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[Life threatening menorrhagia in thrombasthenia. (Glanzmann-Naegeli) thrombasthenia].

Glanzmann's Thrombasthenia is a rare inherited disorder of platelet aggregation with normal platelet count and humoral coagulation. It is caused by the deficiency or functional disorder of platelet membrane glycoproteins IIb und IIIa. This complex is considered to be a receptor for fibrinogen. Menorrhagia often occurs as a clinical manifestation of affected females. We report a case of severe menorrhagia in a 13-year-old girl during her third menstrual cycle. She needed several red blood cell transfusions. The bleeding could only be stopped by administration of Lynestrenol.

Adolescent↗

Dental considerations for a Glanzmann's thrombasthenia patient: case report.

Glanzmann's thrombasthenia is a qualitative platelet disorder characterized by a deficiency in the platelet membrane glycoproteins (GP) IIb-IIIa. It belongs to a group of hereditary platelet disorders typified by normal platelet numbers and a prolonged bleeding time. The bleeding seen in Glanzmann's thrombasthenia usually includes bruising, epistaxis, gingival hemorrhage, and menorrhagia. Spontaneous, unprovoked bleeding is unusual. The severity of bleeding is unpredictable in thrombasthenia and does not correlate with the severity of the platelet GP IIb-IIIa abnormality. The present case report describes the dental treatment of a patient with Glanzmann's thrombasthenia. A 39-year-old female with a history of Glanzmann's thrombasthenia presented for periodontal therapy for spontaneous gingival hemorrhage. The patient had been sporadically seen in the past and had a record of only returning for appointments on an "emergency" basis. The periodontal findings revealed a diagnosis of moderate to advanced adult periodontitis in all quadrants. After all dental options had been discussed, the treatment of choice was determined to be extraction of the remaining dentition and fabrication of immediate dentures. The patient received a loading dose of 5 grams of aminocaproic acid (EACA) intravenously 3 hours prior to the surgery. At the beginning of the extractions 1 gram of EACA per hour continuous infusion and a 6 pack of platelets was administered. The patient tolerated the extractions well. All sites healed normally. The patient has had no difficulty in adjusting to the dentures. The case report discusses a possible treatment option in a noncompliant patient having Glanzmann's thrombasthenia and briefly discusses other hereditary bleeding disorders with similar presentations.

Adult↗

Glycoproteins of platelet membranes from Glanzmann's thrombasthenia. A comparison with normal using carbohydrate-specific or protein-specific labelling techniques and high-resolution two-dimensional gel electrophoresis.

Platelets from Glanzmann's thrombasthenia patients and from normal donor were surface labeled by techniques specific for sugars (terminal sialic acid, penultimate galactose/N-acetylgalactosamine) and proteins (tyrosine-histidine residues). These labelled platelets were solubilized in sodium dodecyl sulphate and separated on a two-dimensional electrophoretic system [O'Farrell. P. H. (1975) J. Biol. Chem. 250, 4007--4021] first according to their isoelectric point (pI) and then according to their molecular weight. In addition, unlabelled sodium-dodecyl-sulphate-solubilized platelets were separated on a two-dimensional polyacrylamide gel and the glycoproteins were identified by binding of 125I-labelled Lens culinaris lectin (specific for mannose and glucose). In one Glanzmann's thrombasthenia patient glycoproteins IIbA1 and IIIaA1 were absent and in two others lower amounts of two glycoproteins were found in positions similar or close to these two membrane glycoproteins. The terminal sialic acid moieties of major glycoproteins (IbA1, IbB1 and IIIbA1) were more intensely labelled in Glanzmann's thrombasthenia than in normals and these glycoproteins had an altered pI. A glycoprotein tentatively designated as Ic/IIa(?) had an altered pI and was labelled more intensely in Glanzmann's thrombasthenia platelets than in normals. A number of low-molecular-weight glycoproteins (IVa, IVb, VII) and one high-molecular weight glycoprotein normally found in platelets of healthy donors were reproducibly not detected in Glanzmann's thrombasthenia platelets. These results obtained by a combination of highly sensitive techniques strongly indicate that in Glanzmann's thrombasthenia the absence or reduction of two major membrane glycoproteins (IIbA1, IIIaA1) is not the only defect but that there appears to be a profound perturbation of the platelet membrane surface.

Blood Platelet Disorders↗

The use of recombinant factor VIla in a primigravida with Glanzmann's thrombasthenia during delivery.

Glanzmann's thrombasthenia is an inherited hemorrhagic disorder characterized by a severe reduction in, or absence of, platelet aggregation in response to multiple physiologic agonists due to qualitative or quantitative abnormalities of platelet glycoprotein IIb-IIIa. Glanzmann's thrombasthenia is characterized by potentially major mucocutaneous bleeding and prolonged bleeding time. Platelet counts, platelet morphology, prothrombin, and activated thromboplastin times are all within normal ranges in patients with Glanzmann's thrombasthenia. Pregnancy and delivery are rare in Glanzmann thrombasthenia patients and have been associated with immediate postpartum hemorrhage. We describe the peripartum management of a 31-year-old primipara with Glanzmann's thrombasthenia who underwent spontaneous vaginal delivery. Four units of single-donor platelets, two units of packed red blood cells, 36 microg/kg recombinant human coagulation Factor VIIa (rFVIIa) were given during peripartum management.

Adult↗

Megakaryocyte-targeted synthesis of the integrin beta(3)-subunit results in the phenotypic correction of Glanzmann thrombasthenia.

Glanzmann thrombasthenia is an inherited bleeding disorder characterized by qualitative or quantitative defects of the platelet-specific integrin, alphaIIbbeta(3). As a result, alphaIIbbeta(3) cannot be activated and cannot bind to fibrinogen, leading to a loss of platelet aggregation. Thrombasthenia is clinically characterized by mucocutaneous hemorrhage with episodes of intracranial and gastrointestinal bleeding. To develop methods for gene therapy of Glanzmann thrombasthenia, a murine leukemia virus (MuLV)-derived vector, -889Pl(A2)beta(3), was transduced into peripheral blood CD34(+) cells from 2 patients with thrombasthenia with defects in the beta(3) gene. The human alphaIIb promoter was used in this vector to drive megakaryocyte-targeted expression of the wild-type beta(3) subunit. Proviral DNA and alphaIIbbeta(3) biosynthesis were detected after in vitro differentiation of transduced thrombasthenic CD34(+) cells with megakaryocyte growth and development factor. Flow cytometric analysis of transduced patient samples indicated that 19% of megakaryocyte progeny expressed alphaIIbbeta(3) on the surface at 34% of normal receptor levels. Treatment of transduced megakaryocytes with a combination of agonists including epinephrine and the thrombin receptor-activating peptide induced the alphaIIbbeta(3) complex to form an activated conformation capable of binding fibrinogen as measured by PAC-1 antibody binding. Transduced cells retracted a fibrin clot in vitro similar to megakaryocytes derived from a normal nonthrombasthenic individual. These results demonstrate ex vivo phenotypic correction of Glanzmann thrombasthenia and support the potential use of hematopoietic CD34(+) cells as targets for alphaIIb promoter-driven MuLV vectors for gene therapy of platelet disorders. (Blood. 2000;95:3645-3651)

Antigens, CD↗

Acquired Glanzmann's thrombasthenia associated with Hodgkin's lymphoma: a case report and review of the literature.

BACKGROUND: Acquired Glanzmann's thrombasthenia is a rare hemorrhagic diathesis resulting from impaired adhesive function of the platelet receptor GPIIb/IIIa (alpha(IIb)beta3). Typically, this disorder develops during adulthood, with patients manifesting fluctuating clinical and laboratory findings. To date, the underlying defect of most if not all cases of acquired Glanzmann's thrombasthenia results from an autoantibody or plasma protein inhibitor directed toward a demonstrably normal GPIIb/IIIa glycoprotein. METHODS: In this report, a patient with a history of treated Hodgkin's lymphoma presented with a severe hemorrhagic diathesis characterized by mild thrombocytopenia, a prolonged bleeding time, and defective platelet aggregation. RESULTS: Examination of the patient's platelet GPIIb/IIIa by Western blot analysis revealed no abnormality. Mixing studies demonstrated a non-immunoglobulin G plasma inhibitory factor, whereas flow cytometry analysis revealed elevated platelet-associated immunoglobulin (Ig) M. After an emergency colectomy for severe hemorrhage, the patient's qualitative and quantitative platelet parameters significantly improved. Pathology of the resected colonic segment demonstrated atypical lymphoid hyperplastic lesions. CONCLUSIONS: To the authors' knowledge, this is the first reported case of acquired Glanzmann's thrombasthenia associated with a putative IgM autoantibody. Furthermore, this report verifies the association of acquired thrombasthenia with lymphoproliferative disease. Although rare, awareness of this hemorrhagic diathesis as a possible sequelae of active or treated lymphoid disorders should encourage clinical vigilance of these patients.

Antibodies, Neoplasm↗

Type I Glanzmann thrombasthenia: most common subtypes in North Indians.

The expression of GPIIb/IIIa on the platelet surface was assessed in 10 patients with Glanzmann thrombasthenia and their families by flow cytometry to determine the common subtype in North Indians. Glanzmann thrombasthenia was diagnosed in patients with bleeding manifestations accompanied by absent/reduced platelet aggregation, secondary to ADP, ADR, arachidonic acid, and collagen. Flow cytometry revealed variable GPIIb/IIIa expression by CD61 and CD41 in patients with Glanzmann thrombasthenia on the basis of CD61 levels, six patients were subtyped as type I because they had absent GPIIb/IIIa, three patients were subtyped as type II because their GPIIb/IIIa levels varied from 7.72% to 20.40%, and one patient was diagnosed as type III, because his clot retraction was 60% and GPIIb/IIIa was 46.0% of normal. Four fathers, three mothers, and five siblings were found to have GPIIb/IIIa levels less than 35% of normal. It is possible that low GPIIb/IIIa levels in family members may reflect their carrier status. It is postulated that flow cytometric estimation of GPIIb/IIIa in parents/siblings may detect carrier status in Glanzmann thrombasthenia.

Adolescent↗

Delivery of infants with Glanzmann thrombasthenia and subsequent blood transfusion requirements: a follow-up of 39 patients.

The delivery and transfusion requirements of 39 patients with Glanzmann thrombasthenia are described. Of these, type I thrombasthenia was found in 21 females and 12 males, and type II thrombasthenia was found in four females and two males. Eighteen of these patients were born in the hospital and 21 at home. All were delivered vaginally. Absence of excessive hemorrhagic symptoms was noted in neonates affected with thrombasthenia. The patients were followed for a total of 220 patient years and received a total of 276 units of blood during this period. In females, the dominant reason for transfusion was menorrhagia followed by gum bleeding and epistaxis, while in males epistaxis, gum bleeding, and circumcision accounted for most of the transfusions.

Blood Transfusion↗

Quantitation of platelet fibrinogen and thrombospondin in Glanzmann's thrombasthenia by electroimmunoassay.

Fibrinogen and thrombospondin are major constituents of human platelet alpha-granules and contribute to cell-cell interactions following their release. Glanzmann's thrombasthenia is characterized by the absence of platelet aggregation and reduced levels of GP IIb-IIIa complexes and platelet fibrinogen. The level of thrombospondin is thought to be normal but has not so far been quantified. Using an electroimmunoassay method adapted from Laurell, we have measured fibrinogen and thrombospondin in platelet extracts of four patients with classical Glanzmann's thrombasthenia and two variants with abnormal platelet aggregation associated with subnormal levels of GP IIb-IIIa complexes. Triton X-100 lysates were prepared in the presence of leupeptin or EDTA to avoid endogenous calcium-dependent protease activation during the solubilization procedure. Platelet fibrinogen was not detected in one patient with type I Glanzmann's thrombasthenia; it was reduced to 5-10% of normal values in two other type I patients and to 65% of normal values in one type II patient. It was normal in patient R.P., a variant of Glanzmann's thrombasthenia with 60% of GP IIb-IIIa complexes but decreased in patient A.P. a newly described variant with 35% of GP IIb-IIIa complexes. These findings support a role for GP IIb-IIIa complexes in the packaging of fibrinogen into alpha-granules. Normal or subnormal amounts of thrombospondin were measured in thrombasthenic platelets. Patient A.P., who was investigated on two different occasions, demonstrated variable levels of thrombospondin. This underlines the need for quantifying this protein when evaluating its expression in this disorder.

Blood Platelet Disorders↗

Protein synthesis and storage in human platelets: a defective storage of fibrinogen in platelets in Glanzmann's thrombasthenia.

In vivo metabolic labelling experiments were performed to investigate the ability of human platelets to synthesize and store fibrinogen and thrombospondin. Newly synthesized proteins were analyzed by SDS-polyacrylamide gel electrophoresis. Results were compared with those obtained for the platelets of a patient with Glanzmann's thrombasthenia where endogenous fibrinogen levels were severely reduced. Normal human platelets were able to synthesize the different subunits of fibrinogen and thrombospondin and to assemble them into native fibrinogen and thrombospondin molecules. This synthesis was inhibited by cycloheximide. Synthesis of both fibrinogen and thrombospondin was observed in the platelets of the Glanzmann's thrombasthenia patient. However, radiolabelled fibrinogen was no longer detected after an 18-h non-radioactive chase, although it was retained in the control platelets. Neosynthesized thrombospondin of the patient was normally preserved during the same chase period. When the fate of the radioactive fibrinogen was studied, it was found to be degraded in Glanzmann's thrombasthenia platelets to the same extent as neosynthesized cytoplasmic proteins, whereas in control platelets less degradation had occurred. We conclude that human platelets maintain a residual capacity to synthesize fibrinogen and that its deficiency in Glanzmann's thrombasthenia results from a storage abnormality and not from a synthesis defect.

Blood Platelet Disorders↗

Glanzmann's thrombasthenia in pregnancy: a case and review of the literature.

Glanzmann's thrombasthenia is a rare autosomal recessive bleeding disorder resulting from a deficiency of glycoprotein IIb-IIIa complex in platelets. The deficient complex normally mediates platelet aggregation by binding adhesive proteins, which form bridges between activated cells. Despite normal platelet counts, morphology, prothrombin, and activated thromboplastin times, Glanzmann's thrombasthenia is characterized by a prolonged bleeding time and a severe hemorrhagic mucocutaneous diasthesis. Pregnancy and delivery are rare in these patients and have been associated with a high risk of severe hemorrhage. We present an unusual case in which a primi-gravida patient with Glanzmann's thrombasthenia underwent an uneventful pregnancy and spontaneous vaginal delivery, following intrapartum intravenous administration of single-donor platelets. Subsequent late postpartum hemorrhage required intravenous transfusion of an additional unit of single-donor platelets. In addition, we review the literature pertaining to pregnancy and Glanzmann's thrombasthenia with an emphasis on intrapartum prophylactic management.

Adult↗

Glanzmann's thrombasthenia: updated.

Glanzmann's thrombasthenia is an autosomal recessive disorder, rare in a global context, but a relatively more common platelet function defect in communities where consanguineous marriages are more frequent. On clinical grounds alone, it cannot be distinguished from other congenital platelet function defects. Epistaxis, gum bleeding, menorrhagia are the common clinical manifestations, whereas large muscle hematoma or hemarthrosis seldom occur in these patients. Essential diagnostic features are a normal platelet count and morphology, a greatly prolonged bleeding time, absence of platelet aggregation in response to ADP, collagen, epinephrine, thrombin and to all aggregating agents which ultimately depend on fibrinogen binding to platelets for this effect, flow cytometry, studies of GPIIb-IIIa receptors on the platelet membrane surface using monoclonal antibodies. The present review describes some of the uncommon features of the disorders and the currently available options which the treating physicians should be aware of during the management of these patients. Although by definition all patients with Glanzmann's thrombasthenia have a virtually complete failure of platelet aggregation, a number of variant forms of GT have been described in which the glycoproteins are present in normal or near normal amounts but are functionally defective. Understanding the pathophysiology of the disorder by the treating physicians is of utmost importance. Presence of high affinity platelet receptors resulting in thrombasthennia-like phenotype may require an antagonistic treatment atypical of classical GT management. It has now been established that different genetic mutations of either GPIIb or IIIa genes results in such a heterogeneity of thrombasthenia phenotype. Glanzmann's thrombasthenia is a paradigm for treating coronary artery disease patients with GPIIb-IIIa antibody and inhibitors. By using these medicines we create a temporary GT-like situation. Hence, understanding this disease is of utmost importance to the practicing cardiologist. As mutations for different variant forms of GT become known, our understanding of how GPIIb-IIIa molecules can be activated to act as a receptor for fibrinogen molecules will be increased. Such understanding undoubtedly will help us to devise better drugs with GPIIb-IIIa inhibitors. Molecular biology techniques have enabled us to equivocally detect heterozygote carriers who are clinically asymptomatic. However, there may be several laboratories in the developing world, which have no access to molecular biology techniques. Development of more robust techniques of quantitation of platelet receptors has enabled an accurate diagnosis of heterozygote carriers or an unborn fetus in the second trimester. The importance of the GPIIb-IIIa polymorphisms in carrier and prenatal diagnosis has not been properly studied. Nowadays the less direct method of PLA1 typing (determination of the levels of platelet antigen) of the foetal platelets as early as 16 weeks of intrauterine life can be used for prenatal diagnosis of GT.

Classification↗

Glanzmann's thrombasthenia with mild von Willebrand's disease.

A Saudi Arabian family is reported in which Glanzmann's thrombasthenia and von Willebrand's disease occurred simultaneously. The daughter presented with menorrhagia and gave a history of gastrointestinal bleeding and a strong family history of bleeding disorder. Full haematological investigations were performed on the propositus, parents, and siblings, including complete blood count, bleeding time, prothrombin time, partial thromboplastin time, factor VIII:C, von Willebrand factor, ristocetin cofactor, platelet aggregometry, platelet glycoprotein Ib and IIb/IIIa and platelet antigen PLT-1 (Coulter Clone). The propositus had Glanzmann's thrombasthenia, both parents had mild von Willebrand's disease and were carriers of Glanzmann's thrombasthenia. Three symptomatic brothers had both Glanzmann's thrombasthenia and von Willebrand's disease; two asymptomatic brothers had von Willebrand's disease only and one had completely normal results. Those family members with both diseases were more severely affected than those with just one disease. In areas where consanguineous marriage is common, such as Saudi Arabia, multiple haemostatic abnormalities may occur, and investigation should not stop with the discovery of a single abnormality. The increased clinical severity of bleeding, including haemarthroses, in those patients having both congenital defects emphasises the importance of von Willebrand factor in glycoprotein Ib-mediated platelet adhesion.

Adolescent↗

[Flow cytometric analysis of platelets in patients with Glanzmann's thrombasthenia].

Platelets from 10 patients with Glanzmann's thrombasthenia (7 patients with type I and 3 with type II) and their 18 family members (11 parents, 6 siblings and one daughter) were analyzed by flow cytometry using 3 different commercially available FITC-labeled monoclonal antibodies. The amount of platelet GPIIbIIIa was calculated by using the ratio of the fluorescence intensity of the mean channel in comparison to normal platelets. The amount of platelet GPIIbIIIa was lower than 19% in 6 patients with type I and one patient with type II thrombasthenia. One type I patient had a 46.5% GPIIbIIIa amount as assessed using the monoclonal antibody TP80 (Nichirei Corp. Japan) which recognized GPIIb, although the other 2 antibodies showed an amount of less than 5%. One type II patient showed the following results: 30.9% (TP80), 28.2% (P2 antibody, Immunotech, France), and 3.9% (PLT1, Coulter Immunology, USA). The remaining type II patient consistently showed a normal amount of platelet GPIIbIIIa using all antibodies, appeared to be a variant form of thrombasthenia. The parents of type I patients had a significantly lower amount of platelet GPIIbIIIa compared to normal and 2 siblings of type I patients were diagnosed as heterozygotes. These findings suggest that Glanzmann's thrombasthenia is more heterogeneous than we have previously suspected, and that flow cytometric analysis using different monoclonal antibodies is a useful tool for identifying those heterogeneities and for the detection of type I carriers.

Adolescent↗

Identification of an abnormal gene for the GPIIIa subunit of the platelet fibrinogen receptor resulting in Glanzmann's thrombasthenia.

The platelet fibrinogen receptor, which is composed of glycoproteins IIb (GPIIb) and IIIa (GPIIIa), belongs to a large family of receptors that participate in a multitude of biologically important adhesive interactions. Platelets from most patients with the autosomal recessive bleeding disorder, Glanzmann's thrombasthenia, are deficient in GPIIb and GPIIIa. We have used cDNA probes to analyze the GPIIb and GPIIIa genes in four patients from three kindreds with Glanzmann's thrombasthenia. Southern analysis of their DNA was identical to that observed in normals when probed with a full-length GPIIb cDNA or a 3' GPIIIa cDNA. However, in one family, a 5' 2.0 kb GPIIIa cDNA identified abnormal DNA fragments in the father and two affected siblings' genes. A series of restriction digests resulting in small genomic fragments were probed with portions of the 5' 2.0 kb GPIIIa cDNA and indicated that the abnormal sequences are flanked by normal fragments of the GPIIIa gene. To analyze further the genetic defect in this family, RNA was prepared from their platelets. Northern analysis revealed normal levels of GPIIb mRNA compared to control platelets. We were unable to identify GPIIIa mRNA of any size in the clinically affected family members. We also identified an EcoRI restriction fragment length polymorphism (RFLP) that permitted carrier status determination in the clinically unaffected siblings. These studies indicate that Glanzmann's thrombasthenia can be caused by heterogeneous defects in the GPIIIa gene. Furthermore, we have shown that platelets can be used to characterize normal and abnormal GPIIIa and GPIIb mRNA, and RFLPs may be used to determine the carrier status in some families with Glanzmann's thrombasthenia. The specific gene abnormality in this family appears to represent an example of an insertional mutation resulting in a human disease.

Blood Platelet Disorders↗

Structural integrity of the glycoprotein IIb and IIIa genes in Glanzmann thrombasthenia patients from Israel.

Glanzmann thrombasthenia is an autosomal recessive disorder of the platelet glycoproteins (GP) IIb and IIIa. These glycoproteins normally serve as receptors for other adhesive glycoproteins, including fibrinogen, von Willebrand factor, and fibronectin. Most patients affected by Glanzmann thrombasthenia have low levels of GPIIb and GPIIIa; however, the separate mechanisms responsible for the deficiency in each remain to be determined. cDNA clones coding for the GPIIb and GPIIIa have been recently isolated, and their corresponding genomic sequences have been colocalized to the long arm of chromosome 17. Since a deletional event involving one or both of these structural genes could explain the disease phenotype, we have studied the DNA of two previously well-characterized cohorts of Glanzmann thrombasthenia patients from Israel. We performed Southern analysis with near full-length cDNA probes on genomic DNA obtained from 20 individuals. Four restriction enzyme digests were completed on each DNA sample. The similarity of banding patterns among probands, family members, and controls indicated that there were no major insertions or deletions in either the GPIIb or GPIIIa genes. Thus, the genetic defect in these patients with Glanzmann thrombasthenia is most likely due to either a small change in the nucleotide sequence of the coding region or a defect in the regulatory region of one or both genes.

Blood Platelet Disorders↗

Megakaryocytes from the marrow of a patient with Glanzmann's thrombasthenia lacked GP IIb-IIIa complexes.

Although it is recognized that glycoprotein (GP) IIb-IIIa complexes are deficient in platelets in Glanzmann's thrombasthenia, little is known of the origin of the defect. We have examined the megakaryocytes in a bone marrow aspirate obtained from a thrombasthenia patient during surgery. Analysis of platelet proteins by SDS-polyacrylamide gel electrophoresis confirmed the patient to be of the type I subgroup. The megakaryocytes were examined by immunofluorescence or by immunocytochemical procedures combined with electron microscopy. Antibodies used included the murine monoclonal antibody, AP-2 and the human allo-antibody, IgG L, both of which recognize determinants on GP IIb-IIIa complexes. Bound antibody was detected by anti-IgG antibodies coupled to fluorescein isothiocyanate or absorbed on gold particles. In the immunofluorescence studies, permeabilized megakaryocytes were identified by double staining using an antibody to von Willebrand factor (vWF). Whereas mature megakaryocytes and their small precursor cells from normal individuals were strongly fluorescent with AP-2 and IgG L, most vWF positive cells from the Glanzmann's thrombasthenia patient were negative and the remainder gave but a weak background fluorescence. Immunogold staining on the surface of marrow cells was severely reduced. Our results confirm a deficiency of GP IIb-IIIa complexes in megakaryocytes in thrombasthenia.

Blood Platelet Disorders↗

Retinal hemorrhage associated with thrombasthenia.

A healthy 20-year-old man presented with a spontaneous unilateral retinal hemorrhage. Because of a history of easy bruisability, we obtained hematologic studies and diagnosed thrombasthenia, a hereditary hemorrhagic disorder. The association of retinal hemorrhage and thrombasthenia is rare. Thrombasthenia and other platelet functional disorders are becoming better defined as tests for these abnormalities become more reliable and available. Patients with apparent spontaneous retinal hemorrhages of unknown origin should be questioned about hemorrhagic tendencies, and the various tests for hemorrhagic disorders should be obtained. The hematologic survey should include the more sophisticated tests of platelet function. Patients with thrombasthenia should avoid aspirin intake.

Adenosine Diphosphate↗