PubMed HealthSearch

Biomedical subjects

J L Moake

Publications and source records attributed to J L Moake.

At least 19 recordsLinked to original sources

Shear stress-induced von Willebrand factor binding to platelet glycoprotein Ib initiates calcium influx associated with aggregation.

Platelets subjected to elevated levels of fluid shear stress in the absence of exogenous agonists will aggregate. Shear stress-induced aggregation requires von Willebrand factor (vWF) multimers, extracellular calcium (Ca2+), adenosine diphosphate (ADP), and platelet membrane glycoprotein (GP)Ib and GPIIb-IIIa. The sequence of interaction of vWF multimers with platelet surface receptors and the effect of these interactions on platelet activation have not been determined. To elucidate the mechanism of shear stress-induced platelet aggregation, suspensions of washed platelets were subjected to different levels of uniform shear stress (15 to 120 dyne/cm2) in an optically modified cone and plate viscometer. Cytoplasmic ionized calcium ([Ca2+]i) and aggregation of platelets were monitored simultaneously during the application of shear stress; [Ca2+]i was measured using indo-1 loaded platelets and aggregation was measured as changes in light transmission. Basal [Ca2+]i was approximately 60 to 100 nmol/L. An increase of [Ca2+]i (up to greater than 1,000 nmol/L) was accompanied by synchronous aggregation, and both responses were dependent on the shear force and the presence of vWF multimers. EGTA chelation of extracellular Ca2+ completely inhibited vWF-mediated [Ca2+]i and aggregation responses to shear stress. Aurin tricarboxylic acid, which blocks the GPIb recognition site on the vWF monomer, and 6D1, a monoclonal antibody to GPIb, also completely inhibited platelet responses to shear stress. The tetrapeptide RGDS and the monoclonal antibody 10E5, which inhibit vWF binding to GPIIb-IIIa, partially inhibited shear stress-induced [Ca2+]i and aggregation responses. The combination of creatine phosphate/creatine phosphokinase, which converts ADP to adenosine triphosphate and blocks the effect of ADP released from stimulated platelets, inhibited shear stress-induced platelet aggregation without affecting the increase of [Ca2+]i. Neither the [Ca2+]i nor aggregation response to shear stress was inhibited by blocking platelet cyclooxygenase metabolism with acetylsalicylic acid. These results indicate that GPIb and extracellular Ca2+ are absolutely required for vWF-mediated [Ca2+]i and aggregation responses to imposed shear stress, and that the interaction of vWF multimers with GPIIb-IIIa potentiates these responses. Shear stress-induced elevation of platelet [Ca2+]i, but not aggregation, is independent of the effects of release ADP, and both responses occur independently of platelet cyclooxygenase metabolism. These results suggest that shear stress induces the binding of vWF multimers to platelet GPIb and this vWF-GPIb interaction causes an increase of [Ca2+]i and platelet aggregation, both of which are potentiated by vWF binding to the platelet GPIIb-IIIa complex.

Adenosine Diphosphate

Chronic relapsing thrombotic thrombocytopenic purpura in infants with large von Willebrand factor multimers during remission.

We studied two children with recurrent schistocytic hemolytic anemia and thrombocytopenia beginning in the neonatal period. One patient had a stroke during one of the episodes of thrombotic thrombocytopenic purpura. The presence of unusually large von Willebrand factor multimers was demonstrated in both children during clinical and hematologic remissions. Treatment with corticosteroids and intravenous injections of immune globulin was unsuccessful in the one patient who received it. Immediate improvement occurred in both patients after the infusion of fresh-frozen plasma. Symptoms of thrombocytopenia continue to recur at regular intervals in the absence of periodic fresh-frozen plasma infusions. One of these children apparently has chronic relapsing thrombotic thrombocytopenic purpura; the second has a chronic relapsing disorder similar to thrombotic thrombocytopenic purpura.

Blood Component Transfusion

Granulocyte proteases do not process endothelial cell-derived unusually large von Willebrand factor multimers to plasma vWF in vivo.

The unusually large von Willebrand factor (ULvWF) multimers present within endothelial cells and platelets are larger than the vWF multimers normally found in adult human plasma. Furthermore, ULvWF multimers are cleared rapidly from the circulation if they are released by intense endothelial cell stimulation. The mechanisms by which the ULvWF multimers are processed to large plasma vWF multimers are not known. It has been demonstrated that granulocyte proteases are capable of decreasing vWF multimer size in vitro, and that some patients with myeloproliferative syndromes have a relative absence of large plasma vWF multimers in sodium citrate-anticoagulated plasma samples. In order to assess the influence of granulocyte proteases on vWF multimer size, we evaluated the vWF multimeric patterns in 94 plasma samples from 60 patients with neutrophil counts that were either considerably elevated or extremely reduced. In 83 of 94 plasma samples, the vWF multimeric patterns were normal. No patients with very low neutrophil counts had ULvWF multimers present. These observations suggest that granulocyte proteases are not likely to be involved in vivo in the processing of ULvWF multimers from endothelial cells to the smaller vWF forms in circulation.

Endopeptidases

von Willebrand factor binding to platelet GpIb initiates signals for platelet activation.

The hypothesis that von Willebrand factor (vWF) binding to platelet membrane glycoprotein Ib (GpIb) initiates intracellular pathways of platelet activation was studied. We measured the biochemical responses of intact human platelets treated with ristocetin plus vWF multimers purified from human cryoprecipitate. vWF plus ristocetin causes the breakdown of phosphatidylinositol 4,5-bisphosphate, the production of phosphatidic acid (PA), the activation of protein kinase C (PKC), increase of ionized cytoplasmic calcium ([Ca2+]i), and the synthesis of thromboxane A2. PA production, PKC activation, and the rise of [Ca2+]i stimulated by the ristocetin-induced binding of vWF multimers to platelets are inhibited by an anti-GpIb monoclonal antibody, but are unaffected by anti-GpIIb-IIIa monoclonal antibodies. Indomethacin also inhibits these responses without impairing platelet aggregation induced by vWF plus ristocetin. These results indicate that vWF binding to platelets initiates specific intraplatelet signaling pathways. The mechanism by which this occurs involves an arachidonic acid metabolite-dependent activation of phospholipase C after vWF binding to platelet membrane GpIb. This signal then causes PKC activation and increases of [Ca2+]i, which promote platelet secretion and potentiate aggregation.

Calcium

Effectiveness of the cryosupernatant fraction of plasma in the treatment of refractory thrombotic thrombocytopenic purpura.

Many patients with thrombotic thrombocytopenic purpura (TTP) satisfactorily respond to plasma therapy (plasmapheresis and/or plasma infusion). Some, however, respond either not at all or only transiently and incompletely. Evidence indicates that platelets and endothelial cell-derived unusually large von Willebrand factor (ULvWF) multimers, as well as the largest vWF multimers in plasma, form thrombi which are deposited in the microvascular circulation. Accordingly, platelet transfusions are avoided unless there is intra-cranial or other life-threatening hemorrhage. The largest plasma multimers of vWF are, however, replenished by the infusion of large volumes of whole plasma. We postulated that under conditions of massive plasma replacement, plasma depleted of the largest multimers of vWF might be preferable for the treatment of TTP episodes. The largest vWF multimers sediment in the cryoprecipitate, and the cryoprecipitate-poor fraction of plasma (cryosupernatant) is depleted of these forms. Seven patients responding inadequately to intensive plasma therapy were switched to receive cryosupernatant in place of whole plasma. All patients improved quickly following this change in therapy, and the TTP syndrome resolved in all seven.

Adult

von Willebrand factor multimeric levels and patterns in patients with severe preeclampsia.

The clinical manifestations of severe preeclampsia and thrombotic thrombocytopenic purpura are similar. Patients with thrombotic thrombocytopenic purpura have been demonstrated to have larger than usual von Willebrand factor multimers. Serial serum samples were taken from patients with severe preeclampsia, all with platelet counts less than 50,000. Von Willebrand factor multimeric patterns were normal in all the patients except one, who later proved to have chronic relapsing thrombotic thrombocytopenic purpura. All patients had elevated levels of von Willebrand factor. Although the clinical presentations of thrombotic thrombocytopenic purpura and severe preeclampsia with thrombocytopenia have many similarities, the underlying pathophysiology of each disorder appears to be different.

Diagnosis, Differential

Relationship between human development and disappearance of unusually large von Willebrand factor multimers from plasma.

von Willebrand factor (vWF) multimers were examined in fetal, umbilical cord, and neonatal platelet-poor plasma (PPP) specimens. Sixty-five of 65 (100%) fetal PPP samples aged less than 35 weeks and seven of ten (70%) fetal samples aged greater than 35 weeks had unusually large vWF (ULvWF) multimers. Thirty of 46 (65%) cord PPP samples from neonates ranging in gestational age from 34 to 41 weeks had ULvWF. There was no significant relationship between either gestational age at time of delivery or birth weight and likelihood of finding ULvWF multimers in cord PPP samples. No maternal PPP sample contained ULvWF multimers. Serial heelstick samples from 16 preterm and term neonates were analyzed for 8 weeks. ULvWF multimers disappeared from the PPP of ten of the neonates during this time. The PPP of four neonates had vWF patterns similar to those in normal adult PPP throughout the sampling period. The ULvWF multimeric forms of fetal and neonatal PPP samples were similar to those constitutively released from endothelial cells. They were not as slowly migrating in a very porous 0.5% agarose gel system as the ULvWF multimers released from Weibel-Palade bodies in response to the calcium ionophore A23187. A vWF protomer was present in 97% of fetal samples, 83% of cord blood specimens, and 11% of neonatal heelstick samples, but was not found in any maternal sample. These results indicate that control mechanisms operative in older children and adults to prevent circulation of ULvWF multimers and vWF protomeric forms are normally acquired late in uterine life or during the neonatal period. ULvWF multimers, which are normal components of fetal, most cord, and some neonatal plasma samples, may contribute to in utero and postnatal hemostasis.

Autoradiography

Severe hemolysis and red cell fragmentation caused by the combination of a spectrin mutation with a thrombotic microangiopathy.

Two patients are described who presented with severe hemolysis and erythrocyte fragmentation. One patient had renal allograft rejection and disseminated intravascular coagulation, and the other had thrombotic thrombocytopenia purpura. The severity of hemolysis and the red cell abnormalities were considerably more profound than usually seen in patients with thrombotic microangiopathies. After evaluation of blood smears prepared before the onset of the disease and biochemical characterization of proteins of the red blood cell skeleton, a mutation of the skeletal protein spectrin, designated Sp alpha l/65, was identified. In the heterozygous form, this mutation manifests as mild, often asymptomatic, hereditary elliptocytosis. We conclude that in these two patients with thrombotic microangiopathy, the intrinsic red cell membrane instability resulting from the underlying skeletal defect aggravated the mechanical red cell fragmentation, producing morphological features similar to the severe hemolytic form of hereditary elliptocytosis or hereditary pyropoikilocytosis.

Adolescent

Fetal and neonatal von Willebrand factor (vWF) is unusually large and similar to the vWF in patients with thrombotic thrombocytopenic purpura.

We have investigated the distribution of vWF multimers in blood from the umbilical cord of infants delivered vaginally and by caesarean section, from heel-stick blood collected 1 d post-partum, and from fetuses undergoing evaluation for Rh compatibility. To examine vWF multimers, plasma was separated by electrophoresis on SDS-agarose gels, overlaid with 125I-anti-vWF, and analysed by densitometry of autoradiographs. Neonatal and fetal plasma contained unusually large von Willebrand factor multimers (ULvWFM), not present in normal adult plasma, in shed blood from adults, in maternal plasma at the time of birth, or in plasma from adults deficient in vitamin K-dependent coagulation proteins. We conclude that ULvWFM, similar in size to vWF present in the Weibel Paladie bodies of endothelial cells, the alpha granules of platelets, and the plasma of patients with TTP, is present in the fetal circulation, at birth, and shortly after delivery.

Antigens

Cryosupernatant regulates accumulation of unusually large vWF multimers from endothelial cells.

In addition to the von Willebrand factor (vWF) multimers found in normal plasma, cultured human umbilical vein endothelial cells (HUVECs) synthesize and release unusually large vWF multimers (ULvWFM). ULvWFM are more effective than the largest plasma vWF forms in attaching to platelets and promoting platelet aggregation in the presence of elevated fluid shear forces (as in narrowed atherosclerotic vessels), and they may be involved in arterial thrombosis. ULvWFM are produced within HUVECs exposed for 48-60 h either to steady venous-like or pulsatile arterial-like wall shear stresses and are produced and released from HUVECs grown in serum-free as well as in serum (bovine or human)-containing media. An activity of 140,000-200,000 Da in the cryosupernatant fraction of both normal and severe von Willebrand's disease plasma, which is not obviously a protease, prevents specifically the accumulation of ULvWFM in the fluid above HUVEC monolayers but does not impair the release by HUVECs of ULvWFM in the retrograde direction into subendothelial collagen. The ULvWF regulatory activity in cryosupernatant may inhibit inappropriate platelet aggregation and thrombosis by preventing the accumulation of endothelial cell-derived ULvWFM in circulating blood.

Calcimycin