phosphate, pyruvate (SPP) non-growth medium at 30 degrees C, and the Michaelis-Menten constants determined. By using a diffusion cell, cellcoat and topcoat diffusivities, optimized by arresting polymer particle coalescence by glycerol and/or sucrose addition, were determined. Cryo-FESEM images revealed a two-layer structure with G. oxydans surrounded by <40-nm pores. Viable cell density, cell leakage, and oxidation kinetics in SPP medium for >150 h were investigated. Even though the coatings were optimized for permeability, approximately 50% of G. oxydans viability was lost during cellcoat drying and further reduction was observed as the topcoat was added. High reaction rates per unit volume of coating (80-100 g/L x h) were observed which agreed with predictions of a diffusion-reaction model using parameters estimated by independent experiments. Cellcoat effectiveness factors of 0.22-0.49 were observed which are 20-fold greater than any previously reported for this G. oxydans oxidation. These nano-structured coatings and the possibility of improving their ability to preserve G. oxydans viability may be useful for engineering highly reactive adhesive coatings for multi-phase micro-channel and membrane bioreactors to dramatically increase the intensity of whole-cell oxidations.

Bioreactors↗

Crystal structure of the IIB(Sor) domain of the sorbose permease from Klebsiella pneumoniae solved to 1.75A resolution.

The phosphoenolpyruvate transferase system (PTS) is the major pathway by which bacteria import hexose sugars across the plasma membrane. The PTS transfers a phosphoryl group sequentially via several components from the glycolytic intermediate phosphoenolpyruvate (PEP) to the translocated sugar. It is comprised of the two general proteins enzyme I and HPr, and a sugar-specific enzyme II complex. Sugar translocation is through the membrane domain of the enzyme II complex. The enzyme II complex can belong to one of six families based upon sequence similarity, with the sorbose transporter from Klebsiella pneumoniae a member of the mannose family.The structure of the IIB(Sor) domain was solved to 1.75A resolution by molecular replacement. It has a central core of seven parallel beta-strands surrounded by a total of six alpha-helices. Three helices cover the front face, one the back face with the remaining two capping the central beta-sheet at the top and bottom. The catalytic His15 residue is situated on the surface-exposed loop between strand 1 and helix 1. In addition to the features previously observed in the homologous IIB(Lev) domain from Bacillus subtilis we see new features in the IIB(Sor) structure. First, the catalytic His15 side-chain is fixed in a specific conformation by forming a short hydrogen bond with Asp10, which in turn makes a salt-bridge with Arg8. Second, as observed in other phosphoproteins, an arginine residue (Arg12) is well poised to stabilize a phosphoryl group on His15. Third, we see an Asp/His pair reminiscent of that observed in the IIA(Man) domain from Escherichia coli. Finally, docking of IIA(Man) to IIB(Sor) shows that Arg12 in its current conformation is well positioned to assist the subsequent transfer of the phosphoryl group onto the sugar in line with previous mutagenesis studies.

Crystallography, X-Ray↗

Preparation of L-talose and D-gulose from L-tagatose and D-sorbose, respectively, using immobilized L-rhamnose isomerase.

L-rhamnose isomerase of Pseudomonas sp. LL172 immobilized on BCW 2603 Chitopearl beads was used to produce L-talose and D-gulose. At equilibrium, the production yields of L-talose and D-gulose were determined to be 12 and 10% from L-tagatose and D-sorbose, respectively. The crystallized products were confirmed by HPLC, IR and NMR spectra, and optical rotation measurement analyses.

Journal Article↗