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K F AUSTEN

Publications and source records attributed to K F AUSTEN.

At least 19 recordsLinked to original sources

A COMPARISON OF THE SPECIFICITY OF INHIBITION BY PHOSPHONATE ESTERS OF THE FIRST COMPONENT OF COMPLEMENT AND THE ANTIGEN-INDUCED RELEASE OF HISTAMINE FROM GUINEA PIG LUNG.

The ability of a number p-nitrophenylethyl alkyl, phenyl alkyl, chloroalkyl, and aminoalkyl phosphonates to inhibit the activated first component (C'1a) of guinea pig complement, and the antigen-induced release of histamine from sliced, perfused guinea pig lung has been compared. C'1a in its reactivity with these phosphonates is distinctly more similar to trypsin than to any of the other enzymes studied previously. It is suggested that both trypsin and C'1a possess an anionic group in the active center of the respective enzyme, but the distance between the anionic and esteratic site in C'1a might be less than in trypsin. The pattern of inhibition of histamine relase by the alkyl, phenyl alkyl, and chloroalkyl phosphonates is similar to the inhibition of C'1a by these compounds, although distinct differences are apparent. The aminoalkyl phosphonates are distinctly less active inhibitors of histamine release than the corresponding alkyl phosphonates, whereas the reverse is true of the inhibition of C'1a. On the basis of these differences, it is tentatively concluded that the organophosphorus-inhibitable enzymes in the guinea pig systems studied here are similar but not identical.

Animals↗

Anaphylaxis in chopped guinea pig lung. III. Effect of carbon monoxide, cyanide, salicylaldoxime, and ionic strength.

The anaphylactic release of histamine from perfused, chopped guinea pig lung is very sensitive to changes in the NaCl concentration of the containing medium, and it is ionic strength rather than particle concentration which is critical. Consequently, in studies with inhibitors care must be taken to avoid inadvertently increasing ionic strength and thereby misinterpreting the cause of the inhibition. Since immune hemolysis exhibits a similar sensitivity to changes in the NaCl concentration of the suspending medium, salicylaldoxime and phlorizin, which prevent the participation of the third component of complement in immune hemolysis, were investigated for their effect on the anaphylactic reaction. Salicylaldoxime is a potent inhibitor of in vitro anaphylaxis in guinea pig lung, but phlorizin is only a weak inhibitor. Potassium cyanide, 1 mM, inhibits the anaphylactic release of histamine most effectively if the duration of contact between the tissue and the cyanide prior to antigen addition is minimal; preincubation of the tissue with cyanide prior to antigen addition results in progressive diminution of inhibition even when there is only minimal loss of cyanide from the containing medium. The anaphylactic release of histamine from perfused whole lungs or suspensions of blood-free chopped lung is not prevented by the cytochrome oxidase inhibitor, carbon monoxide. In addition, 2-heptyl 4 hydroxyquinoline N oxide and malonic acid, which inhibit aerobic metabolism at different sites, do not prevent the reaction. These studies and those with cyanide indicate that the anaphylactic release of histamine in guinea pig lung is not dependent on cytochrome-mediated aerobic metabolism.

Anaphylaxis↗

Anaphylaxis in chopped guinea pig lung. I. Effect of peptidase substrates and inhibitors.

The quantitative release of histamine by specific antigen from perfused, chopped, sensitized guinea pig lung has been used to study the effect of peptidase substrates and inhibitors on the anaphylactic reaction. The anaphylactic release of histamine is prevented by chymotrypsin substrates and inhibitors but not by trypsin, carboxypeptidase, or leucine aminopeptidase substrates or the soybean trypsin inhibitor. The chymotrypsin substrates and inhibitors appear to be acting on an antigen-antibody-activated step because these substances fail to inhibit if the tissue is washed free of them prior to antigen addition, and because there is complete desensitization of the tissue without histamine release when the antigen is added in the presence of these inhibitors. The inhibitors work equally well in tissue from passively sensitized animals or in tissue from animals actively sensitized with either ovalbumin or bovine gamma globulin. These observations suggest that activation of a chymotrypsin-like enzyme is a necessary condition for the anaphylactic release of histamine in guinea pig lung. Diisopropylfluophosphate is inhibitory when present at the time of antigen addition but not when the tissue is washed free of unfixed diisopropylfluophosphate prior to adding antigen. This indicates that diisopropylfluophosphate must be acting exclusively on an enzyme which exists in lung tissue in a precursor form resistant to diisopropylfluophosphate until activated by the antigen-antibody interaction. Thiol alkylating or oxidizing agents also prevent the anaphylactic release of histamine, but in contrast to the situation with diisopropylfluophosphate and the other chymotrypsin inhibitors, the phase of the anaphylactic reaction inhibited by N-ethylmaleimide is available prior to the antigen-antibody interaction. The similarities and differences between immune hemolysis and anaphylaxis in chopped guinea pig lung are considered in detail.

Amino Acids↗

Anaphylaxis in chopped guinea pig lung. II. Enhancement of the anaphylactic release of histamine and slow reacting substance by certain dibasic aliphatic acids and inhibition by monobasic fatty acids.

The quantitative release of histamine and slow reacting substance by specific antigen from perfused, chopped, sensitized guinea pig lung has been used to study the opposing effects of monobasic and certain dibasic fatty acids on the anaphylactic reaction. The anaphylactic release of histamine and slow reacting substance is doubled by the addition of 0.5 mM of succinic or maleic acid to the reaction mixture, and enhancement is definite with as little as 0.05 mM of succinic acid. Prolonged preincubation of the tissue with the dibasic acids is not required, for 60 to 90 per cent of maximal enhancement is apparent when the antigen is added to the tissue only 10 seconds after succinic or maleic acid. The increased histamine release is not due to a qualitative change in the time course of histamine release, is not the result of increased histamine formation, and cannot be attributed to an effect on the tricarboxylic acid cycle. The enhancement seems to be due to potentiation of some step activated by the antigen-antibody interaction and common to both the release of histamine and slow reacting substance. The structural configuration required for a dibasic acid to enhance the anaphylactic reaction in guinea pig lung is quite specific; the carboxyl groups should be separated by a two carbon chain, and must be free or fixed in the cis position. The monobasic fatty acids from valeric to dodecanoic inhibit the anaphylactic release of histamine, and the concentration needed to produce 50 per cent inhibition decreases with increasing chain length. The introduction of a polar group, amino or carboxyl, into the hydrocarbon residue diminishes or abolishes inhibitory capacity. The inhibition produced by the fatty acids is neither due to calcium binding nor due to prevention of effective antigen-antibody interaction; the fatty acids probably inhibit by acting on an antigen-antibody-activated step. The inhibition of the anaphylactic release of histamine and slow reacting substance produced by caproic or decanoic acid can be reversed by the enhancing effect of succinic acid, and vice versa. Thus, compounds normally present in mammalian tissue can greatly influence the intensity of the in vitro anaphylactic reaction in the guinea pig.

Anaphylaxis↗