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Biomedical subjects

C L Balduini

Publications and source records attributed to C L Balduini.

At least 37 records · Page 2Linked to original sources

A new variant of Bernard-Soulier syndrome characterized by dysfunctional glycoprotein (GP) Ib and severely reduced amounts of GPIX and GPV.

We describe a new variant of Bernard-Soulier syndrome characterized by almost normal amounts of GPIb and severely reduced GPIX and GPV. Despite surface expression, GPIbalpha failed to support ristocetin-induced platelet agglutination and to bind two conformation-dependent monoclonal antibodies, suggesting a qualitative defect. Sequence analysis of the gene coding for GPIX revealed a T-to-C substitution at base 1811, leading to a Leu40Pro conversion, whereas no defects were found in the coding region of the GPIbalpha gene. Allele-specific restriction enzyme analysis showed that the propositus and one of his sisters. both with severe bleeding diathesis. were homozygous for the GPIX mutation: the members of the family with mild bleeding diathesis and/or giant platelets in the peripheral blood were heterozygous, whereas the healthy ones were homozygous for the normal allele. Infusion of 1-desamino-8-D-arginine vasopressin normalized bleeding time in the two severely affected patients, although it did not modify ristocetin-induced platelet agglutination or membrane expression of GPIbalpha, GPIX, GPIIb-IIIa and GMP-140. Moreover, in one patient, normalization of bleeding time and rise of von Willebrand factor plasma concentration did not seem to be directly related.

Amino Acid Substitution↗

Autologous platelet transfusion in patients receiving high-dose chemotherapy and circulating progenitor cell transplantation for stage II/III breast cancer.

BACKGROUND AND OBJECTIVE: Concerns about the risk of transfusion therapy are driving towards new strategies which are designed to minimize exposure to allogeneic blood products. We aimed to find out whether it is possible to support the phase of thrombocytopenia following high-dose chemotherapy (HDC) and circulating progenitor cells (CPC) transplantation by autologous platelet concentrates (PC). DESIGN AND METHODS: PC were collected from 32 patients undergoing HDC and CPC transplantation for stage II/III breast cancer. A single plateletpheresis was performed at rebound after high-dose cyclophosphamide, when platelet count exceeded 250 x 10(9)/L. PC were cryopreserved in 5% DMSO after controlled-rate freezing and stored in liquid nitrogen. In vitro studies of cryopreserved platelets (aggregation, ATP release and change of mean platelet volume induced by EDTA) were performed. When platelet counts dropped below 20 x 10(9)/L following HDC (thiotepa 600 mg/m2, L-PAM 160 mg/m2) and CPC transplant (CD34+ cells > 5 x 10(6)/kg), PC were thawed in a 37 degrees C water bath, centrifuged to remove DMSO, resuspended in autologous plasma and reinfused within one hour. RESULTS: Large quantities of platelets were harvested in all patients (median 6.6 x 10(11), range 4.8-12.2). In vitro studies showed preserved platelet function as compared to both fresh platelets and standard PC. Twenty-eight out of 32 patients received autologous PC. At the time of transfusion most of the patients were febrile (> 38 degrees C) and had mucositis > G2. The median number of platelets reinfused was 3.8 x 10(11) (range 2.0-8.1) with a median loss during the freeze-thaw-wash procedure of 37%. Autotransfusion was able to maintain platelet count above 20 x 10(9)/L in most patients, with a corrected count increment > 7.5 in 20 cases. Four patients required one additional allogeneic transfusion, two because of a poor increment and two due to a late-occurring epistaxis. No side effects related to PC infusion were recorded. Sixteen control patients who received the same HDC and a similar number of CD34+ cells required a total of 17 allogeneic PC units (1 patient did not require platelet transfusion). INTERPRETATION AND CONCLUSIONS: Our data demonstrate that large doses of autologous platelets can easily be collected and safely administered to support the period of thrombocytopenia in patients undergoing HDC and CPC transplantation. Autologous PC in these patients can abrogate the risks deriving from allogeneic platelet transfusion.

Adult↗

Autologous platelet collection and storage to support thrombocytopenia in patients undergoing high-dose chemotherapy and circulating progenitor cell transplantation for high-risk breast cancer.

OBJECTIVES: The use of circulating progenitor cell support following high-dose chemotherapy for malignancies decreases but does not entirely abolish platelet transfusion requirement. We investigated the feasibility of supporting the posttransplant thrombocytopenic phase exclusively with autologous platelets collected by apheresis and cryopreserved. METHODS: 25 patients underwent plateletpheresis during the platelet rebound occurring after high-dose cyclophosphamide. Autologous platelets were cryopreserved in 5% dimethylsulfoxide, thawed and transfused during the aplastic phase after the myeloablative regimen whenever clinically required. RESULTS: A single plateletpheresis was carried out in all patients, allowing the harvest of a platelet concentrate with a mean value of 7.7 x 10(11) platelets. No significant procedure- or transfusion-related side effects were recorded. Mean platelet recovery after freezing and thawing was 63% and the mean number of platelet reinfused was 4.8 x 10(11); 23 of 25 patients were fully supported with autologous platelets. CONCLUSION: Plateletpheresis performed in our selected group of patients was found to be a safe and effective procedure to collect large amounts of autologous platelets; the numbers obtained proved to be sufficient for the transfusion demand of almost all patients.

Antineoplastic Combined Chemotherapy Protocols↗

Thrombopoietin levels in patients with primary and reactive thrombocytosis.

Human c-mpl ligand or thrombopoietin (TPO) has been proved to be a critical cytokine in the physiological regulation of thrombopoiesis. Previous evidence suggested that TPO production is constitutive and TPO plasma levels are regulated by the platelet-megakaryocyte mass through c-mpl receptor-mediated uptake and metabolism. To evaluate whether this mechanism of TPO level regulation is also operative in subjects with an elevated platelet count, we evaluated serum TPO in 32 patients with thrombocytosis due to essential thrombocythaemia (ET) or polycythaemia vera (PV) and in 70 subjects with reactive thrombocytosis; 32 healthy subjects were also studied. TPO levels were significantly higher in the ET and PV groups (median 246.2 pg/ml, range 93.5-4596) and reactive thrombocytosis patients (median 287 pg/ml, range 82.7-1960.0) than in normal subjects (median 156.7 pg/ml, range 62.2-352.7). No significant difference was found between the two groups of patients, indicating that serum TPO levels cannot differentiate between primary and reactive thrombocytosis. No significant correlation was found between platelet count and TPO levels in either ET-PV or reactive thrombocytosis, whereas a trend toward a correlation between acute-phase reactants and TPO was observed in patients with reactive thrombocytosis. These results indicate that TPO clearance by platelets-megakaryocytes is not fully operative or is not the only mechanism of TPO level regulation in primitive and reactive thrombocytosis.

Acute-Phase Reaction↗

Ristocetin-induced platelet agglutination stimulates GPIIb/IIIa-dependent calcium influx.

We found that intracellular Ca2+ concentration ([Ca2+]i) increased during ristocetin-induced agglutination of aequorin loaded platelets resuspended in plasma. Chelation of extracellular Ca2+ had no effect on platelet clumping, but delayed and greatly reduced Ca2+ increase, indicating that it derived for the most part from Ca2+ influx. Nine monoclonal antibodies (MA) against glycoprotein (GP) Ib largely prevented ristocetin-induced platelet clumping and [Ca2+]i increase, while three anti-GPIb MA with no effect on platelet clumping did not interfere with Ca2+ movement. In unstirred samples platelet agglutination was greatly reduced and [Ca2+]i increase was abolished, suggesting that close platelet-to-platelet contact, in addition to von Willebrand factor (vWF) binding to GPIb, is necessary for Ca2+ transient. Nine MA against GPIIb/IIIa, the gly-arg-gly-asp-ser (GRGDS) peptide and GPIIb/IIIa complex dissociation had no effect on platelet agglutination, but significantly reduced Ca2+ increase. Our results suggest that platelet clumping induced by vWF binding to GPIb is responsible for GPIIb-IIIa dependent Ca2+ influx.

Blood Platelets↗

Acquired cyclic thrombocytopenia-thrombocytosis with periodic defect of platelet function.

A periodic fall of platelet number characterizes an acquired pathological condition named cyclic thrombocytopenia. We observed a patient in whom the episodes of thrombocytopenia (platelet number less than 50 x 10(9)/l) were followed regularly by thrombocytosis (700-2300 x 10(9) platelets/l). The period of platelet count fluctuation was about 40 d. Morphological examination of bone marrow showed the cyclic disappearance of mature and immature megakaryocytes; bone marrow cultures revealed a periodic severe defect of both multilineage and single-lineage progenitor cell growth. When platelet count was falling, a mild defect of platelet aggregation and ATP release was observed, while platelet function was normal when platelet count was rising. Prednisone, thymopentin, high-dose intravenous gamma-globulin and splenectomy were without effect. After 4 years of cyclic platelet and megakaryocyte fluctuations, stable amegakaryocytic thrombocytopenia developed and the patient died of haemorrhagic stroke.

Adult↗

Defect of platelet aggregation and adhesion induced by autoantibodies against platelet glycoprotein IIIa.

A young patient developed chronic idiopathic thrombocytopenic purpura. Prednisone therapy normalized platelet number, but bleeding symptoms did not disappear. Platelet function was severely impaired, since platelet aggregation, ATP release and adhesion to collagen and subendothelial matrix were significantly reduced. Plasma and purified immunoglobulins of the patient reproduced the functional defects in normal platelets. Immunoblotting revealed that patient's plasma contained an antibody reacting with a component of platelets with the same electrophoretic mobility of glycoproteins IIIa of normal platelets. Moreover, patient's plasma inhibited the binding of an anti-GPIIb/IIIa monoclonal antibody to platelet surface. Additional immunosuppressive therapy with prednisone and azathioprine normalized platelet function and induced the disappearance of bleeding symptoms.

Adult↗

Platelet function after in vivo and in vitro treatment with thrombolytic agents.

Whereas in vitro studies showed that plasmin may induce both inhibition and activation of platelets, in vivo and ex vivo investigations suggested that thrombolytic agents are responsible for platelet stimulation. To gain further information on this topic, ex vivo platelet function was studied in 24 subjects with acute myocardial infarction treated with streptokinase or recombinant tissue-type plasminogen activator (rt-PA). Ten patients with acute myocardial infarction who did not receive thrombolytic treatment were also investigated. The data shows that at the end of thrombolytic infusion, the maximal extent of platelet aggregation and adenosine triphosphate release was reduced in treated patients compared with that in untreated ones. In subjects treated with streptokinase, the defect in platelet aggregation derived from both cellular and plasmatic defects. Plasmatic beta-thromboglobulin concentration was significantly reduced after streptokinase, but unchanged after rt-PA. Three days after thrombolytic treatment, platelet aggregation of patients receiving streptokinase or rt-PA was not significantly different from that of untreated subjects. A similar defect in platelet function was obtained in vitro, incubating normal platelet-rich plasma with pharmacologic concentrations of streptokinase. Again, platelet function defect derived from both cellular and plasmatic damages. It cannot be excluded that platelet activation occurs in patients with acute myocardial infarction during the very early phases of thrombolytic treatment. However, it is suggested that a transient defect in platelet function follows both streptokinase and rt-PA infusion.

Adenosine Triphosphate↗

Platelet aggregation in platelet-rich plasma and whole blood in 120 patients with myeloproliferative disorders.

In vitro platelet aggregation in platelet-rich plasma (PRP) and in whole blood (WB) was assessed in 31 patients with idiopathic myelofibrosis, 32 with essential thrombocytosis, 23 with polycythemia vera, and 34 with chronic myelogenous leukemia. In PRP most subjects showed normal or reduced platelet aggregation, whereas in WB the majority of patients showed increased platelet function. Spontaneous platelet aggregation (SPA) was observed frequently in WB, whereas it was seldom observed in PRP. SPA in WB was inhibited by in vitro addition of aspirin and apyrase, and SPA was only partially dependent on high platelet count because it also occurred in samples with normal platelet content (at variance with 13 subjects with reactive thrombocytosis, in which SPA was observed only in samples with high platelet concentration). Platelets from patients with idiopathic myelofibrosis had the highest tendency to undergo SPA.

Adenosine Diphosphate↗