Our earlier study in vivo showed that a lower dose of acetylsalicylic acid (ASA) brought greater enhancement in fibrin gel permeability (Ks) than a higher dose. To assess whether this finding related to modifications of fibrinogen clotting property by ASA, purified fibrinogen was incubated with ASA and/or salicylic acid (SA). The fibrinogen product was examined. Fibrinogen "clotting time" was not affected. Shortening of fibrin clot "lysis time" paralleled the increase of fibrin network porosity demonstrated by measurements of liquid permeability (Ks), fibrin fiber thickness, and 3-dimensional microscopic image, in a low ASA concentration-dependent way. Ks levels were not altered by SA alone but significantly decreased in samples treated by both where the concentrations were low for ASA and high for SA. In conclusion, ASA at the concentrations used did not influence the rate of fibrinogen gelation by thrombin. However, assembly of fibrin monomers was most probably altered, leading to enhancement of fibrin fiber thickness. A looser network was constructed by the thicker fibrin fibers, which benefits fibrinolysis. According to the known mechanism that SA interferes with ASA in preventing acetylation of platelet's proteins, an explanation for the low ASA concentration-dependent effects on fibrin network structure may be that fewer molecules of SA-the hydrolytic product of ASA-are generated from lower doses of ASA, which block acetylation of fibrinogen to a smaller extent and thus more significantly impair fibrin formation.
Human antiplasmin, a fast-acting inhibitor of plasmin in plasma, belongs to the serpin super-family of proteins. Like other members of this family, antiplasmin has a scissile peptide bond exposed within a reactive centre loop, typically present at the surface of the molecule. Antiplasmin is stable at neutral pH, but at acidic pH or at elevated temperatures it rapidly becomes inactivated. Data regarding “native” antiplasmin have demonstrated that both polymerization processes and formation of latent molecules are important in this respect. In this work we used site-directed mutagenesis to produce 11 single-site mutants (mainly within Aβ-sheet, Bβ-sheet and reactive centre loop), which were expressed in Drosophila S2 cells, purified and characterized. Five of the 11 mutants were found to have a deviating stability at decreased pH. Glu346Thr was the only mutant with a lesser stability as compared to wt-antiplasmin, but the other 4 were more stable. The most stable mutant, His341Thr, was 7-fold more stable at pH 4.9 as compared to wt-antiplasmin. The wt-antiplasmin had a much more pronounced tendency to polymerize at decreased pH, as compared to “native” antiplasmin. However, many of the mutants clearly rather formed latent molecules, as judged both from PAGE-analysis at non-denaturing condition and reactivation experiments.
The interaction between immobilized plasminogen or an elastase-degradation product from plasminogen, constituting "kringles" 1–3 and different purified variants of antiplasmin has been studied by surface plasmon resonance utilising a BIAcore. The antiplasmin variants studied are wild-type, K429E, K436E, E443G, D444G, K452E and K452T. It is shown that the two mutants K452T and K452E react in quite a similar way as wt-antiplasmin, suggesting that Lys452 is not involved in the lysine-binding site interaction between plasminogen and antiplasmin. On the other hand, the mutant K436E displays a much lower ka. The affinity between plasminogen or the fragment constituting "kringles" 1–3 and K436E were also much lower than with wt-antiplasmin. Thus, also the data obtained with surface plasmon resonance show that Lys436 indeed is very important in the lysine-binding site mediated interaction between plasminogen and antiplasmin.
Several serine proteinase inhibitors (serpins) are metastable proteins which under certain conditions may undergo conformational changes resulting in the insertion of the reactive centre loop into the so-called Aβ-sheet and hence forming latent molecules. Here we have studied the inactivation of antiplasmin as a function of pH and temperature with time. At decreased pH (4.9–5.8) and at room temperature, antiplasmin activity decreased following first-order kinetics. Analysis by polyacrylamide gel electrophoresis under non-denaturing conditions demonstrated that only minor amounts of polymerized material formed after extensive incubation (4 days) at room temperature. However, on incubation at elevated temperatures (45 or 55 °C), a rapid formation of polymerized material was observed. We also demonstrated that antiplasmin inactivated by treatment at pH ∼5 at room temperature spontaneously slowly regained some activity if incubated in a buffer of neutral pH. Furthermore, by treatment with 4 M guanidinium chloride for about 30 min, followed by dialysis against a neutral phosphate buffer, considerable activity (almost 40%) was regained. Thus, we conclude that antiplasmin, at least partially, at lower temperatures is transformed into a latent form, which could be reactivated, in a similar manner as PAI-1. At increased temperature, however, polymerization seems to be the predominant reason for inactivation.