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Reversible inhibition of (Na+ + K+)-ATPase with a cardiac glycoside.

The effect of a semisynthetic cardiac glycoside, Actinogen (Ay22241), on Na+ + K+ - ATPase was studied. Ay22241 was found to be as an effective inhibitor of the enzyme as ouabain, Ay22241 inhibition was a time dependent process and was completely reversible. While ouabain inhibition was also time dependent, it was only partially reversible. This reversibility with Ay22241 should make it a useful tool in studying the mode of action of cardiac glycosides.

Adenosine Triphosphatases↗

(Na+,K+)-ATPase and noradrenergic regulation: effects of cardiac glycoside treatment and noradrenergic manipulations.

We examined effects of treatment with cardiac glycosides, in combination with noradrenergic stimulation or depletion, on (Na+,K+)-ATPase activity in rat cerebral cortex, heart, and kidney. Treatment with digitoxin increased the apparent number of (Na+,K+)-ATPase sites in heart, cerebral cortex, and kidney. Ouabain, which crosses the blood-brain barrier poorly, did not affect enzyme in brain but was otherwise similar. Norepinephrine depletion prevented the increase in heart but not in cerebral cortex. Noradrenergic stimulation increased the number of sites in cerebral cortex and in heart. In rats treated with digitoxin, noradrenergic stimulation increased enzyme activity further in heart but not in cerebral cortex. Examination of effects on noradrenergic receptor binding and on norepinephrine metabolite concentrations suggested that, while in heart cardiac glycosides appeared to increase norepinephrine release, in brain there was no effect on release but there may have been appreciable inhibition of norepinephrine reuptake under stimulated conditions.

Animals↗

Effects of K+ on the interaction between cardiac glycosides and Na,K-ATPase.

Inhibition of Na,K-ATPase by cardiac glycosides is at least partially antagonized by K+. The kinetics of the antagonism, however, appear complicated because K+ is capable of reducing both association and dissociation rate constants for the glycoside-enzyme interaction. In order to better understand the effect of K+, inhibition of partially purified Na,K-ATPase obtained from rat brain, guinea-pig heart and rat heart by ouabain, digoxin, digoxigenin, dihydrodigoxin and cassaine were compared in the presence of 1, 3 or 10 mM K+. Higher concentrations of K+ caused a parallel shift to the right in the concentration-inhibition curves for these compounds. For ouabain or digoxin, the extent of the shift was minimal with rat brain enzyme, intermediate with guinea-pig heart enzyme and more substantial with rat heart enzyme. For digoxigenin, dihydrodigoxin or cassaine, the extent of the shift was substantial in all enzyme preparations. These results could not be explained from either the affinity of the enzyme for the compound or its lipid solubility alone. The concentrations of these compounds required to cause a 50 percent inhibition of enzyme activity were markedly different with rat brain enzyme, but relatively similar with rat heart enzyme. The effects of K+, which depend on the source of the enzyme and chemical structures of the compounds, have to be considered in studies on comparative effects of various compounds on Na,K-ATPase, [3H]ouabain binding, sodium pumping and the force of myocardial contraction.

Abietanes↗

Primary structure of a novel N-glycosidic carbohydrate unit, derived from hen ovomucoid. A 500-MHz 1H-NMR study.

The N-glycosidic carbohydrate chains of hen beta-ovomucoid were released from the protein by hydrazinolysis, and separated by HPLC. Primary structural analysis of 3 major fractions was conducted by applying 500-MHz 1H-NMR spectroscopy in combination with methylation analysis. One of the fractions investigated appeared to consist of an intersected penta-antennary structure extended with one Gal residue. The location of the latter in a certain branch could be established unambiguously by NMR. This structure is a novel member of the family of N-glycosidic carbohydrates of glycoproteins.

Animals↗

Fluorescence study on cardiac glycoside binding to the Na,K-pump. Ouabain binding is associated with movement of electrical charge.

Recently we have presented evidence that the fluorescence probe RH 421 can be used to detect binding and release of ions at the extracellular face of the pump since these processes are associated with translocation of electrical charge. Applying this method to experiments with cardiac glycosides we found that: (1) ouabain induced fluorescence changes of the electrochromic dye, RH 421, were caused by the change of charges bound to the enzyme; (2) independent of the sodium concentration, the final fluorescence amplitude indicated that approximately 2 Na+ ions were bound to the pump; (3) the sodium release to the extracellular side involved two distinct electrogenic steps; (4) the kinetics of inhibition depended on the Na(+)-concentration. Experiments with hydrophobic ions indicated that the kinetics of ouabain binding to the Na-ATPase is voltage dependent; and (5) the applied technique is a convenient tool to characterize binding of cardiac glycosides to the Na,K-pump.

Animals↗

Molecular basis for the insensitivity of the Monarch (Danaus plexippus) to cardiac glycosides.

The Monarch (Danaus plexippus) sequesters cardiac glycosides for its chemical defence against predators. Larvae and adults of this butterfly are insensitive towards dietary cardiac glycosides, whereas other Lepidoptera, such as Manduca sexta and Creatonotos transiens are sensitive and intoxicated by ouabain. Ouabain inhibits the Na+,K(+)-ATPase by binding to its alpha-subunit. We have amplified and cloned the DNA sequence encoding the respective ouabain binding site. Instead of the amino acid asparagine at position 122 in ouabain-sensitive insects, the Monarch has a histidine in the putative ouabain binding site, which consists of about 12 amino acids. This change may explain the ouabain insensitivity.

Amino Acid Sequence↗

Characterization by capillary electrophoresis of the surface glycoproteins of ovine lentiviruses before and after treatment with glycosidic enzymes.

Ovine lentiviruses are a group of viruses that infect sheep and goats. These viruses contain a surface glycoprotein (SU) that is very similar among the viral strains. Sera from infected animals react equally well with SU from each strain. Monoclonal antibodies produced to SU can distinguish among some of the viral strains. In order to delineate these differences we treated SU from several viral strains with the glycosidic enzymes. These enzymes included a mixture of exoglycosidases, beta-N-acetyl glucosaminidase, neuraminidase and endoglycosidases D, F and H. After these treatments we observed changes in the reactivities of the monoclonal antibodies that were directed to SU. In order to characterize these changes on the surface epitopes, SU from the different viral strains were subjected to free zone capillary electrophoresis (CZE) using an 0.02 M phosphate buffer at pH 9.0 at a running voltage of 5 kV. Differences were readily seen between SU that had not been treated and SU that had been treated with the glycosidic enzymes. Each viral strain had a characteristic electropherogram. The electropherograms indicated that the heterogeneity of the charge on SU was increased after the enzyme treatments. From these results we have concluded that the carbohydrate moieties play an important role in contributing to the surface charge of SU. This charge affects the nature of its surface epitopes and has an impact on its biological function.

Animals↗

Cardiac glycosides of Beaumontia brevituba and B. murtonii.

Cardiac glycosides from Beaumontia brevituba and B. murtonii were examined. Gentiobiosyl-beta-D-cymaroside and gentiobiosyl-alpha-L-cymaroside of digitoxigenin were isolated from the seeds, unripe fruits, and leaves of B. brevituba, and the leaves of B. murtonii. Oleandrigenin and/or delta 16-digitoxigenin glycosides having the same sugar moieties were not isolated from the leaves of B. brevituba but from the leaves of B. murtonii as well as the seeds of B. brevituba.

Cardiac Glycosides↗

Two flavonol glycosides from Chenopodium quinoa.

Two new flavonol glycosides from the seeds of Chenopodium quinoa have been isolated. Their structures were established as kaempferol 3-apiofuranosyl(1"'----2")rhamnopyranosyl(1""----6")galactoside and kaempferol 3-apiofuranosyl(1"'----2")rhamnopyranosyl(1""----6")galactoside. The main flavonoid glycoside was kaempferol 3-(2,6-dirhamnopyranosyl)galactoside.

Carbohydrate Sequence↗

Carolinoside: a phytosteroidal glycoside from Solanum carolinense.

The glycoside of a new class of phytosteroids has been isolated from Solanum carolinense. The steroidal aglycone (carolinone) is alkylated at C-3 and is identified as C-[(2,4,5-trideoxy-3-keto-4,5-dehydro)-pentulopyranosyl]-(5----3)- (13,14- seco-14 beta,17 alpha-dihydroxy) estrogen. The hydrolytic labile glycosyl moiety is identified as O-(beta-D-glucopyranosyl) (1----1)-[L-(2,6-dideoxy-3-C-methyl)- arabinopyranose]. The linkage of this disaccharide in the steroidal glycoside (carolinoside) is shown to be O-(alpha-pentulopyranosyl)- (1----4)-O-(beta-L-arabinopyranosyl)-(1----1)-D-glucopyranose. Carolinoside occurs at concentrations of 10(-7)-10(-6) M in leaf tissue and was shown to be the host plant specific feeding induction factor for Manduca sexta.

Glycosides↗

Structure-activity relationships of synthetic tigogenyl glycosides.

Haemolytic activities of the five tigogenyl diglycosides and a maltotrioside were much stronger than those of nine monoglycosides. Among these glycosides, the glucoside, galactoside, maltoside, lactoside, gentiobioside, melibioside and maltotrioside had strong antifungal activity. By contrast, none of these glycosides showed any antibacterial activity.

Anti-Infective Agents↗

Aroma glycosides from Hovenia dulsis.

From the fresh leaves of Hovenia dulsis var. tomentella, two new aroma glycosides named kenposide A and B have been isolated together with the known glycoside, icariside C1. Their structures were determined on the basis of chemical and spectral evidence.

Carbohydrate Sequence↗

Phenylpropanoid and iridoid glycosides from Pedicularis spicata.

One new phenylpropanoid glycoside, pedicularioside H, and five known glycosides, gardoside methyl ester, shanzhiside methyl ester, 5-deoxypulchelloside I, verbascoside and pedicularioside A, were isolated from whole plants of Pedicularis spicata. On the basis of the spectral data, chemical evidence and comparison with authentic samples, pedicularioside H was determined to be 1'-O-beta-D-(3-methoxy-4-hydroxy-beta-phenyl)-ethyl-4'-O-feruloyl- beta-D- apiosyl(1----3')-alpha-L-rhamnosyl-(1----6')-glucopyranoside .

Carbohydrate Sequence↗

Acylated pelargonidin glycosides in the red-purple flowers of Pharbitis nil.

Four acylated pelargonidin glycosides and pelargonidin 3-sophoroside-5-glucoside were isolated from 23 red-purple cultivars of Pharbitis nil. The acylated anthocyanins were all based on pelargonidin 3-sophoroside-5-glucoside and were identified as the 3-O-[2-O-(beta-D-glucopyranosyl)-6-O-(trans-caffeyl)-beta-D- glucopyranoside]-5-O-(beta-D-glucopyranoside), the 3-O-[2-O-(6-O-(trans-3-O-(beta-D-glucopyranosyl)caffeyl)-beta- D-glucopyranosyl)-beta-D-glucopyranoside]-5-O-(beta-D-glucopyranoside), the 3-O-[2-O-(6-O-(trans-3-O-(beta-D-glucopyranosyl)caffeyl)-beta- D-glucopyranosyl)-6-O-(trans-caffeyl)-beta-D-glucopyranoside]-5-O-(beta- D-glucopyranoside); and the 3-O-[2-O-(6-O-(trans-3-O-(beta-D-glucopyranosyl)caffeyl)-beta-D- glucopyranosyl)-6-O-(trans-4-O-(6-O-(trans-3-O-(beta-D- glucopyranosyl)caffeyl)- beta-D-glucopyranosyl)caffeyl)-beta-D-glucopyranoside]-5-O-(beta-D- glucopyranoside). By the analysis of these anthocyanin constituents variously in 23 cultivars, it was found that the red flower colour gradually changed into more bluish colour with increasing numbers of caffeic acid residues in the acylated pelargonidin glycosides. The stabilities of these anthocyanins increased in the order of increasing caffeyl substitution.

Anthocyanins↗

Two phenylpropanoid glycosides from Leonurus glaucescens.

Two new phenylpropanoid glycosides, leonosides A and B, and two known glycosides lavandulifolioside and verbascoside, were isolated from the aerial parts of Leonurus glaucescens. On the basis of chemical and spectral evidence, leonosides A and B were shown to be beta-(3,4-dihydroxyphenyl)-ethyl-O-alpha-L-arabinopyranosyl-(1---- 2)-alpha-L- rhamnopyranosyl-(1----3)-4-O-feruloyl-beta-D-glucopyranoside and beta-(3-hydroxy, 4-methoxyphenyl)-ethyl-O-alpha-L-arabinopyranosyl-(1----2)- alpha-L-rhamnopyranosyl-(1----3)-4-O-feruloyl-beta-D-glucopyranosi de, respectively.

Carbohydrate Sequence↗

Triterpene glycosides from Schefflera octophylla.

In addition to 3-epi-betulinic acid, three triterpene glycosides were isolated from leaves of Schefflera octophylla. The structures of the glycosides have been determined as 28-O-[alpha-L-rhamnopyranosyl(1----4)-O-beta-D-glucopyranosyl(1----6)-be ta-D- glucopyranosides of 3 alpha-hydroxy-lup-20(29)-ene-23,28-dioic acid, 3 alpha,11 alpha- dihydroxy-lup20(29)-ene-23,28-dioic acid and 3-epi-betulinic acid by spectroscopic data and chemical transformations. The last two compounds were found for the first time in the plant kingdom.

Carbohydrate Sequence↗

Cyanohydrin glycosides with unusual sugar residues: revised structure of passitrifasciatin.

The cyclopentanoid cyanohydrin glycoside passitrifasciatin was reisolated, and shown to be (1S,4R)-1-(beta-D-gluopyranosyloxy)-4-(6-deoxy-beta-D-allopyran osyloxy)-2-cyclopentene-1-carbonitrile, using one- and two dimensional NMR spectroscopy, selective acid-catalysed cleavage of the glycosidic linkage of 6-deoxy-D-allose, and optical rotation data.

Carbohydrate Sequence↗

A pregnane glycoside from the roots of Mandevilla pentlandiana.

A pregnane triglycoside containing a new genin 3 beta,14 beta-dihydroxy-21-methoxy-5 beta-pregnan-20-one has been isolated from the dried roots of Mandevilla pentlandiana. Chemical and spectroscopic evidence for the glycoside are consistent with the structure 3 beta, 14 beta-dihydroxy-21-methoxy-5 beta-pregnan-20-one-3-O-beta-D- diginopyranosyl-(1----4)-O-beta-D-cymaropyranosyl-(1----4)-O -beta-D-cymaropyranoside. It is noteworthy that 3 beta,14 beta,21-trihydroxy 5 beta-pregnan-20-one, biosynthetically related to the genin of this glycoside, has been proved to be a precursor of cardenolides, also produced by this plant.

Carbohydrate Sequence↗