A rapid method for seperation and identification of several hexuronic acids and hexuronic acid-containing oligosaccharides.
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Acid hydrolysis of the extracellular polysaccharide of Porphyridium cruentum (a unicellular red alga) produced a mixture of aldobiuronic acids and free hexuronic acids. Fractionation of this mixture on an ion-exchange column yielded a hexuronic acid characterized as the title compound. Its identity was confirmed by chromatographic comparisons with the authentic compound, by reduction to the corresponding methylated aldose, by resistance to controlled lead tetra-acetate oxidation and by chemical-ionization mass spectrometry. Complete spectra have been deposited as Supplementary Publication SUP50062 (7 pages) with the British Library (Lending Division), Boston Spa, Wetherby, W. Yorkshire LS23 7BQ, U.K., from whom copies may be obtained under the terms given in Biochem. J. (1976) 153, 5.
Six stereoisomeric hexuronic acids (tert-butyl esters of methyl pyranosides) having the altro, manno, gluco, gulo, galacto, and talo configurations were obtained from cis,trans-tert-butyl 2-methoxy-5,6-dihydro-2H-pyran-6-carboxylate (5). The synthesis involved the following successive steps: epoxidation of the double bond in 5, opening of the epoxides with dimethylamine, Cope degradation of the dimethyl-amino derivatives, and hydroxylation of the double bond in the tert-butyl hex-3-enuronates. All compounds were obtained as pure diastereoisomers in racemic form.
The free acids, sodium salts, and lactones of several hexuronic acids have been studied as their O-trimethylsilyl derivatives by gas-liquid chromatography using SE-30 and XE-60 liquid phases. Silylation was best performed in methyl sulphoxide. The equilibrium between the various forms of a hexuronic acid in methyl sulphoxide was also studied by g.l.c. following silylation. The hexamethyldisilazane used in the silylation disturbed the equilibrium attained in the solvent, but this was overcome by premixing the hexamethyldisilazane with chlorotrimethylsilane. Methyl sulphoxide and the silylating reagents gave a two-phase system in which the derivative was favourably partitioned into the upper layer. Partition coefficients and stabilities of the derivatives were measured, and a g.l.c. method for the analysis of the hexuronic acids was thereby developed. The oximes of the hexuronic acids were studied as alternative derivatives for g.l.c., and their equilibrium compositions and g.l.c. retention times are recorded.
The structures of the isomeric products obtained on trimethylsilylation of naturally occurring hexuronic acids and their sodium salts and lactones have been established by the application of n.m.r. (for anomeric configuration) and mass spectrometry (for ring size). The equilibria of some of the hexuronic acids in methyl sulphoxide involved a larger proportion of furanoid forms than those in water or pyridine. The proportion of furanoses was also increased by the addition of hexamethyldisilazane. Kinetic evidence indicated that two molecules of each hexuronic acid interacted autocatalytically during mutarotation.
Content of hydroxyproline, thyrosine, hexuronic acids, hexoses and dry weight of lungs were studied in animals with pneumoconiosis, caused by various agents: two types of silicosis, induced by crystalline and condensed modifications of silica, and anthracosis, caused by anthracite. The data obtained showed that in all the types of pneumoconiosis dry weight of defatted lungs was increased with simultaneous increase of hydroxyproline content in the tissue. The more pronounced alterations were observed in silicosis. In all the types of pneumoconiosis within the experimental period content of hexuronic acids was higher in impaired animals as compared with control ones; the increase in content of hexuronic acids preceded the accumulation of hydroxyproline. Content of hexoses and thyrosine was distinctly increased within 2 days, which apparently correlated with the processes of exudation. Then it was decreased and at the later steps of the impairment amount of hexoses and thyrosine was shown to increase with simultaneous accumulation of hydroxyproline. Dynamics of accumulation of non-collagen components of connective tissue in lungs depended upon the type of a dust to which the animals were exposed.
Previous automated procedures for the determination of hexuronic acids, hexoses and proteins have been modified to suit the Technicon Auto Analyzer II system. The present methods were highly reproducable and the detection limits showed to be in the order of 10 micrograms/l (hexuronic acids and hexoses) and 60 micrograms/l (protein) when 0.13--0.34 ml of the sample was used.
Growth of Agrobacterium tumefaciens on d-glucuronic acid (GlcUA) or d-galacturonic acid (GalUA) induces formation of hexuronic acid dehydrogenase [d-aldohexuronic acid: nicotinamide adenine dinucleotide (NAD) oxidoreductase]. The dehydrogenase, which irreversibly converts GlcUA or GalUA to the corresponding hexaric acid with the concomitant reduction of NAD, but not of nicotinamide adenine dinucleotide phosphate was purified 60-fold by MnCl(2) treatment, (NH(4))(2)SO(4) fractionation, chromatography on diethylaminoethyl Sephadex and negative adsorption with Ca(3)(PO(4))(2) gel. The pH optimum is 8.0. Other uronic acids, aldohexoses, aldopentoses, and polyols, are not substrates. Reduced nicotinamide adenine dinucleotide is an inhibitor strictly competitive with NAD. Kinetic data indicate that the dehydrogenase induced by growth on GlcUA may not be identical with that induced by growth on GalUA.
Two new, unusual lipid A components have been isolated and characterized from the free lipid A of Rhizobium trifolii ANU843. 2-Amino-2-deoxy-2-N-(27-hydroxyoctacosanoyl)-3-O-(3-hydroxy- tetradecanoyl)-gluco-hexuronic acid and its de-O-acylation product were purified from the chloroform/methanol extract of a mild acid hydrolysate of the lipopolysaccharide by chromatography on C18 reverse-phase columns and layers. The compositions of the two compounds were determined by releasing the acyl components by exhaustive acid-catalyzed methanolysis and identifying them as their methyl esters by gas chromatography and gas chromatography/mass spectrometry. The sugar component was identified by converting it to the alditol acetate derivative of glucosamine in a two-step reduction and identifying it as such by gas chromatography/mass spectrometry. The linkages of the fatty acyl components to the sugar residue and the configuration of the sugar component was confirmed by 1H and 13C NMR spectroscopy. The complete structures of the two compounds were further confirmed by fast atom bombardment mass spectrometry. It is still unsure whether the de-O-acylated derivative was formed from the di-acyl compound by de-O-acylation during acid hydrolysis. These structures represent the first report of 2-amino-2-deoxy-gluco-hexuronic acid in the free lipid A of a Gram-negative bacterium and confirms our earlier contention (Hollingsworth, R.I., and Carlson, R. W. (1989) J. Biol. Chem. 264, 9000-9303) of the involvement of 27-hydroxyoctacosanoic acid in the structure of the lipopolysaccharide of Rhizobium trifolii ANU843.
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