PubMed Health⌕ Search

Biomedical subjects

E Groeneveld

Publications and source records attributed to E Groeneveld.

30 records · Page 2Linked to original sources

Genetic and environmental trends in German swine herdbook populations.

Environmental and genetic trends for swine herdbook populations for Germany for the years 1979 to 1987 were estimated using mixed model methodology on test station data. Daily gain (DG), feed conversion efficiency (FCE), lean-to-fat ratio (R) and meat quality (Goefo) were analyzed simultaneously with different incidence matrices. Breed, season and test station were fixed effects; herd, litter and additive genetic effects for sib groups were random effects. Because the relationship data were incomplete, unknown ancestors were assigned to genetic groups. Carcass weight was included as a covariable for R. In DG, FCE and R, season was defined as month of test over all breeds and test stations. On the other hand, season for Goefo was replaced by slaughter location-date interaction. Cumulative genetic responses from the multivariate analysis for the component traits of the aggregate genotype ranged from 22 g to 55 g in DG, -.7 to 3.2 units in Goefo, -.1 to .5 in valuable cuts, and -.04 to -.15 in FCE. Cumulative monetary response over these 9 yr. per pig were $4.3, $3.7, $6.2 and $5.1 for German Landrace, German Large White, Pietrain and German Landrace B. Important environmental trends were found in FCE, Goefo and R. Total genetic improvement amounted to 1.6% of the value of national pork production in Germany during these 9 yr. With incomplete convergence, the genetic response was underestimated and environmental trends were overestimated.

Animals↗

New monoclonal antibodies recognizing epidermal differentiation-associated keratins in formalin-fixed, paraffin-embedded tissue. Keratin 10 expression in carcinoma of the vulva.

Two monoclonal antibodies (MAb) specific for differentiation-related epidermal keratins have been developed. They represent specific molecular probes for different stages of epidermal differentiation. Antibody DE-K10 is chain-specific for cytokeratin polypeptide no. 10 (56.5 kD) expressed in all suprabasal layers of the epidermis. Antibody DE-SCK is specific for modified stratum corneum keratins and thus represents a marker for the terminal step of epidermal differentiation. Since the epitopes identified by both antibodies are preserved in formalin-fixed, paraffin-embedded tissue sections, these antibodies can be used for retrospective studies of differentiation in various pathological processes. We have used antibody DE-K10 to study the cytokeratin 10 expression in 26 stage II or III vulvar squamous cell carcinomas. Preliminary data suggest an increased risk of recurrence in cytokeratin 10 negative tumours.

Antibodies, Monoclonal↗

Alpha 2-antiplasmin Enschede is not an inhibitor, but a substrate, of plasmin.

alpha 2-Antiplasmin Enschede is a variant of alpha 2-antiplasmin which has lost its ability to inhibit plasmin irreversibly and which is associated with a haemorrhagic disorder [Kluft et al. (1987) J. Clin. Invest. 80, 1391-1400]. The abnormal protein was purified from the plasma of a homozygous patient and subjected to one-dimensional peptide mapping using papain for digestion. A slightly abnormally migrating polypeptide (Mr 17,000) was found which represented the C-terminal part of the molecule (the N-terminus of the polypeptide corresponded to Gly-338 in normal alpha 2-antiplasmin) and which contained the reactive centre. The interaction of plasmin with alpha 2-antiplasmin Enschede was studied by adding plasmin to plasma of the homozygous patient. SDS/polyacrylamide-gel electrophoresis and immunoblotting showed that no complex persisted, but that the abnormal alpha 2-antiplasmin was cleaved into two fragments of Mr 56,000 and 14,000 respectively. The latter fragment co-migrated with the post-complex peptide, which is cleaved from normal alpha 2-antiplasmin during complex-formation with plasmin. In a purified system, catalytic amounts of plasmin rapidly cleaved alpha 2-antiplasmin Enschede into the aforementioned fragments. In kinetic studies alpha 2-antiplasmin Enschede reversibly and temporarily inhibited the plasmin-catalysed hydrolysis of D-valyl-L-leucyl-L-lysine p-nitroanilide ('S-2251') as a competitive inhibitor (Ki,app. 35 nM). It was concluded that alpha 2-antiplasmin Enschede apparently forms a normal complex with plasmin. The complex is, however, not stable, but disintegrates rapidly to a cleaved form of alpha 2-antiplasmin Enschede and active plasmin. The abnormal protein thus behaves like a substrate, instead of an inhibitor, of plasmin.

Amino Acid Sequence↗

alpha 2-Antiplasmin Enschede: dysfunctional alpha 2-antiplasmin molecule associated with an autosomal recessive hemorrhagic disorder.

alpha 2-Antiplasmin (alpha 2-AP) is a major fibrinolysis inhibitor, whose complete, congenital absence has been found to be associated with a distinct hemorrhagic diathesis. We studied a 15-yr-old male with a hemorrhagic diathesis after trauma from early childhood on. This bleeding tendency was associated with a minimal alpha 2-AP level recorded functionally in the immediate plasmin inhibition test: less than or equal to 4% of normal. However, a normal plasma concentration of alpha 2-AP antigen (83%) was found. His sister (5 yr old) showed similar results (2 and 92%). In their family, eight heterozygotes could be identified by half-normal activity results and normal antigen concentrations. The inheritance pattern is autosomal recessive. On analysis, the alpha 2-AP of the propositus was homogeneous in all respects tested, suggesting a homozygous defect. We designated the abnormal alpha 2-AP as alpha 2-AP Enschede. alpha 2-AP Enschede showed the following characteristics: (a) complete immunological identity with normal alpha 2-AP; (b) normal molecular weight (sodium dodecyl sulfate-polyacrylamide gel electrophoresis); (c) normal alpha-electrophoretic mobility; (d) presence in plasma of both molecular forms excluding an excessive conversion to the less reactive non-plasminogen-binding form; (e) quantitatively normal binding to lys-plasminogen and to immobilized plasminogen kringle 1-3; and (f) normal Factor XIII-mediated binding to fibrin. Functional abnormalities were found in: (i) no inhibition of amidolytic activities of plasmin and trypsin, even on prolonged incubation; (ii) no formation of plasmin-antiplasmin complexes in plasma with plasmin added in excess; and (iii) no inhibition of fibrinolysis by fibrin-bound alpha 2-AP. In the heterozygotes, the presence of abnormal alpha 2-AP did not interfere with several functions of the residual normal alpha 2-AP. One-dimensional peptide mapping showed an abnormal pattern of papain digestion. We conclude that in this family, abnormal antiplasmin molecules, defective in plasmin inhibition but with normal plasminogen-binding properties, have been inherited. The residual plasminogen-binding properties do not protect against a hemorrhagic diathesis.

Adolescent↗

Characterization and fibrin-binding properties of different molecular forms of pro-urokinase from a monkey kidney cell culture.

Culture fluid of a monkey kidney cell culture was harvested every two days, for a two week period, in order to obtain urokinase in the zymogen form. Pro-urokinase was isolated by immunoadsorption chromatography and gel filtered on Sephadex G-150, which resulted in three peaks with pro-urokinase activity. SDS-polyacrylamide gel electrophoresis showed that the first peak contained 55 kd pro-urokinase, aggregated with high molecular weight contaminants, whereas the second and third peaks consisted of almost pure 55 kd and 30 kd pro-urokinase, respectively. The latter form represented a relatively unknown and inactive precursor of low molecular weight urokinase, which was, like 55 kd pro-urokinase, activatable with plasmin. In comparison with tissue-type plasminogen activator, 55 kd and 30 kd pro-urokinase only bound weakly to purified fibrin clots and fibrin-sepharose columns. The extent of binding of the two pro-urokinases and their plasmin-activated forms to fibrin-sepharose decreased in the following order: 55 kd pro-urokinase 30 kd pro-urokinase 55 kd urokinase 30 kd urokinase. These results indicate that the two precursors exhibited stronger binding to fibrin-sepharose than the corresponding active enzymes, and the two 55 kd forms exhibited stronger binding than the corresponding 30 kd forms. This indicates the importance of both the zymogen nature and an intact NH2-terminal part of the molecules for binding to fibrin.

Animals↗

Isolation and functional characterization of the heavy and light chains of human tissue-type plasminogen activator.

Two-chain tissue-type plasminogen activator (t-PA), which consists of a heavy chain (Mr congruent to 38,000) and a light chain (Mr congruent to 31,000) connected by a disulfide bridge, was reduced with 2-mercaptoethanol and then air-reoxidized at a low protein concentration and carboxamidomethylated. The two chains were separated by means of zinc chelate-agarose, which was found to bind the light chain selectively. The light chain was fully active on the tripeptide substrate H-D-isoleucyl-L-prolyl-L-arginine p-nitroanilide (S-2288) and partially active on plasminogen. The plasminogen activator activity of the light chain was, in contrast to that of two-chain t-PA, not stimulated by fibrin or fibrinogen fragments. Fibrin-agarose chromatography of radiolabeled chains showed that only the heavy chain bound to fibrin. These results indicate that the active site-containing light chain in t-PA needs the heavy chain for fibrin stimulation of its plasminogen activator activity.

Amino Acids↗

Appropriate milieu for the assay of alpha-2-antiplasmin activity with chromogenic substrates.

Inhibition reference curves for alpha 2-antiplasmin showed a deviation from linearity at low inhibitor concentrations using the chromogenic substrate S-2251. Extrapolation of these curves to zero inhibition gave higher amidolytic activities than actually recorded with the free enzyme plasmin. It was further found that comparison of purified alpha 2-antiplasmin and that in plasma was prevented by the deviation. The difference between calculated and measured plasmin activity could not be attributed to instability of plasmin. It was established that the observations (1) were specific for high concentrations of S-2251, (2) were not the same with another plasmin substrate, chromozym PL, and (3) were related to the addition of plasma proteins. Apparently, the problem was related to the solubility state of S-2251. A solution to this problem is the addition of nonionic detergents, notably Tween 80 (0.01%) or Triton X-100 (0.03%), which prevent all deviations.

Chromogenic Compounds↗

Demonstration of urokinase-related fibrinolytic activity in human plasma.

Various preparations of anti-urokinase antibodies were found to quench a part of the plasma fibrinolytic activity. This part was also inhibited by a specific, urokinase inhibitor isolated from placenta. These observations indicate that plasma contains a urokinase-related immuno-reactivity. This activity was found to belong to the factor XII-independent proactivator system.

Antibodies↗

Fluorogenic substrates for sensitive and differential estimation of urokinase and tissue plasminogen activator.

Two fluorogenic peptide amides have been synthesized, i.e. BOC-L-valyl-glycyl-L-arginine 2-naphthylamide (I) and L-valyl-glycyl-L-arginine 2-naphthylamide (II). The kinetic parameters of plasmin, urokinase and human uterine tissue plasminogen activator on substrates I and II have been determined. Quite unexpectedly, the tissue activator appeared to require for its activity a blocked amino terminus on the substrate. This was further corroborated with other synthetic substrates. Plasmin and urokinase did not show this requirement.

Amides↗

[The use of biotechnology in animal breeding].

Biotechnological techniques are extensively used in dairy breeding programs. Thus, artificial insemination and embryo transfer (and associated techniques) constitute an integral part of modern breeding programs. In pig breeding, embryo transfer is mostly restricted to special problem areas because of its high costs. Currently this technique is used for the exchange of genetic material on an international level, for the creation of specific pathogene free herds, and in connection with cryoconservation for the setup of embryobanks in the context of the preservation of genetic resources.

Animals↗