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Superoxide production by digitonin-stimulated guinea pig granulocytes. The effects of N-ethyl maleimide, divalent cations; and glycolytic and mitochondrial inhibitors on the activation of the superoxide generating system.

N-ethylmaleimide, divalent cations, ethylene glycol bis (beta aminoethyl ether) N,N,N',N',-tetraacetate, 2-deoxyglucose, cyanide, and dinitrophenol were examined for their effect on the ability of guinea pig granulocytes to generate superoxide (O(2) (-)) when stimulated by digitonin. N-ethylmaleimide (1 mM) inhibits only when added before complete activation of the O(2) (-) generating system, and at lower concentrations (0.05-0.2 mM) slows the activation process. Ca(++) is required for maximum O(2) (-) generation, and Mg(++) decreases the amount of Ca(++) required. Ethylene glycol bis (beta aminoethyl ether) N,N,N',N',-tetraacetate (10 mM) inhibits only if added before complete activation. Incubation of cells in 2-DOG causes a time- and concentration-dependent inhibition of O(2) (-) generation. It also increases the time required for activation of this system. Cyanide and dinitrophenol increase the rate of O(2) (-) production. However, when these compounds are added to cells whose O(2) (-) production is partially inhibited by incubation in 2-deoxyglucose, complete inhibition results. If cyanide or dinitrophenol is added after activation of 2-deoxyglucose-treated cells, no further inhibition occurs. On the basis of the above results, we conclude that the activation of the O(2) (-) generating system is N-ethylmaleimide sensitive, Ca(++) dependent, and energy requiring, but that the activity of the enzyme system in the cell is not.

Animals

Kinetic study of photoregeneration process of digitonin-solubilized squid rhodopsin.

In the photoregeneration process of squid rhodopsin, an intermediate has been found at neutral pH values (phosphate buffer) with a flash light (lambda greater than 540 nm). An intermediate R430, with the 11-cis retinal as chromophore, is produced from metarhodopsin in light and is converted to rhodopsin through the processes R430 leads to P380 and P380 leads to rhodopsin. The pH dependence of the velocity of the conversions suggests that processes R430 leads to P380 and P380 leads to rhodopsin involve a protolytic reaction and that the ionized group is a histidine residue of opsin. Kinetic parameters show that the largest conformational change in opsin occurs in the conversion of R430 leads to P380.

Animals