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PubMed · 14220199

[BLEEDING TIME].

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J CAEN. [BLEEDING TIME].. https://pubmed.ncbi.nlm.nih.gov/14220199/

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DDAVP normalized the bleeding time in patients with congenital platelet TxA2 receptor abnormality.

BACKGROUND: An Arg60-to-Leu mutation was found in the first cytoplasmic loop of the PLT TxA2 receptor as a new congenital PLT disorder characterized by impaired responsiveness to TxA2. However, it has not been clarified whether DDAVP is effective in correcting the bleeding time (BT) in this PLT disorder. STUDY DESIGN AND METHODS: DDAVP (0.4 microg/kg) was intravenously administered over 20 minutes in five patients with this PLT disorder, and template BT, PLT retention to glass beads, PLT aggregation, and a coagulation study were performed before and after the infusion of DDAVP. PLT TxA2 synthesis defects (cyclo-oxygenase deficiency, volunteers taking aspirin), thrombasthenia, and Bernard-Soulier syndrome were also included in this study. RESULTS: The normalization of BT was found in all patients with this PLT disorder, and one of the patients successfully underwent oral surgical procedures with DDAVP as the only hemostatic agent. DDAVP was also efficacious in the TxA2 synthesis defect but not in other disorders. FVIII coagulation activity, vWF antigen, and ristocetin cofactor significantly increased in all patients after DDAVP, but no changes were seen in the PLT retention rate and PLT aggregation study after DDAVP infusion. CONCLUSION: DDAVP was effective in correcting BT in patients with impaired responsiveness to TxA2 as well as impaired production of TxA2.

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Identification of a novel point mutation in platelet glycoprotein Ibalpha, Gly to Ser at residue 233, in a Japanese family with platelet-type von Willebrand disease.

BACKGROUND: Interaction between platelet glycoprotein (GP)Ibalpha and von Willebrand factor (VWF) has critical roles in both physiological hemostasis and thrombosis. Platelet-type von Willebrand disease (plt-VWD) is a congenital bleeding disorder characterized by gain-of-function mutations of GPIbalpha. To date, two mutations in GPIbalpha, G233V and M239V, have been reported in four unrelated families with plt-VWD. OBJECTIVE: The present study aimed to determine whether G233S of GPIbalpha, a new mutation observed in plt-VWD patients, causes the plt-VWD phenotype and to examine whether conversions to other residues at this position affect VWF binding. PATIENTS AND METHODS: The propositus was a 3-year-old Japanese male. He displayed bleeding symptoms and moderate thrombocytopenia. His brother was similarly affected. Platelets from both patients were analyzed by ristocetin- or shear-induced platelet aggregation. DNA sequencing was performed to analyze the GPIbalpha sequence. We examined the 125I-labeled VWF binding using a series of recombinant GPIbalpha fragments with different residues at position 233 (G233S, G233A, G233K, and G233D) together with naturally occurring mutations previously reported in patients (G233V and M239V). RESULTS: Platelet function analysis indicated that platelets from both patients had a typical plt-VWD phenotype. DNA sequencing analysis showed a heterozygous mutation of Gly to Ser at residue 233 of GPIbalpha in both patients. The 125I-labeled VWF binding to mutant compared with the wild type displayed three patterns, gain-of-function (G233S, G233V, and M239V), equivalent function (G233A), and loss-of-function (G233K and G233D). CONCLUSIONS: The G233S is a molecular basis of plt-VWD, and residue 233 plays critical roles in regulating VWF binding.

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