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[Ala214,38]aprotinin: preparation by partial desulphurization of aprotinin by means of Raney nickel and comparison with other aprotinin derivatives.

Treatment of aprotinin with Raney nickel in the presence or absence of denaturants yielded [Ala2 14,38]aprotinin. Aprotinin and [Ala2 14,38]aprotinin were separated by ion exchange chromatography at pH 8 using CM-Sepharose, fast flow. [Ala2 14,38]aprotinin is a proteinase inhibitor, but it possesses lower affinities than aprotinin, for the enzymes trypsin, alpha-chymotrypsin, pancreatic kallikrein and plasmin as reflected by higher Ki values [Ala2 14,38]aprotinin is slowly degraded by trypsin. The optical activity of [Ala2 14,38]aprotinin in different solvents is quite similar to that of aprotinin, or that of its hydrolysis products, [seco-15/16]aprotinin or [di-seco-15/16,39/40]-aprotinin. This is taken as good evidence for analogous molecular conformations of all these substances.

Amino Acid Sequence

Enzymatic resynthesis of the "reactive site" bond in the modified aprotinin derivatives [seco-15/16]aprotinin and [Di-seco-15/16,39/40]aprotinin.

On incubation of [di-seco-15/16,39/40]aprotinin with human plasmin, porcine pancreatic kallikrein or bovine or porcine trypsin in neutral or slightly alkaline solutions [seco-39/40]aprotinin is slowly formed with enzymatic resynthesis of the reactive-site bond 15/16. With chymotrypsin, however, further degradation of [di-seco-15/16,39/40]aprotinin takes place without enzymatic resynthesis. The apparent rate constants for the synthesis of [seco-39/40]aprotinin with kallikrein and trypsin have been determined and indicate that the bond-forming reaction is 10-200-fold slower with [di-seco-15/16,39/40]aprotinin than with [seco-15/16]aprotinin. The newly formed [seco-39/40]aprotinin has similar kinetic constants for the complexation with its cognate enzymes as aprotinin, indicating that any distortion of the secondary binding region due to cleavage of the Arg39-Ala40 bond does not seriously influence binding and affinities.

Animals

Pyroglutamyl-aprotinin, a new aprotinin homologue from bovine lungs--isolation, properties, sequence analysis and characterization using 1H nuclear magnetic resonance in solution.

A new Kunitz-inhibitor, which is different from aprotinin was extracted from bovine lungs with methanol, further purified by affinity chromatography on trypsin-Sepharose CL-6B and by repeated cation exchange chromatography on CM-Sephadex C-25. The inhibitor, which is less basic than aprotinin was characterized by polyacrylamide gel electrophoresis and ion-exchange HPLC. The N-terminus is blocked by pyroglutamic acid (Glu-1). After enzymatic removal of this residue with pyroglutamate aminopeptidase, complete identity with the primary structure of aprotinin was established by sequencing the inhibitor, which had been oxidized with performic acid, and by sequencing a tryptic fragment. The occurrence of the inhibitor, which can be denoted as pyroglutamyl-aprotinin or Glu-1-aprotinin, but which cannot be distinguished from aprotinin regarding its inhibitory specificity, is obviously the result of a different proteolytic processing of the bovine aprotinin precursor. By using CD and NMR-techniques it was shown that the N-terminus of the inhibitor is blocked, and that the conformation and the internal mobility correspond with those of aprotinin.

Amino Acid Sequence

Aprotinin and aprotinin analogues expressed in yeast.

Synthetic genes encoding aprotinin and aprotinin analogues were constructed and fused in frame to the S. cerevisiae mating factor alpha 1 signal-leader (1-85) sequence. Expression in yeast resulted in secretion into the culture medium of a moderate yield of correctly processed aprotinin (1-58) together with two N-terminally extended forms. Des-Arg1, Pro2-aprotinin was expressed in a higher yield. In this case only the correct N-terminal amino acid sequence was found. Substitution of Ser42 for Arg42 in the potential internal KEX2 processing site improved the secretion yield. The aprotinins are characterized by an inhibition profile similar to that of native aprotinin. Des-Arg1, Pro2-[Arg15, Ser42] aprotinin has a strongly increased plasma kallikrein inhibition profile.

Aprotinin

[Aprotinin-ACD-blood: I. Experimental studies on the effect of aprotinin on the plasmatic and thrombocytic coagulation (author's transl)].

Aprotinin interrupts the spontaneous formation of microaggregates in stored blood. The analysis of the aprotinin-induced effects on the plasmatic and thrombocytic clotting systems showed a correlation between concentration and inhibitory effects of aprotinin on clotting factor VIII, IX, XI, XII as well as on the enzyme-induced second phase aggregation of the platelets. The effect of aprotinin on inhibition of platelet aggregation is probably due to binding of enzymes located in the membrane. The membrane stabilizing effect of aprotinin is discussed. Also in different experimental models using enzyme kinetic designs under maximal aprotinin inhibition a normalization of platelet functions could be immediately reached under transfusion analogous conditions. It is therefore, assumed that transfusion of aprotinin-ACD-Blood does not alter the coagulation mechanism of the patient.

Aprotinin

Subcutaneous aprotinin causes local hyperaemia. A possible mechanism by which aprotinin improves control in some diabetic patients.

Local changes in blood flow at the subcutaneous injection site of the proteinase inhibitor aprotinin and its diluent were measured by photoelectric plethysmography. Aprotinin, but not its diluent, caused local hyperaemia in five normal subjects and in five stable and five brittle insulin-dependent diabetic patients, local blood flow increasing by 80%-180%. The duration of the hyperaemic response was shorter in the brittle diabetic patients than in the other two groups, but there was wide individual variation. Aprotinin is known to enhance subcutaneous insulin absorption in normal subjects and in some brittle diabetic patients. The basis for this might be through increasing blood flow near the injection site rather than by inhibition of insulin breakdown.

Adult

[Aprotinin-ACD-blood. II. The effect of aprotinin on the release of cellular mediators and enzymes in banked blood (author's transl)].

The concentration of the toxic mediators histamine and serotonin as well as the activity of lactate-dehydrogenase and alkaline phosphatase in banked blood increase significantly during storage. After initial addition of Aprotinin to ACD-Blood the level of these substances remained almost in normal range. The influence of these toxic mediators on the development of shock lung is discussed.

Alkaline Phosphatase

A multicenter, double-blind, placebo-controlled trial of aprotinin for reducing blood loss and the requirement for donor-blood transfusion in patients undergoing repeat coronary artery bypass grafting.

BACKGROUND: Aprotinin is a serine protease inhibitor that reduces blood loss and transfusion requirements when administered prophylactically to cardiac surgical patients. To examine the safety and dose-related efficacy of aprotinin, a prospective, multicenter, placebo-controlled trial was conducted in patients undergoing repeat coronary artery bypass graft (CABG) surgery. METHODS AND RESULTS: Two hundred eighty-seven patients were randomly assigned to receive either high-dose aprotinin, low-dose aprotinin, pump-prime-only aprotinin, or placebo. Drug efficacy was determined by the reduction in donor-blood transfusion up to postoperative day 12 and in postoperative thoracic-drainage volume. The percentage of patients requiring donor-red-blood-cell (RBC) transfusions in the high- and low-dose aprotinin groups was reduced compared with the pump-prime-only and placebo groups (high-dose aprotinin, 54%; low-dose aprotinin, 46%; pump-prime only, 72%; and placebo, 75%; overall P = .001). The number of units of donor RBCs transfused was significantly lower in the aprotinin-treated patients compared with placebo (high-dose aprotinin, 1.6 +/- 0.2 U; low-dose aprotinin, 1.6 +/- 0.3 U; pump-prime-only, 2.5 +/- 0.3 U; and placebo, 3.4 +/- 0.5 U; P = .0001). There was also a significant difference in total blood-product exposures among treatment groups (high-dose aprotinin, 2.2 +/- 0.4 U; low-dose aprotinin, 3.4 +/- 0.9 U; pump-prime-only, 5.1 +/- 0.9 U; placebo, 10.3 +/- 1.4 U). There were no differences among treatment groups for the incidence of perioperative myocardial infarction (MI). CONCLUSIONS: This study demonstrates that high- and low-dose aprotinin significantly reduces the requirement for donor-blood transfusion in repeat CABG patients without increasing the risk for perioperative MI.

Aged

Aprotinin. A review of its pharmacology and therapeutic efficacy in reducing blood loss associated with cardiac surgery.

Patients undergoing cardiac surgery with cardiopulmonary bypass (CPB) experience transient haemostatic defects as a result of adverse changes to their blood components, blood cells and specific coagulation proteins. Aprotinin is a naturally occurring serine protease inhibitor isolated from bovine lung tissue which inhibits kallikrein and plasmin. A high dose aprotinin regimen (aprotinin 280mg loading dose over 20 to 30 minutes after anaesthesia induction followed by 70 mg/h for the duration of the operation and 280mg added to the priming fluid of the CPB circuit) has been used during CPB in order to reduce perioperative bleeding. Recent clinical trials confirm the efficacy of high dose aprotinin in reducing blood loss and transfusion requirements associated with primary cardiac procedures such as coronary artery bypass graft (CABG) or heart valve replacement surgery. High dose aprotinin is also effective in procedures known to possess a high risk for excessive blood loss, such as repeat CABG or heart valve replacement surgery, cardiac surgery in patients with infective endocarditis, or in patients receiving aspirin (acetylsalicylic acid) before surgery. Studies indicate that low dose aprotinin (280mg added to CPB pump prime fluid) is effective in reducing blood loss and transfusion requirements in patients undergoing primary CABG surgery. Additionally, low dose aprotinin regimens (both 280mg added to CPB pump prime fluid and 50% of the high dose regimen) have shown some benefit in repeat CABG surgery; however, more studies are needed to confirm these results. Data from clinical trials indicate that aprotinin is well tolerated. The types and incidences of adverse events reported with aprotinin therapy are generally consistent with those associated with major cardiac surgery, and are not significantly different from those observed in control groups. A trend towards lower graft patency rates, detected by ultrafast computerised tomography (CT), has been observed in aprotinin recipients in 2 US trials. These differences did not reach statistical significance and should be interpreted with caution since the ability of ultrafast CT to determine graft patency has not been validated. Mildly elevated plasma creatinine levels are more commonly observed in aprotinin-treated patients; these changes are transient in the majority of patients. Both high dose and low dose aprotinin regimens (280mg added to CPB pump prime fluid or 50% of the high dose regimen) have reduced blood loss and transfusion requirements in patients undergoing primary and repeat cardiac surgery. The role of aprotinin in paediatric cardiac surgery needs further clarification, while well-designed studies comparing aprotinin with other agents which inhibit fibrinolysis are also awaited with interest.(ABSTRACT TRUNCATED AT 400 WORDS)

Aprotinin

Observations on the early renal uptake and later tubular metabolism of radiolabelled aprotinin (Trasylol) in man: theoretical and practical considerations.

1. The novel method recently developed to measure renal tubular degradation of filtered proteins in man using radiolabelled aprotinin (Trasylol) has been modified to allow the fate and the significance of the renal catabolism of radiolabelled aprotinin to be determined beyond 24h. 2. Ten renal patients with normal kidney function and variable proteinuria each received two separate intravenous injections of radiolabelled aprotinin, 5.0 mg of 99mTc-labelled aprotinin (40MBq) and 0.5mg of 131I-labelled aprotinin (5MBq). Chromatography (Sephadex-G-25-M) was used to separate undegraded radiolabelled aprotinin from the free isotope in urine and plasma. Renal uptake from gamma-camera images (24h for 99mTc-labelled aprotinin and up to 96h for 131I-labelled aprotinin) and urinary activity (48 and 96h, respectively) were measured. 3. The renal handling of radiolabelled aprotinin was similar with the two isotopes. Chromatography showed that all plasma activity was undegraded radiolabelled aprotinin, and urine activity was only the free isotopic label. 4. Kidney uptake of 131I-labelled aprotinin was prompt, reaching a cumulative maximum of 37.1 +/- 3.0% of dose at 24h, but falling exponentially thereafter to 5.6 +/- 1.0% of dose at 96h. 5. The rate of excretion of the free label in urine, i.e. the metabolic rate of radiolabelled aprotinin, was relatively constant over the first 24h (1.6 +/- 0.09% of dose/h), but then fell in parallel with the diminishing activity over the kidney, i.e. to 1.0 +/- 0.1% of dose/h over 24-48h and to only 0.4 +/- 0.08% of dose/h over 72-96h.(ABSTRACT TRUNCATED AT 250 WORDS)

Aprotinin

Aprotinin can inhibit the proteolytic activity of thrombin. A fluorescence and an enzymatic study.

Aprotinin has been shown to reduce blood loss and blood requirement when administered prior to surgery and this therapeutic benefit appears to be related to its specificity as a protease inhibitor. The inhibition of plasmin by aprotinin is well characterized, but little is known of its effect on thrombin. In preliminary experiments, we showed that aprotinin can prevent platelet aggregation induced by thrombin. Follow-up studies have now been performed in order to clarify the effect of aprotinin on thrombin. A fluorescence study of the direct binding of aprotinin to human alpha-thrombin was analysed according to the Michaelis-Menten model and a dissociation constant of 30 x 10(-6) mol.l-1 was determined. Aprotinin can displace p-aminobenzamidine, a fluorescent-probe molecule which binds to the active site of serine proteases, showing that the active site of thrombin was involved. Aprotinin also inhibited the ability of thrombin to induce a fibrin clot from purified fibrinogen and to induce the hydrolysis of the chromogenic substrate H-D-phenylalanylpipecolylarginine-p-nitroanalidehydrochloride++ + (S-2238). With S-2238, double-reciprocal plots show that the inhibition is competitive with a Ki of 61 microM and a Km of 1.72 microM. Aprotinin was a potent inhibitor of thrombin-induced aggregation. A Schild plot of the aggregation data yielded a slope of 0.97 +/- 0.12 and an apparent dissociation constant of 57.0 +/- 13.1 microM (mean +/- SEM). Thus, the inhibition of thrombin-induced platelet aggregation by aprotinin fits a model of competitive inhibition. Conclusions are that, in addition to a possible direct effect of aprotinin on platelets, the inhibition of thrombin-induced platelet activation by aprotinin can be also explained, in part, by a direct effect of the inhibitor on the thrombin molecule itself. This supports the concept that a proteolytic step is involved in the platelet response to thrombin. Finally, evidence is in favour of the participation of Trp245 in the fluorescence response of thrombin on binding to aprotinin.

Aprotinin

Aprotinin protects platelets against the initial effect of cardiopulmonary bypass.

Remarkable improvement in hemostasis after cardiopulmonary bypass has been achieved by treatment with the proteinase inhibitor aprotinin, but the mechanism is still unclear. The present study is designed to elucidate the importance of platelet adhesive (glycoprotein Ib) or aggregatory (glycoprotein IIbIIIa) receptors on this hemostatic function in cardiopulmonary bypass and its improvement by aprotinin treatment. To determine whether the first pass of blood through the circuit or a continuous proteolytic attack is the main cause of platelet damage, we gave two different dose regimens of aprotinin treatment to patients undergoing coronary artery bypass grafting. Part I of the study consisted of a double-blind trial on 60 patients. Patients received placebo or aprotinin infusion (total 6.10(6) KIU) before and during bypass. A consecutive group of 22 matching patients received one single bolus of aprotinin in the pump prime (2.10(6) KIU). Blood samples were collected before and during operation to assess the effect of bypass and aprotinin on platelets and the activation of the various proteases in relation to hemostasis expressed in blood loss and blood requirements. The adhesive platelet membrane Ib glycoproteins were decreased by 50% in the untreated patients within 5 minutes of cardiopulmonary bypass and remained low during bypass, whereas glycoprotein Ib did not decrease in either group of aprotinin-treated patients. The platelet membrane IIbIIIa glycoproteins did not significantly change during bypass in either group, but fibrinogen binding to these receptors improved significantly in the 6.10(6) KIU aprotinin-treated group at the end of bypass as compared with initial values. The high continuous dose of 6.10(6) KIU aprotinin inhibited the clotting and kallikrein/kinin system throughout the operation; the pump prime dose of 2.10(6) KIU inhibited these systems only initially. Although the fibrinolytic activity was effectively inhibited in both aprotinin groups, fibrinolytic activity became apparent only at the end phase of bypass in the placebo group. However, improved hemostasis was observed intraoperatively from the start of bypass and resulted in a 40% lower blood loss intraoperatively and postoperatively and consequently a 40% lower total blood requirement in the aprotinin-treated patients than in the untreated patients. Our results therefore demonstrate that the improved hemostasis during and after bypass in patients treated with aprotinin has specifically to be attributed to a preserved adhesive capacity of platelets that was affected in the first pass of blood through the cardiopulmonary bypass circuit.

Aprotinin

Effects of high-dose aprotinin on blood loss, platelet function, fibrinolysis, complement, and renal function after cardiopulmonary bypass.

The use of aprotinin to reduce blood loss after cardiopulmonary bypass is under debate. Concern has been raised about the renal effects of aprotinin. We administered a mean aprotinin dose of 4.2 x 10(6) kallikrein-inhibiting units to 13 patients with coronary disease undergoing cardiopulmonary bypass for 74 +/- 5 minutes (mean +/- standard error of the mean); 13 comparable patients having cardiopulmonary bypass served as control subjects, and all were studied postoperatively for 24 hours. Aprotinin reduced postoperative blood loss by 50% (p = 0.0082). Two of the 13 patients who received aprotinin needed one red cell unit each versus a total of 18 units in eight of 13 control patients (p = 0.0096). Blood pressure, hemoglobin value and serum protein concentration were higher after operation in the aprotinin group (p less than 0.05 to p less than 0.01). Platelet counts did not differ, but plasma thromboxane was lower in aprotinin recipients (p less than 0.001). In control patients fibrinogen degradation products (D dimer) doubled, and alpha 2-antiplasmin activity was halved during and after cardiopulmonary bypass (p less than 0.01 to p less than 0.001), whereas aprotinin patients showed no changes. The complement breakdown products C4a, C3a, and C3dg as well as C9 neoantigen increased from prebypass baseline in both groups (p less than 0.001); the increment of C3a and C3dg was greater in the aprotinin than in the control patients (p less than 0.001). Serum electrolytes, osmolality, and creatinine remained normal in both groups of patients. Creatinine clearance was normal or above normal and virtually identical in both groups. Osmolar clearance and fractional sodium excretion were higher in the aprotinin group than in the control group shortly after cardiopulmonary bypass (p less than 0.05 to p less than 0.01); renal function was unremarkable the next morning. No adverse clinical effects attributable to aprotinin were seen. In summary, aprotinin offers advantages for cardiopulmonary bypass.

Antithrombin III

[Reduction of postoperative blood loss and donor blood use in heart surgery with aprotinin: experience with various dosages].

The effect of high dose aprotinin was evaluated in a prospective study on 100 patients undergoing cardiopulmonary bypass. Special attention was made on postoperative blood loss and transfusions of bank blood postoperatively. In the first part of the study, after induction of anesthesia, a loading dose of 2,000,000 kallikrein-inhibiting-unit (KIU) = 280 mg aprotinin was given intravenously over a 30-min period. Immediately afterward, a continuous infusion of 500,000 KIU/h was started and maintained until skin closure. Another 2,000,000 KIU was added to the priming volume of the heart-lung machine. A control group of 50 patients was randomized with similar indication for surgery and past cardiac history. The total loss from the thoracic drains was significantly reduced in the aprotinin group as compared with the loss in the control group (490 +/- 265 ml versus 1045 +/- 380 ml). In a separate group of risk patients (redo-operations, infective endocarditis) the total blood loss was even more significant reduced in the aprotinin group (690 +/- 195 ml versus 1585 +/- 290 ml). Patients of the aprotinin group received markedly less bank blood postoperatively (350 +/- 100 ml versus 900 +/- 240 ml without aprotinin). Part II of the study (36 patients) consisted of lower dosage (2,000,000 KIU intravenously during induction of anesthesia only or 2,000,000 KIU in the priming volume of the heart-lung machine only). Patients who received aprotinin in the heart-lung machine only showed no significant difference regarding blood loss and blood requirement to patients with high dose aprotinin. It appears possible that aprotinin reduces the activation of the coagulation during cardiopulmonary bypass and preserves platelet function without affecting platelet consumption during the extracorporeal circulation. The results of our study demonstrate that high dose aprotinin markedly reduces blood loss as well as homologous blood requirement in the early postoperative course of cardiosurgical patients. Similar effects due to reduced aprotinin dose have been observed in patients receiving aprotinin in the extracorporeal circulation only.

Aged

Aprotinin inhibits the contact, neutrophil, and platelet activation systems during simulated extracorporeal perfusion.

Aprotinin reduces blood loss after cardiac operations and decreases the bleeding time. The mechanism of action of aprotinin that produces these effects is not clear. During simulated extracorporeal circulation the contact and complement systems, platelets, and neutrophils are activated. We investigated the effect of aprotinin on kallikrein-C1-inhibitor complex and C1-C1-inhibitor complex formation, neutrophil degranulation, and platelet release and aggregation during simulated extracorporeal circulation. Fresh heparinized human blood was recirculated at 37 degrees C for 2 hours in a spiral coil membrane oxygenator-roller pump perfusion circuit. Changes in platelet count, leukocyte count, platelet response to adenosine diphosphate, and plasma levels of beta-thromboglobulin, kallikrein-C1-inhibitor complexes, C1-C1-inhibitor complexes, and neutrophil elastase were measured before and at 5, 30, 60, and 120 minutes of recirculation at 0, 0.015, 0.03, 0.06, and 0.12 mg/ml doses of aprotinin. Platelet counts decreased to 36% +/- 12% of control values at 5 minutes and increased to 56% +/- 13% at 120 minutes without aprotinin. Aprotinin did not affect platelet counts, but it did prevent the decrease in sensitivity of platelets to adenosine diphosphate and it attenuated beta-thromboglobulin release. In the absence of aprotinin, kallikrein-C1-inhibitor and C1-C1-inhibitor complexes increased progressively to 0.53 +/- 0.14 U/ml and 2.38 +/- 0.33 U/ml, respectively, at 120 minutes. Kallikrein-C1-inhibitor complexes were completely inhibited and C1-C1-inhibitor complexes were partially inhibited at aprotinin concentrations of 0.03 mg/ml or greater. Release of neutrophil elastase was partially but not completely inhibited at the highest dose of aprotinin and was 50% inhibited at a dose of 0.03 mg/ml. Because activation of the fibrinolytic system does not occur in this system, the changes were independent of the inhibition of plasmin. We conclude that aprotinin in high doses completely inhibited kallikrein-induced activation of neutrophils and partially inhibited complement-induced activation. Aprotinin did not directly affect platelet adhesion or aggregation, but it indirectly preserved platelet sensitivity to agonists and also attenuated release of alpha-granule contents. The data indicate that in the presence of aprotinin platelet function was partially preserved, kallikrein production was totally inhibited, complement activation was partially inhibited, and neutrophil release was partially inhibited, thus attenuating the "whole body inflammatory response" associated with cardiopulmonary bypass.

Aprotinin

Aprotinin and bleeding in profoundly hypothermic perfusion.

Clinical observation led us to believe that aprotinin fails to preserve haemostatic function in patients undergoing deep hypothermic perfusion with or without circulatory arrest. A retrospective study was made of blood loss in 80 consecutive acute Type A dissection patients before and during the aprotinin era (1987-1992). After 1988 all patients were cooled below 20 degrees C pending circulatory arrest. Fourteen patients underwent aortic root replacement and 66 replacements of the ascending aorta. Age distribution (range 22-79 years) and type of operation were similar in the aprotinin and control groups. The impervious Hemashield (Meadox) graft was used for all but five patients. These underwent aortic root replacement with preclotted, valved conduits. Overall the mean blood loss for 27 patients operated without aprotinin was 837 ml per 24 h (standard error +/- 90) and for 53 patients with aprotinin 1,929 ml per 24 h (standard error +/- 90). There was a significant difference between the two groups when profoundly hypothermic perfusion was used, with greater bleeding in aprotinin-treated patients. There were six re-entries in the aprotinin group and none in the control patients. There were ten hospital deaths (11.1%). A greater incidence of bleeding and thrombosis-related deaths was recorded for the aprotinin-treated patients. In addition, four surviving aprotinin patients suffered severe coagulation defect with blood loss greater than 4,500 ml and platelets less than 50 x 10(6). We suggest that aprotinin inhibits the protease enzymes which maintain the fluid state of blood during hypothermic low flow and arrest states. Disseminated intravascular coagulation may consume platelets thereby predisposing to abnormal bleeding and potentially fatal thrombotic events. The use of aprotinin in profoundly hypothermic perfusion should be adopted cautiously.

Adult