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Biomedical subjects

K A High

Publications and source records attributed to K A High.

At least 55 records · Page 3Linked to original sources

Functional characterization of the human factor VII 5'-flanking region.

Factor VII is a vitamin K-dependent coagulation protein essential for proper hemostasis. The human Factor VII gene spans 13 kilobase pairs and is located on chromosome 13 just 2.8 kilobase pairs 5' to the Factor X gene. In this report, we show that Factor VII transcripts are restricted to the liver and that steady state levels of mRNA are much lower than those of Factor X. The major transcription start site is mapped at -51 by RNase protection assay and primer extension experiments. The first 185 base pairs 5' of the translation start site are sufficient to confer maximal promoter activity in HepG2 cells. Protein binding sites are identified at nucleotides -51 to -32, -63 to -58, -108 to -84, and -233 to -215 by DNase I footprint analysis and gel mobility shift assays. A liver-enriched transcription factor, hepatocyte nuclear factor-4 (HNF-4), and a ubiquitous transcription factor, Spl, are shown to bind within the first 108 base pairs of the promoter region at nucleotide sequences ACTTTG and CCCCTCCCCC, respectively. The importance of these binding sites in promoter activity is demonstrated through independent functional mutagenesis experiments, which show dramatically reduced promoter activity. Transactivation studies with an HNF-4 expression plasmid in HeLa cells also demonstrate the importance of HNF-4 in promoting transcription in non-hepatocyte derived cells. Additionally, the sequence of a naturally occurring allele containing a previously described decanucleotide insert polymorphism at -323 is shown to reduce promoter activity by 33% compared with the more common allelic sequence.

Amino Acid Sequence↗

Activation of a recombinant human factor VII structural analogue alters its affinity of binding to tissue factor.

A competitive enzyme-linked immunoadsorbent assay (ELISA) technique has been developed to facilitate quantitative analysis of the earliest step in the initiation of the extrinsic pathway of coagulation, i.e., complex formation of factor VII/VIIa with tissue factor. The ELISA measures the binding of biotinylated human plasma factor VII to relipidated recombinant human tissue factor. Quantitation of the relative affinity (expressed as IC50) of any factor VII molecular population or structural analogue for tissue factor can be determined by competitive binding. Subnanomolar concentrations of both wild-type recombinant human factor VII (rFVII) and rFVII(R152Q), a mutation at the FVII activation site, competed effectively with biotinylated plasma-derived factor VII in binding to tissue factor. In contrast, the affinity of rFVII(R79Q), a mutation in the first epidermal growth factor-like domain, was 12-fold lower. Following activation of rFVII(R79Q), its affinity for tissue factor and enzymatic activity increased 4-fold and 6-fold, respectively. For wild-type rFVII, enzymatic activity rose significantly following activation. However, its affinity for tissue factor was unchanged. We conclude that both the activation state of factor VII and the mutation of amino-acid residues within the first epidermal growth factor-like domain may alter the affinity of factor VII for tissue factor.

Binding Sites↗

Targeted disruption of the mouse factor VIII gene produces a model of haemophilia A.

Haemophilia A is a classic X-linked disease which affects 1 in 5-10,000 males in all populations and is caused by defects in coagulation factor VIII. Roughly 60% of patients have severe disease with factor VIII activity < 1% of normal; they have frequent spontaneous bleeding into joints, soft tissues, muscles and internal organs. These patients usually require regular injections of plasma-derived or recombinant human factor VIII. Because this is expensive and can potentially lead to life-threatening complications, other forms of therapy, including gene therapy, have been proposed. Natural canine models of factor VIII and factor IX deficiency have been available for many years, and gene therapy attempts on these dogs have met with partial success. However, a small animal model of the disease is desirable for studies of factor VIII function and gene therapy. Using gene targeting, we have made a mouse with severe factor VIII deficiency.

Animals↗

Severe factor VII deficiency caused by mutations abolishing the cleavage site for activation and altering binding to tissue factor.

Factor VII (F.VII) is a vitamin-K-dependent serine protease required in the early stages of blood coagulation. We describe here a patient with severe F.VII deficiency, with a normal plasma F.VII antigen level (452 ng/mL) and F.VII activity less than 1%, who is homozygous for two defects: a G-->A transition at nucleotide 6055 in exon 4, which results in an Arg-->Gln change at amino acid 79 (R79Q); and a G-->A transition at nucleotide 8961 in exon 6, which results in an Arg-->Gln substitution at amino acid 152 (R152Q). The R79Q mutation occurs in the first epidermal growth factor (EGF)-like domain, which has previously been implicated in binding to tissue factor. The R152Q mutation occurs at a site (Arg 152-Ile 153) that is normally cleaved to generate activated F.VII (F.VIIa). Analysis of purified F.VII from patient plasma shows that the material cannot be activated by F.Xa and cofactors. In addition, in an in vitro binding assay using relipidated recombinant tissue factor, patient plasma showed markedly reduced binding to tissue factor at all concentrations tested. In an effort to separate the contributions of the two mutations, three recombinant variants, wild-type, R79Q, and R152Q, were prepared and analyzed. The R152Q variant had markedly reduced activity in a clotting assay, whereas R79Q showed a milder, concentration-dependent reduction. The R152Q variant exhibited nearly normal binding in the tissue factor binding assay, whereas the R79Q variant had markedly reduced binding. The time course of activation of the R79Q variant was slowed compared with wild-type. Our results suggest that the first EGF-like domain is required for binding to tissue factor and that the F.VII zymogen lacks activity and requires activation for expression of biologic activity.

Adult↗

A NlaIII polymorphism within the human factor VII gene.

The polymorphism is located within exon 5 of the human coagulation factor VII gene and is silent at the amino acid level. The distribution pattern is similar in Caucasians and African Americans. This polymorphism may be useful for restriction fragment length polymorphism (RFLP) diagnosis of factor X deficiency as well as factor VII deficiency, since the factor X gene is closely linked to the factor VII locus.

Base Sequence↗

n-3 fatty acids inhibit defects and fatty acid changes caused by phenytoin in early gestation in mice.

Our previous work has shown that n-3 fatty acids exert a protective effect against phenytoin-induced cleft palate when phenytoin was administered midgestation [gestational days (GD) 12 and 13] to CD-1 mice. The effects of dietary n-3 fatty acids on phenytoin teratogenicity were investigated at an earlier gestational period (GD 9) to examine whether n-3 fatty acids could exert protective action against other teratogenic effects of phenytoin apart from cleft palate. The effect of phenytoin exposure on maternal hepatic polyunsaturated fatty acid composition was also studied since delta 6 desaturase activity has been shown to be modified by pharmacological action. Female CD-1 mice were fed a standard laboratory diet (SLD), safflower oil (SAFF) or a cod liver/linseed oil (CLO/LO)-based diet for three weeks prior to impregnation and throughout pregnancy. Pregnant mice were administered a single i.p. dose of phenytoin on GD 9, and teratological assessments were performed on GD 19. Tissues were harvested on GD 10 for maternal hepatic phospholipid fatty acid analysis from another group of phenytoin-treated mice. The CLO/LO and the SLD mice, as compared to the SAFF-fed animals, showed a reduction in total malformations and fetal growth retardation due to phenytoin. Open eye defect was the only anomaly induced by phenytoin in the CLO/LO fetuses while phenytoin produced a variety of malformations in the SAFF fetuses such as tail defects, cleft palate, open eye and absence or blockage of the ureter.(ABSTRACT TRUNCATED AT 250 WORDS)

Abnormalities, Drug-Induced↗

Efficient transfection of primary cells in a canine hemophilia B model using adenovirus-polylysine-DNA complexes.

We have used molecular conjugates containing combinations of DNA, adenovirus, polylysine, and transferrin to transfect primary cells derived from canines with hemophilia B (factor IX deficiency), as well as a canine epithelial cell line. Transfection of canine hemophilia B fibroblasts with molecular conjugates resulted in efficient transfection and expression of luciferase DNA-adenovirus-polylysine (AdpL) conjugates or luciferase DNA-adenovirus-polylysine-transferrin (hTfpL/AdpL) conjugates. No expression in canine hemophilia B fibroblasts was evident after exposure to DNA alone, or DNA conjugated with polylysine and transferrin. Transfection efficiencies of 50% or more could be demonstrated in cells transfected with a beta-galactosidase reporter gene as part of an hTfpL/AdpL molecular conjugate. Transfection with canine factor IX AdpL conjugates or canine factor IX hTfpL/AdpL conjugates resulted in factor IX expression for more than 2 weeks in vitro in hemophilia B canine fibroblasts. Maximum levels of expression of over 700 ng of canine factor IX/10(6) cells/24 hr were demonstrated in fibroblasts after transfection with canine factor IX hTfpL/AdpL conjugates. Similar conjugates were used to transfect hemophilia B canine bone marrow stromal cells and Madin-Darby canine kidney cells that also expressed canine factor IX. The use of molecular conjugates to transfect primary cells may be feasible as a means of in vitro or in vivo gene therapy for hemophilia B, and can be tested in the canine hemophilia B model.

Adenoviridae↗

The direct binding of human factor VII in plasma to recombinant human tissue factor.

The extrinsic pathway of coagulation is initiated when zymogen factor VII binds to its cell surface receptor tissue factor. Recently recombinant human tissue factor has become available and therefore in this study the direct binding of human factor VII in plasma to recombinant tissue factor was explored. Factor VII binding was quantitated by a standard ELISA protocol using monospecific polyclonal rabbit anti-human factor VII as the primary antibody and goat anti-rabbit IgG conjugated to alkaline phosphatase as the second antibody. Both the oxidation state of the recombinant tissue factor and calcium ion concentration were found to be critical for the efficient binding of factor VII. A linear relationship was observed between absorbance and factor VII concentration when normal pooled human plasma was diluted in the range 1:25 to 1:1000 (factor VII concentration 0.5-20 ng/ml). Evidence is provided to show that binding is both specific for human coagulation factor VII and can be utilized to detect factor VII molecular variants with impaired tissue factor binding.

Binding, Competitive↗

Human coagulation factor X deficiency caused by a mutant signal peptide that blocks cleavage by signal peptidase but not targeting and translocation to the endoplasmic reticulum.

Human factor XSanto Domingo is a form of coagulation factor X in which a mutation within the signal peptide region of the precursor protein has been correlated genetically with a severe deficiency of factor X in the affected individual. A point mutation results in substitution of Arg for Gly at the critical -3 position of the factor X signal peptide. To determine the biochemical effect of this mutation on the biosynthesis of factor X, the wild-type and mutant factor X cDNAs were subcloned into a vector for transcription and translation in vitro. Translation products of mRNAs encoding portions of both mutant and wild-type proteins were used in a systematic biochemical approach to evaluate directly the effect of the mutation on targeting, transport, and proteolytic processing in vitro. The results show that targeting and transport of factor XSanto Domingo to the endoplasmic reticulum are functionally dissociated from the removal of the signal peptide by signal peptidase. Factor XSanto Domingo is translocated into the endoplasmic reticulum but not processed by signal peptidase. Transient expression of the wild-type and mutant factor X in human embryonic kidney 293 cells revealed apparently normal secretion of the glycosylated two-chain form of factor X but no secretion of factor XSanto Domingo. Thus, the inability of signal peptidase to cleave factor XSanto Domingo is directly responsible for the absence of circulating factor X and leads to the bleeding diathesis in the affected individual.

Amino Acid Sequence↗

Decentralized testing for prothrombin time and activated partial thromboplastin time using a dry chemistry portable analyzer.

Previous work has established the precision and accuracy of a portable blood coagulation analysis system using paramagnetic particles contained in a dry reagent on a disposable test card. We examined the deployment of this technology in decentralized hospital settings and compared test results obtained in the surgical intensive care unit, coronary care unit, and outpatient cardiology clinic with those obtained in the central laboratory. Nursing personnel were instructed in the use of the system, and quality control testing was performed daily by the laboratory staff. In the intensive care units, patient subjects included those on whom tests of prothrombin time and activated partial thromboplastin time had been ordered. Immediate determinations were performed by the intensive care unit nursing staff on the same citrated, whole-blood samples that were subsequently sent to the central laboratory. In the outpatient cardiology clinic, fingerstick blood samples were obtained for prothrombin time determinations with the dry chemistry system. Paired prothrombin time samples obtained by venipuncture were run in the hospital laboratory. The study involved multiple users, multiple locations, two lots of activated partial thromboplastin time cards, and several different instruments, over an extended period. Correlation coefficients between the dry chemistry system and the hospital laboratory under these conditions were in an acceptable range in all sites studied. We concluded that, with appropriate training and quality assurance, the dry chemistry system provides an acceptable alternative to the hospital laboratory for prothrombin time and activated partial thromboplastin time determinations.

Chemistry Techniques, Analytical↗

Characterization of the human blood coagulation factor X promoter.

Blood coagulation Factor X is a serine protease required for both the intrinsic and extrinsic pathways of coagulation. The gene for Factor X spans 27 kilobases and is located on chromosome 13, in close proximity to the gene encoding Factor VII. Expression of Factor X is restricted to the liver. We have characterized the human Factor X promoter by mapping the start sites of transcription and carrying out a functional analysis of the promoter. The first 279 base pairs (bp) of 5'-flanking sequence upstream from the first AUG are sufficient to confer maximal promoter activity in HepG2 cells. Protein-binding sites within the 279-bp fragment are defined using gel mobility shift assays. Mutagenesis of two specific sequences within the 279-bp fragment (CCAAT at -120 to -116, and ACTTTG at -56 to -51), results in loss of ability to bind proteins from a HepG2 nuclear extract, and profound reduction in promoter activity of the 279-bp fragment. We conclude that these two protein-binding sites are critical for the activity of the Factor X promoter.

Base Sequence↗

Biology of inherited coagulopathies: factor IX.

Characterization of the functional domains of FIX and related vitamin K-dependent proteins has been enhanced by the isolation and characterization of the genes encoding these proteins. A better understanding of the interactions between FIX's activators, cofactors, and substrate, FX, has been gained through the study of naturally occurring variants isolated from patients with hemophilia B and genetically engineered recombinant molecules. With the determination of specific mutations in hemophilia B kindreds, and through advances in molecular techniques, especially the polymerase chain reaction, more accurate determination of carrier status and prenatal diagnosis can now be made.

Amino Acid Sequence↗