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Increased susceptibility of the left compared to the right ventricle to remote ischemia/reperfusion injury in human C1-inhibitor-overexpressing transgene mice.

Acute myocardial injury has been demonstrated as a remote sequela of severe lower torso ischemia-reperfusion (I/R) due to proinflammatory events. In a model of I/R injury, administration of C1 esterase inhibitor (C1-Inh) reduces myocardial necrosis. We investigated the susceptibility of the left (LV) versus right ventricle (RV) and the protective effect of transgenic C1-Inh-overexpressing mice. Two groups of mice (n = 6) underwent a 2-h lower torso ischemia followed by 3 h of reperfusion: transgenic and wild type with sham-operated controls. Animals were then injected with (125)I bovine albumin. Heart was removed and samples from right and left ventricular free wall were harvested, weighted, and radioactivity was determined. Permeability index for wild-type animals in the RV was 0.22 +/- 0.04, compared to 0.17 +/- 0.07 in controls (NS), and in the LV 0.36 +/- 0.08, compared to 0.21 +/- 0.05 in controls (p <.01). The LV showed a significantly higher value compared to the right (0.22 +/- 0.04 vs. 0.36 +/- 0.08, p <.01). No difference was seen in the RV between transgenic and wild-type mice; however, in the LV the values decreased significantly in transgenic animals (p <.015). Thus, remote myocardial injury after lower torso I/R is present in both ventricles; however, the LV seems to be more susceptible as assessed by albumin permeability. Inhibition of the classic complement cascade may be a promising therapeutic approach for myocardial protection in reperfusion injury.

Acute Disease↗

Inhibition of plasma kallikrein by C1-inhibitor: role of endothelial cells and the amino-terminal domain of C1-inhibitor.

Activation of plasma prekallikein and generation of bradykinin are responsible for the angioedema attacks observed with C1-inhibitor deficiency. Heterozygous individuals with <50% levels of active C1-inhibitor are susceptible to angioedema attacks indicating a critical need for C1-inhibitor to be present at maximum levels to prevent unwanted prekallikrein activation. Studies with purified proteins do not adequately explain this observation. Therefore to investigate why reduction of C1-inhibitor to levels seen in angioedema patients results in excessive kallikrein generation we examined the effect of endothelial cells on the inhibition of kallikrein by C1-inhibitor. Surprisingly, it was found that a C1-inhibitor concentration of greater than 1 microM was needed to inhibit 3 nM kallikrein. We propose that this apparent protection from inhibition was mediated by kallikrein binding to the cells via the heavy chain in a high molecular weight kininogen and zinc independent manner. Protection of kallikrein from inhibition was not observed when C1-inhibitor truncated in the amino-terminal domain by the StcE metalloproteinase was used, which suggests a novel function for this unique domain. The requirement for high concentrations of C1-inhibitor to fully inhibit kallikrein is consistent with the fact that reduced levels of C1-inhibitor result in the kallikrein activation seen in angioedema.

Angioedema↗

Leukocyte-derived complement inhibitor. IV. The functional properties of C1 bound to erythrocytes pretreated with leukocyte culture supernatant.

E, pretreated with leukocyte cultures supernatant (ES), binds C1 through C1q; ES and EIgM that bind the same amount of C1 as measured in a hemolytic assay have the same uptake of 125I-C1q; ESC1q and EIgMC1q, carrying the same number of molecules of CUq per cell, have the same uptake of CUr and CUs; soluble immune compleses prevent the binding of C1 and C1q to ES. The activity of C1 bound to ES is impaired; ESC1 can react with C4 but not with C2. The C4 turnover and the C1 ING turnover by ESC1 are reduced so that ES-bound C1 is protected from destruction by C1 ING. These modifications are fully reversed when C1 is transferred from ES to EA:C1 recovers its ability to react with C2, and C1 INH. Thus the C1s activity can be modulated inside the C1 molecular complex upon binding of C1q to a lymphocyte product. In addition, the 125I-C1q uptake is proportional to the amount of IgM hemolysin used to sensitize E; it has, however, an exponential relationship to the amount of IgG or S used to sensitize E. The ratio of 125I-C1q uptake towhole C1 uptake measured in a hemolytic assay is lowerthan 2. This indicates that one molecule of IgM is sufficient to bind one molecule of C1q on E, that several molecules of IgG or S are required to bind one molecule of C1q, and that one molecule of C1q is sufficient to create a lytic site on E.

Animals↗

Restriction fragment length polymorphism of the C1 inhibitor gene in hereditary angioneurotic edema.

Hereditary angioneurotic edema (HANE) results from the deficiency of the inhibitor of the first component of human complement (C1-INH). It is inherited as an autosomal dominant trait. Heterogeneity of this defect has been shown at the protein and mRNA level. Southern blot analysis of genomic DNA was performed after digestion with six different restriction endonucleases in 24 families affected with type 1 HANE (low antigenic and functional C1-INH levels) and five with type 2 (low functional C1-INH levels and normal or elevated levels of dysmorphic C1-INH). Blots were hybridized with a C1-INH cDNA probe of 1,227 bp. With one enzyme (Pst I), two different patterns of restriction fragment length polymorphism (RFLP) were detected. One was present in one kindred with type 1 HANE and the other appeared the same in one type 1 and in one type 2 family, thus indicating that each RFLP resulted from a different mutation. Analysis of a total of 34 members of these three families suggested that the polymorphisms are tightly linked to the mutation responsible for the disease. Using a 170-bp probe we showed that the three different mutations leading to these polymorphisms are located in the same region of the C1-INH gene. These data suggest that different mutations in the same region of the C1-INH gene are responsible for C1-INH deficiency in these families. Most of these mutations are probably point mutations or other "minor" defects and do not appear to be due to major deletions or rearrangements.

Angioedema↗

HAEdb: a novel interactive, locus-specific mutation database for the C1 inhibitor gene.

Hereditary angioneurotic edema (HAE) is an autosomal dominant disorder characterized by episodic local subcutaneous and submucosal edema and is caused by the deficiency of the activated C1 esterase inhibitor protein (C1-INH or C1INH; approved gene symbol SERPING1). Published C1-INH mutations are represented in large universal databases (e.g., OMIM, HGMD), but these databases update their data rather infrequently, they are not interactive, and they do not allow searches according to different criteria. The HAEdb, a C1-INH gene mutation database (http://hae.biomembrane.hu) was created to contribute to the following expectations: 1) help the comprehensive collection of information on genetic alterations of the C1-INH gene; 2) create a database in which data can be searched and compared according to several flexible criteria; and 3) provide additional help in new mutation identification. The website uses MySQL, an open-source, multithreaded, relational database management system. The user-friendly graphical interface was written in the PHP web programming language. The website consists of two main parts, the freely browsable search function, and the password-protected data deposition function. Mutations of the C1-INH gene are divided in two parts: gross mutations involving DNA fragments >1 kb, and micro mutations encompassing all non-gross mutations. Several attributes (e.g., affected exon, molecular consequence, family history) are collected for each mutation in a standardized form. This database may facilitate future comprehensive analyses of C1-INH mutations and also provide regular help for molecular diagnostic testing of HAE patients in different centers.

Angioedema↗

Five novel mutations in the C1 inhibitor gene (C1NH) leading to a premature stop codon in patients with type I hereditary angioedema.

Hereditary angioedema (HAE) is a disorder characterised by recurrent attacks of localized subcutaneous or submucosal edema. It is inherited in an autosomal dominant fashion and caused by a deficiency of C1 inhibitor (C1 inh, or C1NH). Most patients with HAE have an absolute deficiency of C1 inh (type I HAE) while the rest (15% of kindreds) synthetize a dysfunctional C1 inh protein (type II HAE). In this report a novel use of denaturing gradient gel electrophoresis (DGGE) followed by direct sequencing of the C1 inhibitor gene is presented. Five novel mutations, one nonsense (p.S48X) and four small deletions resulting in frameshifts (g.2264-2265delAG, g.2304delC, g.8493-8494delCC and g.16676-16677delTG) have been identified in the C1 inhibitor gene in five families with type I HAE. All of these mutations lead to premature termination of translation and thus can be considered causative of the C1 inh deficiency. Moreover, two previously described mutations in the reactive center of C1 inh, p.R444C and p.R444H, have been detected in four unrelated patients with type II HAE.

Angioedema↗

Glycosaminoglycans affect the interaction of human plasma kallikrein with plasminogen, factor XII and inhibitors.

Human plasma kallikrein, a serine proteinase, plays a key role in intrinsic blood clotting, in the kallikrein-kinin system, and in fibrinolysis. The proteolytic enzymes involved in these processes are usually controlled by specific inhibitors and may be influenced by several factors including glycosaminoglycans, as recently demonstrated by our group. The aim of the present study was to investigate the effect of glycosaminoglycans (30 to 250 micro/ml) on kallikrein activity on plasminogen and factor XII and on the inhibition of kallikrein by the plasma proteins C1-inhibitor and antithrombin. Almost all available glycosaminoglycans (heparin, heparan sulfate, bovine and tuna dermatan sulfate, chondroitin 4- and 6-sulfates) reduced (1.2 to 3.0 times) the catalytic efficiency of kallikrein (in a nanomolar range) on the hydrolysis of plasminogen (0.3 to 1.8 microM) and increased (1.9 to 7.7 times) the enzyme efficiency in factor XII (0.1 to 10 microM) activation. On the other hand, heparin, heparan sulfate, and bovine and tuna dermatan sulfate improved (1.2 to 3.4 times) kallikrein inhibition by antithrombin (1.4 microM), while chondroitin 4- and 6-sulfates reduced it (1.3 times). Heparin and heparan sulfate increased (1.4 times) the enzyme inhibition by the C1-inhibitor (150 nM).

Animals↗

A phase I study of recombinant human C1 inhibitor in asymptomatic patients with hereditary angioedema.

BACKGROUND: Hereditary angioedema (HAE) is a congenital disorder with recurrent attacks of localized swelling of submucosal tissue, subcutaneous tissue, or both caused by a deficiency of the plasma protein C1 inhibitor (C1 esterase inhibitor [C1INH]). OBJECTIVE: We sought to evaluate the effects of recombinant human C1INH (rhC1INH) isolated from the milk of transgenic rabbits in 12 asymptomatic patients with HAE. METHODS: rhC1INH was intravenously administered at doses of 6.25 to 100 U/kg on 2 occasions. RESULTS: rhC1INH appeared safe and was well tolerated. The course of functional C1INH in plasma showed a full initial recovery (dose-normalized maximum concentration of about 0.02 U/mL/U/kg) and a dose-dependent clearance of rhC1INH. After infusion of rhC1INH at 100 U/kg, a clearance of approximately 13 mL/min, a half-life of approximately 3 hours, and a volume of distribution of approximately 3 L were observed. Infusion at this dose led to functional C1INH levels in plasma of at least twice the normal level for about 2 hours and greater than 0.4 U/mL for about 9 hours. rhC1INH displayed dose-dependent biologic activity by increasing the C4 level, which was about 2-fold at 12 hours after rhC1INH at 100 U/kg, and decreasing levels of cleaved C4. CONCLUSION: The observed safety profile and biologic activity of rhC1INH warrants further clinical studies to assess its efficacy in treating HAE attacks.

Angioedema↗

C1q deficiency associated with urticarial-like lesions and cutaneous vasculitis.

We describe a 46 year old women with a seven year history of urticarial-like symptoms and cutaneous vasculitis with marked deficiency of C1q in the presence of normal levels of C1r and C1s and high titers of low molecular weight (7S) C1q precipitins. Hemolytic C1 activity, which was greatly reduced, was restored upon the addition of purified C1q. The other complement components were present in moderately reduced or normal levels. This patient bears resemblance to several other persons previously described with urticarial-like lesions in association with selective deficiency of C1q. The similarity of the clinical features, pathologic diagnosis, C1q levels disproportionately deficient in relation to other complement components and low molecular weight C1q precipitins support the conclusion that these are causally related in a symptom complex. The underlying basis is yet to be defined.

Complement C1↗

Clusters of intragenic Alu repeats predispose the human C1 inhibitor locus to deleterious rearrangements.

Frequent alterations in the structure of the complement component C1 inhibitor gene have been found in patients affected by the common variant of hereditary angioedema, characterized by low plasma levels of C1 inhibitor. This control protein limits the enzymic activity of the first component of complement and of other plasma serine proteases. Sequence comparisons of a 4.6-kilobase-long segment of the normal gene and the corresponding gene segments isolated from two patients carrying family-specific DNA deletions point to unusually long clusters of tandem repeats of the Alu sequence family as a source of genetic instability in this locus. Unequal crossovers, in a variety of registers, among Alu sequences of the clusters result in deletions of variable length that encompass exon 4. In a third family, exon 4 was instead found to be duplicated along with the same tracts of flanking introns lost in one of the deletions. In addition to undergoing Alu-mediated partial deletions and duplications, the gene is also a target for more recent retroposition events. Gross alterations in the C1 inhibitor gene account for about 20% of the hereditary angioedema chromosomes and consequently make this gene a prime example of the mutagenic liability of Alu repeats.

Amino Acid Sequence↗

C1- inactivator: its efficiency as a regulator of classical complement pathway activation by soluble IgG aggregates.

The role of C1- inactivator (C1(-)-In) during activation of the classical complement pathway by soluble immune complexes was studied using purified human complement components C1, C4 and C1(-)-In, and stabilized soluble aggregates of normal human IgG as a model for soluble immune complexes. The C4-consuming ability that could be generated by incubation of precursor C1 with IgG aggregates was abolished completely by the presence of a large excess of C1(-)-In during the C1 activation step. Kinetic studies confirmed that this inhibition was due to a second-order reaction between C1- and C1(-)-In resulting in the irreversible inactivation of C1-. When aggregates of various sizes were enabled to induce C4 conversion in mixtures of C1, C4 and a variable concentration of C1(-)-In, the presence of C1(-)-In had two effects. Firstly, the efficiency of the aggregates in causing C4 consumption was reduced remarkably. At a C1(-)-In:C1 ratio of 8, which can be found in normal human serum, approximately eight to ten times as many aggregates were required for a given level of C4 consumption as when no C1(-)-In was present. Secondly, C1(-)-In diminished the maximum C4 consumption that could be achieved, especially with smaller aggregates. Thus, a complete or partial C1(-)-In deficiency probably facilitates complement activation by soluble immune complexes in two ways: it may enhance the efficiency of classical pathway activation by all C1-activating complexes, and it may enable small complexes, which normally cannot overcome the C1(-)-In barrier, to activate the classical pathway to the C4 level.

Antigen-Antibody Complex↗

C1-inhibitor reduces the ischaemia-reperfusion injury of skeletal muscles in mice after aortic cross-clamping.

BACKGROUND: Both C1-inhibitor (C1-INH) and antibodies against the CD18 adhesion molecule have been shown to reduce ischaemia-reperfusion injuries. The objective of this study was to investigate the effect of increased ischaemia times and to determine whether inhibiting C1 or blocking the CD18 function was protective in skeletal muscle ischaemia-reperfusion injury after aortic cross-clamping. MATERIALS AND METHODS: BALB/c mice were subjected to aortic cross-clamping below the renal artery for 60, 75 or 105 min, followed by 3 h of reperfusion. Two-thirds of a total dose of anti-CD18 antibody (40 mg/kg) or human C1-INH (1,000 IU/kg) was given by intraperitoneal injection before ischaemia and one-third immediately after the clamping. Creatine kinase (CK) in the plasma was used as an indicator of muscle injury severity. RESULTS: There was a consistent rise in the plasma CK concentration proportional to the length of ischaemia (P < 0.0005). C1-INH treatment significantly (P = 0.012) reduced the plasma CK for the ischaemia times of 75 and 105 min. The anti-CD18 antibody did not have any effect, as demonstrated by the CK values that were similar to controls (P = 0.836). CONCLUSION: The data support a beneficial role for C1-INH in the treatment of ischaemia-reperfusion injuries of skeletal muscles.

Animals↗

Pharmacokinetics of C1-inhibitor protein in patients with acute myocardial infarction.

OBJECTIVES: C1-inhibitor protein (C1-INH) purified from pooled human plasma is used for the treatment of patients with hereditary angioedema. Recently, the beneficial effects of high-dose C1-INH treatment on myocardial ischemia or reperfusion injury have been reported in various animal models and in humans. We investigated the pharmacokinetic behavior of C1-INH in patients with acute myocardial infarction to calculate the amount of C1-INH required for optimal efficacy. METHODS: Twenty-two patients received an intravenous loading dose, followed by 48 hours of continuous infusion of C1-INH. Changes in the endogenous production of C1-INH were evaluated in 16 control patients with acute myocardial infarction. A 2-compartment model was used to estimate the fractional catabolic rate constant (FCR), transcapillary escape rate constant (TER), and extravascular return rate constant (ERR) of C1-INH. Software designed to analyze and fit measured data to unknown parameters in a system of differential equations was used to fit the experimental data against the 3-parameter model. RESULTS: With fixed TER and ERR values (0.014 h(-1) and 0.018 h(-1), respectively), 20 of the 22 cases yielded well-determined FCR values, and simultaneous fitting resulted in a median FCR of 0.011 h(-1) (95% confidence interval, 0.010 to 0.012 h(-1)) versus 0.025 h(-1) as reported in healthy control patients. Simultaneous estimation of TER, ERR, and FCR demonstrated weakly defined TER and ERR values, whereas the median FCR value remained unchanged. The use of a 2-compartment model resulted in a significantly better fit compared with the 1-compartment model. Physiologic explanations are offered for discrepancies in the literature. CONCLUSIONS: Dose calculation of C1-INH in patients treated with massive doses of C1-INH requires turnover parameters that differ from those found in healthy subjects, possibly because of suppression of continuous C1-INH consumption by target proteases.

Adult↗

Models for C1. Tools or toys? The real biological challenge.

C1 modelling, based on structural and functional data, does not yet bring the different laboratories to a consensus on C1 activation, activity and associated controls. The heart of C1 beats in its subcomponent C1r2, which, from its domain structure and its twinning with subcomponent C1s, represents the challenge for the knowledge of C1. The 8-shaped model proposed for the C1r2-C1s2 association, with a head-to-tail interaction between the C1r catalytic domains, appears as the hub of an active world in the bosom of C1q. More detail is now required on protein-protein interactions inside C1 to refine the available models or to propose alternatives. Precise data on the interactions of C1 proteins with activators, substrates or control proteins are also likely to bring pertinent help in proposing future models for C1.

Binding Sites↗

The influence of the C1-inhibitor BERINERT and the protein-free haemodialysate ACTIHAEMYL20% on the evolution of the depth of scald burns in a porcine model.

Standardized deep partial-thickness burns were inflicted on domestic pigs by scalding 30 per cent of the skin surface for 25 s with 75 degrees C hot water. The animals (n = 18; weight 25-35 kg) were divided into three groups: I, control group (n = 6), Ringer's lactate only; II, haemodialysate group (n = 6), Ringer's lactate and a protein-free haemodialysate of calf-blood (ACTIHAEMYL20%; AH) and III, C1-inhibitor group (n = 6), Ringer's lactate and C1-inhibitor (C1-INH; BERINERT). Skin biopsies were taken at defined time points (4, 28, 52 and 76 h) and investigated histologically. Depth of burn was determined morphometrically after coloration with a modified MTT-staining on frozen sections of the skin biopsies. Fluid therapy with C1-INH decelerated significantly the progression of the burn wound in the postburn-period compared to Ringer's lactate alone. In comparison with C1-INH, the treatment with AH demonstrated a less beneficial influence on the depth of scald burns. The favourable effects of C1-INH are explained by the protection of the dermal microcirculation during the acute phase of thermal injury.

Actihaemyl↗