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Biomedical subjects

G Pindur

Publications and source records attributed to G Pindur.

At least 37 records · Page 2Linked to original sources

Thunderclap headache caused by Erve virus?

Systematic studies of a possible human neuropathogenicity of the Erve virus have not yet been carried out. In a randomized, blind study 166 patients with viral encephalitis, 46 patients with cerebral hemorrhage, 72 patients with "thunderclap" headache, and 205 healthy blood donors were examined by indirect immunofluorescence for Erve virus antibodies. None of the patients with encephalitis, two patients with cerebral hemorrhage (4.3%), 10 patients with thunderclap headache (13.9%; p < 0.0001), and two blood donors (1.0%) exhibited antibodies against the Erve virus. These results suggest a human pathogenicity of the Erve virus for the first time.

Adult↗

Mutations in the human factor XII gene.

The factor XII gene from 31 unrelated factor XII-deficient patients from Germany, Switzerland, and Austria was screened for mutations at the genomic level. Several novel mutations were detected and their absence in a control group of 74 healthy unrelated individuals was checked. Most changes are in the serine protease domain affecting the catalytic triad His-393-Asp-442-Ser-544; two missense mutations, R398Q (arginine 398 to glutamine; gene bank accession no. U71276) and L395M (leucine 395 to methionine; gene bank accession no. U71277), are close to the active site histidine at position 393. Another mutation detected in a cross-reacting material (CRM)-positive female with a history of three abortions affects the active site aspartic acid by changing it to asparagine (D442N; gene bank accession no. U71275). The novel mutation G570R (glycine 570 to arginine; gene bank accession no. U71274) giving rise to a CRM-positive phenotype is located next to Cys571, which forms a vital disulfide bridge. Two mutations are causing reading frame shifts: one single basepair deletion in exon 12 [exon 12: 10590(DelC); gene bank accession no. U71278] and one acceptor splice site mutation [exon 14: 11397(G --> A); gene bank accession no. L43615]. The putative regulatory mutation exon 1:-8 (g --> c) in the upstream region of the gene is associated with an aberrant Taq I restriction site allele in intron B of the gene (gene bank accession no. X80393).

Alleles↗

Increased haemorrhagic risk after repeated infusion of highly substituted medium molecular weight hydroxyethyl starch.

Infusion of the large volumes of high molecular weight hydroxyethyl starch (HES) has been know to lead to coagulation disorders. Medium molecular starch is considered a safe alternative, even after repeated administration. In 10 patients with cerebrovascular diseases, a 10-day hemodilution was carried out using 10% HES 200/0.62. Initially, a loading dose of 500 ml was administered once over 45-60 min, followed by 500 ml maintenance dose per day for 10 days. Its high intravascular molecular weight (120,000 D) showed that cleavage of the starch is slowed due to the higher degree of substitution. The continuous increase of HES-serum concentration to 27.7 mg/ml gave evidence of a cumulation of poorly degradable molecules. Although this caused a prolonged volume effect, plasma viscosity and erythrocyte aggregation were influenced in an unfavourable way. The negative effects were not evident in their influence on the coagulation system. Under therapy, a significant 42.8% increase (p < 0.01) in activated partial thromboplastin time occurred. Factor VIII:C, von Willebrand ristocetin co-factor and von Willebrand factor antigen dropped during the therapy below the hemostasiological limit of 30% (p < 0.01), and in some patients below 10%. A high degree of substitution, particularly after repeated infusion, leads to a cumulation of large molecules that are difficult to break down and which unfavourably affect rheological and hemostasiological parameters.

Blood Coagulation↗

Coagulation disorders caused by hydroxyethyl starch.

Initially, hydroxyethyl starch (HES) was only characterized by its in vitro molecular weight (MW). This is not sufficient because HES is degraded in vivo. One relevant parameter that predicts the rate of enzymatic breakdown is the degree of substitution, a measure of the average number of hydroxyethyl groups per glucose unit. The higher this degree of substitution, the slower the break-down. In addition, because the glucose units can be substituted at carbon 2, 3 and 6, different substitution patterns are possible. They are classified by their C2/C6 hydroxyethylation ratio. A higher C2/C6 ratio results in less metabolism of the starch in vivo and results in a larger in vivo MW. This in turn affects therapy, because the larger the in vivo MW, the longer is the duration of the volume effect of HES. Of particular importance is the fact that HES with a high in vivo MW affects factor VIII/von Willebrand factor which can lead to an acquired von Willebrand syndrome. During a 10-day volume therapy with a medium-MW HES 200, a form that is difficult to metabolize, we observed an 80% drop in factor VIII/von Willebrand factor. Therapy with a medium-MW HES 200, a form that is easily degraded, and therapy with a low-MW HES 70 did not result in a relevant decline of factor VIII/von Willebrand factor. This explains why hemorrhagic complications have been observed repeatedly in the United States after therapy with HES infusions, some of them lethal. In the United States high-MW HES 480 which is difficult to degrade is most frequently used and results in a larger in vivo MW and subsequent decrease in factor VIII/von Willebrand factor levels. In Europe, medium-MW HES 200 that is easily degraded and low-MW HES 70 are preferred. In the future, HES should be characterized by the in vivo, not the in vitro MW.

Blood Coagulation Disorders↗

All medium starches are not the same: influence of the degree of hydroxyethyl substitution of hydroxyethyl starch on plasma volume, hemorrheologic conditions, and coagulation.

BACKGROUND: After the application of high volumes of high-molecular-weight starch (hetastarch), bleeding complications have repeatedly been observed. Later studies showed that the application of medium-molecular-weight starch led to far fewer disturbances of the blood coagulation system. However, the relationships among the degree of hydroxyethyl substitution, the rate of degradation, and the average in vivo molecular weight have not been investigated. STUDY DESIGN AND METHODS: A 10-day hemodilution treatment (n = 20) was carried out using two medium-molecular-weight hydroxyethyl starches (HES) with a degree of hydroxyethyl substitution of 0.5 and 0.62, respectively (10% HES 200 was used for a substitution of 0.5 and 6% HES 200 for a substitution of 0.62). After a loading dose of 500 mL was administered, 1000 mL of HES was infused daily for 4 days, and then 500 mL was infused daily for 6 days. RESULTS: The more highly substituted starch was broken down more slowly and eliminated renally. This resulted in a higher intravascular molecular weight than for the less highly substituted HES (120 vs. 84 kDa) and a greater increase in serum concentration (20.3 vs. 9.0 mg/mL). Initially, the more highly substituted 6-percent HES had a lesser effect on plasma volume (p < 0.01). Because of HES accumulation, there was no longer a significant difference between the starches by the end of treatment, even though a higher dose of the 10-percent low-substitution starch was infused. Six-percent HES caused an increase in plasma viscosity (+9%, p < 0.01) that was due to an accumulation of macromolecules. Ten-percent HES 200/0.5 had no effect on the coagulation system beyond the dilution effect. Six-percent HES, on the other hand, led to an acquired von Willebrand syndrome during the course of the 10-day therapy. Factor VIII function was reduced by 72.2 percent, von Willebrand ristocetin cofactor by 61.3 percent, and von Willebrand factor antigen by 64 percent (p < 0.01). CONCLUSION: It is the intravascular and not the initial (in vitro) molecular weight that determines the properties of HES. Especially after repeated administration, a high degree of hydroxyethyl substitution leads to an accumulation of macromolecules that affect hemorrheologic measures and the coagulation system just as adversely as high-molecular-weight starch does. Depending on the degree of substitution, medium-molecular-weight starches can have widely differing properties.

Blood Coagulation↗

Influence of intravascular molecular weight of hydroxyethyl starch on platelets.

Complications concerning the blood coagulation have been observed repeatedly after administration of highly substituted, high molecular weight hydroxyethyl starch (HES), but it has not been examined as to how intravascular molecular weight and degree of substitution of HES influence platelet number and volume after repeated administration. Thirty patients with cerebrovascular diseases were treated for 10 days with hemodilution. 500 to 1500 ml of HES 200/0.62(n=10), HES 200/0.5(n=10) or HES 40/0.5(n=10) were infused daily. During the first days, the number of platelets was not lowered beyond the dilution effect, but at the end of the therapy the number of platelets had increased in all 3 groups beyond the initial value. Platelet volume was lowered significantly in the 3 groups. HES 200/0.62 caused the largest drop in platelet volume (-10%, p<0.01). A possible explanation could be that HES macromolecules are attached to platelets or are phagocytized by them. The larger platelets are then broken down and, to compensate the loss, more thrombocytes are released. A correlation between the molecular weight of HES and the breakdown rate of the platelets can be suspected, because HES 200/0.62 has the highest intravascular mean molecular weight(121 kD) and the largest effect on platelet volume.

Blood Platelets↗

Decrease of fibronectin following repeated infusion of highly substituted hydroxyethyl starch.

OBJECTIVE: Fibronectin (Fn) plays an important part in unspecific defense mechanisms because of its ability to mediate the binding of foreign-body particles, bacteria, collagen, and other macromolecules to phagocytising cells of the reticulo-endothelial system (RES). The aim of the present study was to examine the effect of a 10-day hemodilution therapy on Fn concentration in humans. DESIGN: The patients were randomized and treated with either 10% hydroxyethyl starch (HES) 200/0.62 or 6% HES 200/0.62. SETTING: Neurology department of an university clinic. PATIENTS: We examined 12 patients with cerebrovascular perfusion disturbances. INTERVENTIONS: The Fn concentration was determined using simple radial immunodiffusion. RESULTS: The Fn concentration dropped significantly in all 12 patients (p < 0.01) in a dose-dependent manner beyond the dilution effect. 10% HES 200/0.62 caused a Fn decrease from 26.6 +/- 9.2 to 10.0 +/- 2.2 mg/dl (-62.2%), 6% HES reduced Fn from 25.5 +/- 9.9 to 15.0 +/- 3.2 mg/dl (-41.1%). In one patient there was a continuous decrease of Fn from 41.0 down to only 6.4 mg/dl. CONCLUSION: According to the results of animal experiments, the decrease of Fn seems to indicate depression of the RES. Besides its defense function, Fn probably plays a role in embryogenesis, wound healing, and blood clotting. Therefore, we assume that the drug-induced reduction of Fn possibly has clinical relevance.

Animals↗

[Decrease of thrombocyte volume after several days infusion of highly substituted medium molecular weight hydroxyethyl starch (HAES 200/0.62)].

Dextrans are known to inhibit platelet aggregation. However, conflicting results have been reported with hydroxyethyl starch (HES), usually administered as a single dose. To clarify this, we studied the effects of HES on platelet number, aggregation and volume during the course of long-term hemodilution therapy. Twelve patients with disturbances of cerebrovascular perfusion were randomized and divided into two groups of 6 patients each. One group was treated with 10% HES 200/0.62, the other with 6% HES 200/0.62. The patients in group 1 received a loading dose of 500 ml, followed by 500 ml daily for 10 days. Group 2 patients were infused a loading dose of 500 ml, followed by 1000 ml on days 1 to 4 and 500 ml on days 5 to 10. 10% HES had a larger volume effect. The hematocrit was lowered by 19.0%, whereas 6% HES caused a decrease of only 15.6%. 10% HES lowered the platelet number significantly (p < 0.05) by 5.8%, 6% HES did not lower the platelet number significantly. Platelet volume decreased significantly during therapy (p < 0.05) in both groups. 10% HES reduced the platelet volume by 13.9%, the reduction with 6% HES was 9.0%. Under therapy with 10% HES, platelet aggregation declined slightly, but significantly (p < 0.05), whilst no effect was seen with 6% HES. During long-term hemodilution therapy with HES, the initial decrease in platelet number, which is due to dilution, is quickly compensated. The continuous decline in mean platelet volume during therapy is probably due to colloid-osmotic shrinkage. Since there is a positive correlation between platelet size and function, the slight inhibition of platelet aggregation caused by 10% HES is possibly due to the observed decline in platelet volume.

Blood Platelets↗

[Cerebral infarct in chronic acetylsalicylic acid poisoning].

Salicylates increase the risk of hemorrhage. An ischemic brain infarct has not previously been described following intoxication with salicylates. Case report. A 58-year-old comatose patient was admitted with symptoms of a basilar artery thrombosis. A diagnostic angiography was impossible because laboratory results showed a prothrombin time (Quick) of 9% and a toxic salicylate level of 528 mg/l. During the next few days CCT and MRI scans revealed ischemic infarctions within the brain stem. Discussion. Salicylates can induce hemorrhage both by inhibiting platelet aggregation and - especially in higher doses - by vitamin K antagonism, leading to severe coagulopathy. The occurrence of an ischemic infarction, as presented in this case report, can be explained by a reduction of the vitamin K-dependent protein C level.

Aspirin↗

Influence of low and medium molecular weight hydroxyethyl starch on platelets during a long-term hemodilution in patients with cerebrovascular diseases.

It is a well-known fact that plasma substitutes reduce the number of platelets after one-time administration due to a dilution effect. So far, it has not been sufficiently investigated how a long-term hemodilution therapy affects platelet number, volume distribution and function. In 20 patients with cerebrovascular diseases a 10-day hemodilution therapy was carried out. The patients were randomly and double-blind treated with either medium molecular weight (MMW) hydroxyethyl starch (HES) 200/0.5 or low molecular weight (LMW) HES 40/0.5. On the first day of therapy, both groups showed a significant reduction in the number of platelets (-13.2% and -8.4%, respectively, p < 0.05), which was smaller than the dilution effect. During the course of the therapy, the platelet number increased, reaching its initial value. Mean platelet volume decreased in both groups significantly (MMW HES -4.7%, p < 0.05, LMW HES -4.6%, p < 0.01). The share of large platelets decreased disproportionately (MMW HES -15.4%, p < 0.01, LMW HES -11.4%, p < 0.01). Spontaneous platelet aggregation was not affected by HES. During the course of a long-term hemodilution therapy, the initial dilution-induced drop in platelet number is quickly compensated. The decline in mean platelet volume, which increases towards the end of the therapy, is due to a great extent to a decline in the number of large platelets. This in turn is probably caused by a colloid-osmotic shrinkage of the platelets and increased degradation. There were no signs for a clinically relevant impairment of platelet function.

Blood Platelets↗

Plateletpheresis-induced increase in platelet reactivity using different cell separators.

OBJECTIVE: Since plateletpheresis is being used increasingly, it is important to regard quality control to check health risks for donors and to exclude these. DESIGN: Controlled randomised prospective open comparative study. SETTING: Department of Transfusion Medicine of a University Clinic. PARTICIPANTS: 112 platelet donors were examined. INTERVENTIONS: Prior to and after plateletpheresis platelet reactivity was determined. The platelet concentrates in the two groups of 56 donors each were produced using either the cell separator 'CS-3000' and the collecting chamber PLT 30TM with the Omnix system (group I) or the cell separator 'AS-104' (group II). RESULTS: In group I five donors showed a pathologically increased platelet reactivity (p = 0.1297) after plateletpheresis. In group II there were 10 donors with a pathologically increased platelet reactivity (p = 0.0046) after plateletpheresis. The mean concentration of platelets was reduced by separation using the CS-3000 Omnix from 238 +/- 49 x 10(3)/microliters to 172 +/- 32 x 10(3)/microliters (68 +/- 27 x 10(3)/microliters) and from 243 +/- 53 x 10(3)/microliters to 180 +/- 31 x 10(3)/microliters (63 +/- 33 x 10(3)/microliters) using the AS-104. In the first case the platelet yield was 3.9 x 10(11) platelets/concentrate, in the latter case it was 2.9 x 10(11) platelets/concentrate. The 'CS-3000 Omnix' is significantly more effective in separating (58.4 +/- 15.5%) than the 'AS-104' with 44.2 +/- 7.2% (p < 0.0001). CONCLUSIONS: Since both donor groups were comparable regarding all factors recorded--especially the cardiovascular risk factors--the separation process could be responsible for the different traumatisation of platelets.

Adult↗

[The legally required guidelines for reporting risks or side-effects caused by blood components].

OBJECTIVE: To prevent dangers to health resulting from the application of drugs, the legislator requires the central registration and evaluation of all drug risks, especially of side effects and reciprocal effects. Since 1988 pharmaceutical enterprises have had to denominate a qualified person ('Stufenplanbeauftragter') who is responsible for the fulfilment of obligatory reporting. In case of complaints or side effects he has to take suitable measures according to a special plan ('Stufenplan'). DATA SOURCES: The basis of this survey are the legal requirements for drugs ('Arzneimittelgesetz') and supplementary regulations which define the duties of the 'Stufenplanbeauftragter'. RESULTS: Blood components are subject to the legal requirements ('Arzneimittelgesetz') without reservations. Therefore the corresponding regulations have to be applied without modification in institutes for transfusion medicine. In this article the tasks of the 'Stufenplanbeauftragter' are summarized and practical experience of a university institute for transfusion medicine is presented. CONCLUSIONS: In connection with the transmission of viral infectious diseases it became evident that the 'Stufenplanbeauftragter' is very important for the initiation of effective measures in case of serious side effects. The security of blood components could be improved by the realization of the corresponding legal requirements in the institutes for transfusion medicine.

Adverse Drug Reaction Reporting Systems↗

HES 200/0.5 is not HES 200/0.5. Influence of the C2/C6 hydroxyethylation ratio of hydroxyethyl starch (HES) on hemorheology, coagulation and elimination kinetics.

The plasma clearance of hydroxyethyl starch (HES) depends on the initial molecular weight and the degree of substitution. So far, little attention has been paid to the clinical relevance of the C2/C6 substitution ratio of hydroxyethyl starch. 10 patients with cerebrovascular circulatory disturbance received hemodilution therapy for 10 days, consisting of 10% HES 200/0.5 (mean molecular weight 200 kD, degree of substitution 0.5) with a C2/C6 ratio of 13.4. A second group of 10 patients received a starch solution with identical initial molecular weight and degree of substitution but with a C2/C6 ratio of 5.7. After the administration of a single dose, no significant differences between the two groups were observed. After repeated administration, significant differences could be detected in hemorheology, coagulation and elimination (p < 0.01). The larger C2/C6 ratio led to a higher intravascular mean molecular weight (95 vs. 84 kD), which in turn led to a higher increase in serum concentration during the therapy (14.7 vs. 8.6 mg/ml). Hematocrit was lowered more (-30.5 vs. -23.5%) and plasma viscosity was increased more. There was also a more pronounced increase in partial thromboplastin time (+30% vs. +13%) and a factor of 2 larger decrease of factor VIII/von Willebrand factor-complex (p < 0.01), which exceeded the dilution effect. The higher C2/C6 ratio of HES 200/0.5/13.4 slows down enzymatic degradation. After repeated administration of this starch, large molecules accumulate which are inefficiently degraded. The same effect has been observed after therapy with highly-substituted HES. This accumulation of large molecules leads to a beneficial longer lasting volume effect. The disadvantages include an increase in plasma viscosity and coagulation disturbances, which cannot be explained with the respective dilution effect alone. For these reasons, the C2/C6 ratio is of clinical relevance and should be included in the product labeling in the future.

Alkylation↗