von Willebrand disease: pathogenesis, classification, and management.
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Publications and source records attributed to D Lillicrap.
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Factor IX is an essential vitamin K-dependent serine protease that participates in the intrinsic pathway of coagulation. The protein is expressed exclusively in the liver. The rare Leyden form of hemophilia B (inherited factor IX deficiency) results from point mutations in three proximal promoter elements that decrease factor IX expression. Recovery of expression occurs following puberty, with factor IX protein levels rising into the normal range. We have previously implicated the PAR domain D-site-binding protein (DBP) as well as an upstream element, site 5, as playing important roles in the phenotypic recovery of hemophilia B Leyden. Here we demonstrate that site 5 binds both the CCAAT/enhancer-binding protein (C/EBPalpha) and the ubiquitous Ets factor GA-binding protein (GABPalpha/beta). Transactivation of the factor IX promoter by the PAR proteins DBP and hepatic leukemia factor (HLF) is dependent on the binding of GABPalpha/beta to site 5, and coexpression of these two factors is required for optimal activation of this promoter. The binding of C/EBPalpha to site 5 also augments the activity of GABPalpha/beta. Analysis of the developmental regulation of site 5-binding proteins in rat liver has shown that C/EBPalpha and the GABPbeta subunit increase markedly in the 2 weeks after birth. These observations establish a functional association between the Ets factor GABPalpha/beta and C/EBPalpha and indicate that the two PAR proteins, DBP and HLF, may play complementary roles in factor IX activation. Given the developmental changes exhibited by these proteins, it is likely that they play a role in regulation of the normal factor IX promoter as well as promoters carrying hemophilia B Leyden mutations.
Coagulation factor VIII is an essential cofactor required for normal hemostatic function. A deficiency in factor VIII results in the bleeding disorder hemophilia A. Despite the fact that the factor VIII gene was cloned a decade ago, the mechanisms which control its transcription remain unresolved. In our studies, we have characterized 12 protein binding sites within the factor VIII promoter by DNase I protection assays performed with rat liver nuclear extracts. Three of these elements (sites 1 to 3) are situated within the 5' untranslated region of the gene, while three other sites (sites 4 to 6) lie within the first 100 bp upstream of the transcriptional start site. We have identified an additional site (site 7) approximately 300 bp upstream from site 6, as well as a cluster of five sites in a 250-bp region which terminates approximately 1 kb from the transcriptional start site. Seven of these binding sites (sites 2, 3, 4, 6, 7, 9, and 10) bind members of the C/EBP family of transcription factors. DBP also binds to five of these sites (sites 3, 4, 6, 7, and 9). Utilizing transient transfection studies in HepG2 cells, we have shown that deletion of the factor VIII promoter sequences distal to nucleotide -44 results in a significant but small increase in promoter activity. The activity of each of the various 5' deletion constructs is significantly enhanced by cotransfection of C/EBPalpha and D-site-binding protein expression plasmids, while cotransfection of both C/EBPalpha and C/EBPbeta plasmids resulted in a further enhancement of transactivation. These studies also provide evidence of a repressor element located between nucleotides -740 and -1002. Since the minimal promoter sequence (-44 to +148) maintains the transcriptional activity of the full-length promoter sequence, we proceeded to identify additional factors binding to sites 1 to 4. Competition studies revealed that a ubiquitous transcription factor, NF-Y, binds to site 4, while the liver-enriched transcription factor hepatocyte nuclear factor I (HNF-1) binds to site 1. Mutation analysis of the minimal promoter demonstrated that HNF-1 is critical for activating transcription of the factor VIII gene in vitro. Our results also suggest that the multiple upstream elements that we have identified may act as a backup regulatory region in the event of disruption of the HNF-1 element in the 5' untranslated region.
Twenty-two molecular diagnostic laboratories from 14 countries participated in a consortium study to estimate the impact of Factor VIII gene inversions in severe hemophilia A. A total of 2,093 patients with severe hemophilia A were studied; of those, 740 (35%) had a type 1 (distal) factor VIII inversion, and 140 (7%) showed a type 2 (proximal) inversion. In 25 cases, the molecular analysis showed additional abnormal or polymorphic patterns. Ninety-eight percent of 532 mothers of patients with inversions were carriers of the abnormal factor VIII gene; when only mothers of nonfamilial cases were studied, 9 de novo inversions in maternal germ cells were observed among 225 cases (approximately 1 de novo maternal origin of the inversion in 25 mothers of sporadic cases). When the maternal grandparental origin was examined, the inversions occurred de novo in male germ cells in 69 cases and female germ cells in 1 case. The presence of factor VIII inversions is not a major predisposing factor for the development of factor VIII inhibitors; however, slightly more patients with severe hemophilia A and factor VIII inversions develop inhibitors (130 of 642 [20%]) than patients with severe hemophilia A without inversions (131 of 821 [16%]).
A 2-year-old girl is described with severe haemophilia A (factor VIII: C < 0.01 units/ml). Both of her parents were phenotypically normal. Cytogenetic analysis on the proband demonstrated an interstitial X chromosome deletion encompassing Xq26-q28. Molecular studies with several polymorphic markers close to and within the factor VIII gene showed that the proband had inherited only the paternal factor VIII gene, indicating that the X chromosome deletion had occurred de novo in the maternal germ line. Further study of the factor VIII gene inherited by the proband from her father showed the presence of a de novo gene inversion mutation (a type 1, distal pattern inversion). Neither parent showed any evidence of the factor VIII inversion in their somatic DNA. The severe haemophilia A documented in this girl is therefore the result of two de novo mutations affecting the factor VIII gene, a maternally derived X chromosome deletion and a paternal factor VIII inversion mutation.
A new diagnostic technique based on DNA heteroduplex analysis has been used to identify specific point mutations in the von Willebrand's factor (vWF) gene of patients with von Willebrand's disease type 2B. Molecular analysis in these patients has shown previously that their mutations are clustered in a short region of sequence in exon 28 of the vWF gene. The principle of the method involves heteroduplex formation between amplified genomic sequence containing the defect and an exon 28 vWF gene universal heteroduplex generator (UHG). The UHG is a synthetic vWF gene exon 28 homologue which contains a number of sequence mismatches designed to generate allele specific heteroduplexes for each type 2B mutation. Individual mutant genotypes are identified by characteristic banding patterns following polyacrylamide minigel electrophoresis. The technique is rapid, simple, inexpensive, and is ideally suited for adoption by non-specialist haematology laboratories for screening purposes.
Hemophilia B Leyden is a rare form of inherited factor IX deficiency in which patients experience spontaneous postpubertal recovery of factor IX levels. The mutations resulting in this disorder are localized in a 40-nucleotide region encompassing the major transcriptional start site for factor IX. Here we report the further characterization of five cis-acting elements in the factor IX promoter and the effects on protein binding and transcriptional activation of five Leyden mutations (at nucleotides +13, -5, -6, -20, and -26) that occur within the proximal three elements (sites 1 through 3). Bandshift studies using nuclear extracts from four different rat tissues have shown that at least some of the proteins binding to each of the five sites are ubiquitous in nature. The pattern of DNA binding at site 1 suggests that this element plays an important role in mediating the liver-specific expression of factor IX. Additional studies with liver nuclear extracts obtained at several different points in development have shown an increase in DNA binding at sites 1, 4, and 5 between 1 day and 1 week. Using DNase I footprint analysis and competition bandshift studies, we have shown that the binding of nuclear proteins to each of the mutant sites is disrupted to a variable extent. There appears to be some, although reduced, protein binding to all of the mutant oligonucleotides apart from the -26 mutant. In vitro transcription assays have shown that each of the mutations reduces the global proximal promoter activity by approximately 40%. Two double mutant promoters did not show any additional downregulation in the in vitro transcription assay. In experiments designed to assess the relative transcriptional activity mediated from each of the five sites independently, we have tested artificial homopolymer promoters of each site in the in vitro transcription assay. These studies show that sites 4 and 5 are the strongest activators and that transactivation from site 5 is further enhanced by the albumin D site-binding protein. In summary, these investigations show deleterious effects of each of the Leyden mutations tested on the binding of trans-acting factors and also show disruption of transcriptional activation in a functional in vitro transcription assay. Our results also show that cis-acting elements 4 and 5 are the principal activators of this locus.
Two recent reports suggest that approximately 50% of the cases of severe hemophilia A (factor VIII:C < 0.01 U/mL) may be caused by a gross rearrangement of the factor VIII gene. The mutation involves genomic sequence from exon 1 to within intron 22 of the gene in an inversion event. This rearrangement can be detected on a Southern blot using a probe that is complementary to sequence from within intron 22. In this report, we describe the analysis of 71 severe hemophilia A patients for the presence of this mutation. Thirty-two of the patients (45%) showed evidence of the rearrangement, a figure that confirms the initial reports on 28 patients. Five different patterns of rearrangement have been noted, although two of these patterns (pattern 1 [70%] and pattern 2 [16%]) account for the majority of cases. The other patterns of rearrangement appear to be confined to individual families and may represent the result of additional sequence variation within the region of the genome to which the proximal 22 exons of factor VIII are translocated. Analysis of this patient population for the factor VIII inversion mutation has been extremely useful in a molecular diagnostic sense. In 23 of the cases studied (72%), the affected individual was the only documented hemophiliac in the family and, thus, previous linkage analysis had been limited to the provision of exclusion testing only. In conclusion, it appears that testing for the factor VIII inversion mutation will be positive in approximately 45% of severe hemophiliacs and as such should constitute the initial stage in the genetic testing protocol for these patients' families.
Use of molecular genetic studies for carrier detection and prenatal diagnosis of haemophilia A will be informative in approximately 75% of kindreds with a prior history of the disorder if previously reported bi-allelic intragenic polymorphisms are used. In this study we report the use of two multi-allelic, microsatellite repeat polymorphisms within the factor VIII gene in genetic testing for this disease. These two, dinucleotide repeat, polymorphisms have been analysed using a multiplex polymerase chain reaction (PCR) protocol, and results can be available within 3 d of receipt of samples. At the intron 13 polymorphic locus we have confirmed the original observation of eight alleles, whilst at the intron 22 locus, in contrast to a preliminary report of this polymorphism, we have seen five alleles. We have analysed 32 families (174 subjects) with the two microsatellite repeat markers and have found that using these two polymorphisms alone, 81% of families are informative for linkage analysis. The intron 13 repeat was informative in 22/31 families tested (71%) and the intron 22 polymorphism was informative in 12/17 families (71%). We have also found that in 11/32 families tested (34%) the microsatellite repeats were the only informative intragenic markers. In view of these observations, we believe that the most effective strategy for initiating haemophilia A genetic testing is to combine the multiplex PCR analysis of the intron 13 and 22 dinucleotide repeats with the PCR analysis of the intron 18 BclI marker. In our population this protocol provided informative results in approximately 88% of families and results can be available within 3 d of receiving the samples for testing.
The molecular pathology that results in hemophilia B has been determined by many studies to be highly variable. Several point mutations have been identified in a 40-bp region within the Factor IX promoter. These include mutations at nucleotides -20, -6, +8, and +13. Here we report an A to T transversion at position -5 of the Factor IX gene. There is strong circumstantial evidence to support an important role for this region of the Factor IX promoter in the developmental regulation of the gene through the binding of specific transcription factors.
The detection of clonal rearrangements of the immunoglobulin heavy chain gene by the polymerase chain reaction provides a rapid method to differentiate monoclonal from polyclonal B-lymphocyte proliferations. It has been shown to be highly specific and so far, no false-positive results have been described. A case of a poorly differentiated colonic adenocarcinoma that showed a "false positive" clonal immunoglobulin heavy chain gene rearrangement by the polymerase chain reaction technique is reported. DNA contamination was unlikely because of the strict adherence to the laboratory polymerase chain reaction protocol and also the repeated demonstration of the same amplified band in a separate experiment using DNA extracted from another piece of tumor tissue. The apparent monoclonal immunoglobulin heavy chain gene rearrangement in the first polymerase chain reaction may be related to a combination of the paucity of lymphoid cells in the tissue sample and the presence within this small number of lymphocytes of a clonal reactive cell population. It is, therefore, important to correlate the routine microscopic and immunohistochemical findings in the interpretation of polymerase chain reaction results, especially when working with nonlymphoid tumors and lymphocyte-poor lesions.
The origin of new single-gene mutations resulting in inherited disease is an issue which may be at least partially resolved by our enhanced ability to detect these changes. In this report we describe the identification of a missense mutation at codon 553 (guanine to adenine) in the von Willebrand factor (vWf) gene in affected members of a family with type IIB von Willebrand's disease (vWd). We found no evidence for this substitution in 190 normal vWf genes. The encoded substitution of a methionine for a valine at this residue is nonconservative in nature and has affected a vWf protein region which has been shown to facilitate binding to the platelet receptor glycoprotein Ib. In patients with type IIB vWd this interaction is characteristically increased in affinity. This mutation has also recently been recorded in four other type IIB vWd families. Thus, there is strong circumstantial evidence to incriminate this substitution as the disease causing mutation in this family. As further supporting evidence for this claim, we have shown by vWf polymorphism analysis that the mutation originated in a vWf gene transmitted from a phenotypically normal grandfather. Analysis of the sperm from this individual showed that approximately 5% of the germ line contained the mutant 553 sequence. These results confirm (1) that the candidate type IIB vWd mutation in this family occurred at some time during the development of the germ line of the grandfather and presumably was related to a mitotic cell division and (2) that, as a result, he is a low-level germ-line mosaic for the mutation.
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Thirty-eight patients with various forms of myelodysplastic syndrome (MDS) were studied for the loss of restriction fragment length polymorphism (RFLP) heterozygosity on chromosome 5q as inferential support for the presence of a growth regulatory locus in this area of the genome. Conventional chromosomal analysis was performed in addition to RFLP studies of constitutive and granulocyte DNA using five polymorphisms from chromosome 5. Allelic loss in granulocyte DNA was identified in only one patient in whom monosomy 5 had already been defined cytogenetically. These results suggest that DNA sequence loss from chromosome 5q other than that observed cytogenetically is a rare event in MDS. Thus the potential involvement of a growth regulatory gene(s), from this area of the genome, in the leukemogenic process most likely involves a more subtle genetic change.
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The mutant von Willebrand factor (vWf) molecule in type IIB von Willebrand's disease (vWd) has an increased binding affinity for the platelet receptor glycoprotein Ib (GpIb). In previous studies we have confirmed genetic linkage of this phenotype to the vWf gene and in this report we document three recurring missense mutations in the region of the gene that encodes the GpIb binding domain. Two families with type IIB vWd were found to have an arginine to tryptophan substitution at residue 543, three families had a valine to methionine substitution at residue 553, and one kindred had an arginine to glutamine change at amino acid 578. None of these sequence changes were found in 200 normal vWf genes and within each of the six families the mutations were only found in affected subjects. This is strong circumstantial evidence in support of these substitutions representing the disease causing mutations in these families. All three of these substitutions have occurred at CpG dinucleotide sequences, and their polymorphic associations indicate that they represent recurring new mutations. Missense mutations at these sites may represent the underlying genetic pathology in a large number of type IIB vWd families.
Of the factor IX sequence changes that we have identified in 65 consecutive males with haemophilia B, 11 (17%) are the same mutation. This mutation is a T----C transition at base 31311 which substitutes threonine for isoleucine397 (ile397) in the factor IX molecule. The 11 patients are of Western European descent and have the same haplotype: Hinf1 (-), Xmn1 (-), Taq1 (-), BamH1 (+), Malmö allele = thr148. The frequency of this haplotype was estimated and the probability of the same mutation occurring independently 11 times in this haplotype was miniscule. We conclude that these patients have a common ancestor despite the lack of overlapping pedigrees. The clinical symptoms of the disease were consistently moderate/mild in these 11 patients, whereas factor IX coagulation values obtained from the medical records varied more than sixfold between individuals. However, when plasma from five individuals was assayed by the same laboratory concurrently, the values varied less than twofold. Thus, in routine practice, clinical severity may correlate better with the presence of a given mutation than the factor IX coagulant activity. The high frequency of the mutation at ile397 indicates that carrier testing in families of Northern European descent with moderate/mild haemophilia B can be expedited by first determining whether this particular mutation is present. We demonstrate here that the technique of polymerase chain reaction (PCR) amplification of specific alleles (PASA) can be used to rapidly perform carrier testing in families with the ile397 mutation.