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Biomedical subjects

K Sandvig

Publications and source records attributed to K Sandvig.

At least 163 records · Page 9Linked to original sources

Entry of the toxic proteins abrin, modeccin, ricin, and diphtheria toxin into cells. I. Requirement for calcium.

In the absence of Ca2+ cells were not sensitive to the toxic proteins abrin and modeccin and the sensitivity to ricin and diphtheria toxin was reduced. Calcium deprivation had little effect on the binding and endocytosis of abrin, modeccin, and ricin. The binding of diphtheria toxin to cells was, however, reduced, Verapamil and Co2+ inhibited 45Ca2+ uptake and protected cells against abrin and modeccin at low concentrations of Ca2+. At higher Ca2+ concentrations the protection was overcome. La3+ inhibited strongly 45Ca2+ uptake and protected well against all four toxins, even at high Ca2+ concentrations. Fe3+ also afforded protection although it did not inhibit Ca2+ uptake. The Ca2+ ionophore, A23187, which strongly increases the uptake of 45Ca2+, protected cells well against abrin and modeccin, slightly against diphtheria toxin, but not against ricin. Both Ca2+ deprivation and treatment with A23187 protected well against the hybrid toxin abrin A-chain/ricin B-chain. Such treatment afforded little protection against the hybrid ricin A-chain/abrin B-chain. Apparently the protection against abrin is associated with its A-chain. The calmodulin inhibitor, trifluoperazine, protected strongly against modeccin and diphtheria toxin. The data indicate that Ca2+ is involved in the entry mechanism for abrin, modeccin, and ricin, possibly as a Ca2+ flux together with the toxins.

Abrin↗

Entry of the toxic proteins abrin, modeccin, ricin, and diphtheria toxin into cells. II. Effect of pH, metabolic inhibitors, and ionophores and evidence for toxin penetration from endocytotic vesicles.

The toxicity of abrin, modeccin, and ricin to Vero cells was maximal at neutral and slightly alkaline pH, and it was strongly reduced at pH 6.0 and below. Diphtheria toxin was most toxic at low pH. Binding and endocytosis of abrin, modeccin, and ricin did not vary much within the pH range tested. High concentrations of the carboxylic ionophore Br-X-537A, protected against all four toxins. Combined treatment of cells with an inhibitor of glycolysis and an uncoupler of oxidative phosphorylation strongly inhibited endocytosis of toxins and protected against intoxication. The protective effect of Ca2+ deprivation, of pH 6.0, and of metabolic inhibitors disappeared soon after transfer of the cells to normal medium, whereas the protective effect of Br-X-537A and of trifluoperazine disappeared slowly. The decay rate of the protection by NH4Cl and by the ionophore A23187 differed with the different toxins. Cells exposed to abrin, modeccin, and ricin under protective conditions which did not inhibit endocytosis of the toxins (Ca2+ deprivation, pH 6.0, Br-X-537A), and then treated with antitoxins to inactivate extracellular toxin, were intoxicated when the protection was released. In contrast, cells exposed to toxins while endocytosis was arrested by treatment with metabolic inhibitors were not intoxicated when antitoxins were added and the metabolic inhibitors removed. Modeccin and diphtheria toxin endocytosed in the presence of trifluoperazine and NH4Cl were unable to intoxicate cells. The possibility that endocytosis is a step in the normal entry route of the toxins is discussed.

Abrin↗

Effects of retinoids and phorbol esters on the sensitivity of different cell lines to the polypeptide toxins modeccin, abrin, ricin and diphtheria toxin.

The effects of retinoic acid and 12-O-tetradecanoylphorbol 13-acetate on the sensitivities of a number of cell lines to the toxins modeccin, abrin, ricin and diphtheria toxin were studied. Retinoic acid and some other retinoids were found to protect a number of the cell lines against the toxins. HeLa cells that were protected bound much more retinoic acid than L-cells that were not protected. The tumour promoter 12-O-tetradecanoylphorbol 13-acetate was found to increase the sensitivity of cells to abrin, ricin and modeccin in the absence as well as in the presence of retinoic acid. Neither retinoic acid nor 12-O-tetradecanoylphorbol 13-acetate affected the extent of binding and pinocytotic uptake of toxins by the cells. Apparently retinoic acid and 12-O-tetradecanoylphorbol 13-acetate interfere with the entry of the toxins through the cell membrane.

Abrin↗

Diphtheria toxin entry into cells is facilitated by low pH.

At neutral pH, NH4Cl and chloroquine protected cells against diphtheria toxin. A brief exposure of the cells to low pH (4.5-5.5) at 37 degrees completely abolished this protection. When, to cells preincubated with diphtheria toxin and NH4Cl, neutralizing amounts of anti-diphtheria toxin were added before the pH was lowered, the toxic effect was considerably reduced, but it was not completely abolished. A much stronger toxic effect was seen when antibodies were added immediately after incubation at low pH. Upon a short incubation with diphtheria toxin at low pH, the rate of protein synthesis in the cells decreased much faster than when the normal pH was maintained. The data suggest that, at low pH, diphtheria toxin (or its A fragment) penetrates directly through the surface membrane of the cell. The possibility is discussed that, when the medium has a neutral pH, the entry of diphtheria toxin involves adsorptive endocytosis and reduction of the pH in the vesicles possibly by fusion with lysosomes. Low pH did not facilitate the entry of the closely related toxins abrin, ricin, and modeccin.

Abrin↗

Properties and action mechanism of the toxic lectin modeccin: interaction with cell lines resistant to modeccin, abrin, and ricin.

The toxic lectin modeccin, which inhibits protein synthesis in eukaryotic cells, is cleaved upon treatment with 2-mercaptoethanol into two peptide chains which move in polyacrylamide gels at rates corresponding to molecular weights 28,000 and 38,000. After reduction, the toxin loses its effect on cells, while its ability to inhibit cell-free protein synthesis increases. Like abrin and ricin it inhibits protein synthesis by inactivating the 60S ribosomal subunits. Modeccin binds to surface receptors containing terminal galactose residues. Competition experiments with various glycoproteins indicate that the modeccin receptors are different from the abrin receptors. In addition, they were present on HeLa cells in much smaller numbers. Moreover, mutant lines resistant to abrin and ricin were not resistant to modeccin and vice-versa. The toxin resistance of various mutant cell lines could not be accounted for by a reduced number of binding sites on cells. The data are consistent with the view that the cells possess different populations of binding sites with differences in ability to facilitate the uptake of the toxins and that in the resistant lines the most active receptors have been reduced or eliminated.

Carbohydrate Metabolism↗

Kinetics of binding of the toxic lectins abrin and ricin to surface receptors of human cells.

Kinetic parameters of the interaction of the toxic lectins abrin and ricin with human erythrocytes and HeLa cells have been measured. The binding of 125I-labeled abrin and ricin to human erythrocytes and to HeLa cells at 37 degrees was maximal around pH 7, whereas at 0 degrees the binding was similar over a broad pH range. The binding occurred at similar rates at 0 degrees and 37 degrees with rate constants in the range 0.9 to 3.0 X 10(5) M-1 s-1. The dissociation was strongly temperature-dependent with rate constants in the range 3.4 to 45 X 10(-4) s-1 at 0 degrees and 3.9 to 18 X 10(-3) s-1 at 37 degrees. The presence of unlabeled lectins as well as lactose increased the rate of dissociation. The association constants measured at equilibrium or calculated from the rate constants were between 0.64 X 10(8) M-1 and 8.2 X 10(8) M-1 for abrus lectins, and between 8.0 X 10(6) M-1 and 4.2 X 10(8) M-1 for ricinus lectins. The association constants for the toxins were lower at 37 degrees than at 0 degrees. Isolated ricin B chain appeared to bind with similar affinity as intact ricin. The number of binding sites was estimated to be 2 to 3 X 10(6) per erythrocyte and 1 to 3 X 10(7) per HeLa cell. The binding sites of HeLa cells all displayed a uniform affinity towards abrin and ricin, both at 0 degrees and at 37 degrees. The same was the case with the binding sites of erythrocytes at 0 degrees. However, the data indicated that at 20 degrees erythrocytes possessed binding sites with two different affinities. Only a fraction of the cell-bound toxin appeared to be irreversibly bound and could not be removed by washing with 0.1 M lactose. The fraction of the total amount of bound toxin which became irreversibly bound to HeLa cells was for both toxins about 2 X 10(-3)/min at 37 degrees, whereas no toxin was irreversibly bound at 0 degrees. In the case of erythrocytes no toxin became irreversibly bound, either at 0 degrees or 37 degrees, indicating that the toxins are unable to penetrate into these cells.

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Rates of different steps involved in the inhibition of protein synthesis by the toxic lectins abrin and ricin.

The kinetics of protein synthesis inhibition in a cell-free system from rabbit reticulocyte lysate was studied after addition of abrin and ricin and the isolated A chains. The toxin A chains inhibited protein synthesis at a rate proportional to the amount added. When intact toxins were added to the reticulocyte lysate, the kinetics of protein synthesis inhibition indicated that the A chains must be liberated before ribosome inactivation can take place. The splitting of the toxin in the lysate was directly demonstrated by the use of labeled toxins. The amount of abrin and ricin bound to HeLa cells under different experimental conditions was correlated to the concomitant inhibition of cellular protein synthesis. In the presence of lactose, which inhibits toxin binding, much higher concentrations of toxins were required to inhibit protein synthesis than in the absence of lactose. A linear relationship was found between the lactose concentration in the medium and the toxin concentration required to give 50% reduction in protein synthesis after 3 hours. The amount of toxin bound to the cell surfaces in the presence of lactose was either determined directly or calculated from the apparent association constant between toxins and surface receptors at the various lactose concentrations. Under different conditions involving a 300-fold variation in the concentration of toxin required to reduce protein synthesis by 50% after 3 hours, the amount of toxin bound to the cell surface was found to be the same. The toxicity thus appears to be determined by the number of toxin molecules bound to the cell surface. Purified ricin B chain was used to compete with the toxins for the receptor sites. Only after addition of high amounts of B chain was the toxicity of abrin and ricin appreciably reduced. The data do not support the view that receptors with especially high affinity are involved in the uptake of the toxins. When the time required for 50% inhibition was plotted versus the inverse value of the square root of the number of toxin molecules bound per cell, a straight line was obtained, intercepting at about 30 min. The data indicate that the observed lag time cannot be due entirely to the fact that the A chains must be liberated before they can act.

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