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Cutaneous sarcoidosis and polycythemia vera.

Polycythemia vera is classified with myelogenous leukaemia, agnogenic myeloid metaplasia and primary thrombocythemia as a myeloproliferative syndrome. Cutaneous symptoms have been reported with polycythemia vera, including facial plethora, aquagenic pruritus, urticaria, purpura, Sweet's syndrome and pyoderma gangrenosum. However, polycythemia vera associated with systemic sarcoidosis has been rarely reported. An unusual case of polycythemia vera associated with cutaneous sarcoidosis is described.

Aged↗

Polycythemia vera.

Polycythemia vera is a chronic myeloproliferative disorder characterized by increased red blood cell mass. The resultant hyperviscosity of the blood predisposes such patients to thrombosis. Polycythemia vera should be suspected in patients with elevated hemoglobin or hematocrit levels, splenomegaly, or portal venous thrombosis. Secondary causes of increased red blood cell mass (e.g., heavy smoking, chronic pulmonary disease, renal disease) are more common than polycythemia vera and must be excluded. Diagnosis is made using criteria developed by the Polycythemia Vera Study Group; major criteria include elevated red blood cell mass, normal oxygen saturation, and palpable splenomegaly. Untreated patients may survive for six to 18 months, whereas adequate treatment may extend life expectancy to more than 10 years. Treatment includes phlebotomy with the possible addition of myelosuppressive agents based on a risk-stratified approach. Agents under investigation include interferon alfa-2b, anagrelide, and aspirin. Consultation with a hematologist is recommended.

Humans↗

Apoptosis and polycythemia vera.

Polycythemia vera is an acquired clonal myeloproliferative disorder characterized by increased numbers of erythroid cells, often with a concomitant rise in neutrophils and/or megakaryocytes. Normally, erythropoietin is essential for the survival and proliferation of erythroid progenitors; however in polycythemia vera the erythroid progenitor cells can survive and develop in the absence of erythropoietin. Members of the Bcl-2 family of apoptosis regulators have been shown to mediate the erythropoietin-dependent survival of erythroid cells. In this article, recent advances in understanding the mechanisms used by erythroid progenitors from patients with polycythemia vera to control apoptosis, are discussed.

Animals↗

[Preterm delivery by cesarean section in patient with polycythemia vera].

Polycythemia vera is a myeloproliferative disease most commonly diagnosed in male 60-70 years old patients. It is associated with a higher risk of thrombosis and bleeding. It is very rarely diagnosed in young patients, and thus only few cases of pregnant women have been reported in the literature. These reports show that polycythemia vera may have a detrimental effect on outcome of the pregnancy (PIH, spontaneous miscarriages, preterm delivery, and stillbirth). We report a 33-year-old woman with polycythemia vera who underwent caesarean delivery in 34 weeks gestation. This case demonstrates fully successful result of our intensive perinatal care.

Adult↗

Splenic rupture complicating periinterventional glycoprotein IIb/IIIa antagonist therapy for myocardial infarction in polycythemia vera.

Polycythemia vera is a myeloproliferative disorder predisposing to thromboembolic and bleeding complications. We report the case of a patient with polyglobuly, leukocytosis, and thrombocytosis, who suffered from acute ST-segment elevation myocardial infarction due to thrombotic high-grade pre-stent stenosis two months after percutaneous coronary intervention for complex coronary one vessel disease. Following re-PTCA and stent implantation in conjunction with periinterventional GP IIb/IIIa antagonist treatment, the patient was initially symptom free for about two hours before rapidly developing signs of a hemorrhagic shock. An abdominal CT scan showed splenic rupture with massive intraabdominal hemorrhage as a consequence of secondary bleeding into multiple pre-existing splenic infarctions. The patient's condition stabilized after emergency splenectomy. Subsequent bone marrow biopsy revealed the presence of polycythemia vera. Post-operatively, the patient was treated with the anti-platelet agents aspirin and clopidogrel to prevent subacute stent thrombosis. Additionally, cyto-reductive therapy with hydroxyurea was initiated because of a further increase in the platelet count. In patients with polycythemia vera, the indication for treatment with GP IIb/IIIa antagonists should be carefully weighed against the potentially serious bleeding complications. Should treatment be established, a risk stratification using abdominal sonography and bleeding time testing is recommended, while during treatment red blood count, platelet count, coagulation tests, and hemodynamic parameters should be closely monitored.

Abciximab↗

The haematocrit and platelet target in polycythemia vera.

Polycythemia vera (PV) is a chronic myeloproliferative disorder whose major morbidity and mortality are thrombohaemorragic events and progression to acute leukaemia or myelofibrosis. Whether the haematocrit and platelet count predict such complications remains unclear. The European Collaboration on Low-dose Aspirin in Polycythemia Vera prospective study included 1638 PV patients. A total of 164 deaths (10%), 145 (8.85%) major thrombosis and 226 (13.8%) total thrombosis were encountered during 4393 person-years follow-up (median 2.8 years). In time-dependent multivariable analysis, a haematocrit in the evaluable range of 40-55% was neither associated with the occurrence of thrombotic events, mortality nor with haematological progression in the studied population. The haematocrit of patients in the highest and lowest deciles at baseline was maintained within a narrow interval of haematocrit values ranging from 40% to 47% throughout follow-up. High platelet count was associated with a lower progression rate to acute leukaemia/myelofibrosis, whereas it had no significant relationship with thrombotic events or mortality. Our findings do not suggest that the range of haematocrit (<55%) and platelet counts (<600 x 10(9)/l) we encountered in our population had an impact on the outcome of PV patients treated by current therapeutic strategies.

Aged↗

Hemorheologic considerations in the pathogenesis of vascular occlusive events in polycythemia vera.

Polycythemia vera (PV) commonly presents with vascular occlusion. Untreated patients have a poor prognosis due to the occurrence of thromboses. Treatment outcomes in PV and thrombotic events in other forms of polycythemia and in primary thrombocythemia lead to the conclusion that both raised packed cell volume (PCV) values and quantitative/qualitative platelet changes play a role in the pathogenesis of these vascular occlusive events. In vitro blood viscosity values are predominantly affected by the PCV, particularly at low shear rates and are thus high in untreated PV. Generally, under physiologic conditions blood flow is not governed by blood viscosity due to a number of factors, such as prevailing high shear rates, red cell axial migration, and adaptive vessel diameter changes. Peripheral blood flow is low in untreated PV. Whereas some untreated patients maintain adequate oxygen transport to the tissues, this may not apply in those with cardiac or local vessel disease. There is evidence that low flow rates predispose to occlusive events. Under pathologic low blood flow or static conditions, the rheologic blood changes of untreated PV, demonstrated in vitro, play a role in producing a more deleterious outcome of an occlusive event. Under blood flow conditions, red cell axial migration occurs. This leaves a plasmatic zone at the vessel wall into which platelets are dispersed and where shearing forces are maximal. These forces lead to platelet activation. Increased PCV values reduce the width of the plasmatic zone and lead to an increased possibility of platelet activation, platelet-platelet contact and platelet-vessel wall interaction, particularly when the platelet count is raised as well. These effects increase the likelihood of the initiation of thrombus formation in PV.

Blood Platelets↗

The gene encoding hematopoietic cell phosphatase (SHP-1) is structurally and transcriptionally intact in polycythemia vera.

Polycythemia vera (PV) is an acquired clonal disorder characterized by increased production of mature red cells and growth of erythroid colonies in the absence of erythropoietin. Mutation of the erythropoietin receptor has been demonstrated to cause familial polycythemia, but no mutations have been found in PV. Moreover, both erythroid and myeloid progenitors from patients with PV have been reported to be hypersensitive to a number of different growth factors. Attention has therefore focused on post-receptor signal transduction pathways. The SHP-1 gene is an especially attractive candidate gene. Firstly, SHP-1 binds to and negatively regulates signalling from the erythropoietin receptor and is likely to regulate other cytokine receptors in a similar manner. Secondly, absence of SHP-1 protein in the motheaten mouse is accompanied by increased sensitivity of hematopoietic progenitors to a number of cytokines including erythropoietin. Thirdly, familial or sporadic polycythemia in man may result from mutations of the SHP-1 binding domain of the erythropoietin receptor. We have therefore searched for mutations of the SHP-1 gene in genomic DNA from patients with PV. In this disease the majority of peripheral blood lymphocytes are not part of the malignant clone and a variable proportion of myeloid cells may arise from normal progenitors. We have therefore chosen to study DNA from purified peripheral blood granulocytes obtained from nine women in whom the granulocytes were clonally derived. Southern analysis was used to show that the gene was not rearranged and densitometry confirmed the presence of two copies of the gene in each DNA sample. Sequencing of the entire coding region and all splice junctions revealed no mutations. Hematopoietic transcription factor binding sites in the SHP-1 promoter region were intact and the methylation status of the two SHP-1 promoters in PV patients was identical to that in three normal controls. Finally, we showed that levels of SHP-1 protein in granulocytes from patients was similar to those from normal controls. These results demonstrate that the SHP-1 gene is structurally and transcriptionally intact in patients with PV.

Aged↗

Therapeutic recommendations in polycythemia vera based on Polycythemia Vera Study Group protocols.

The PVSG was organized in 1967 to establish effective diagnostic criteria for polycythemia vera, to study the natural history of the disease and to define the optimal treatment. Although polycythemia vera and the other myeloproliferative diseases are relatively uncommon, the PVSG was able to accumulate well over 1,000 patients with these various disorders and to study them according to a total of 15 different protocols. PVSG-01, a long-term randomized controlled study of phlebotomy alone compared with the myelosuppressive agents, 32P or chlorambucil supplemented by phlebotomy, continues to receive follow-up data on 93% of surviving patients 18 years after initiation of the study. During its lifetime, PVSG has developed a widely accepted and highly effective set of criteria for the specific diagnosis of polycythemia vera as well as useful criteria for the diagnosis of essential thrombocythemia. It has gathered an enormous volume of data on the natural history of the myeloproliferative diseases and in particular on the nature of the prevalent complications, such as thrombotic events and hematologic and nonhematologic malignancies. With respect to the final question, the optimal treatment for polycythemia vera, it is apparent that the expectation of a single optimal therapy that would apply to all patients at all ages and stages of the disease was naive. Nevertheless considerable progress has been made. Moreover, the group has defined more precisely than ever before the nature of the complications of the disease and the association of the risks of specific complications with specific forms of therapy. It thus has made it possible to pose the next series of therapeutic questions that must be addressed in this disorder with a greater degree of sophistication than was previously possible.

Acute Disease↗

Polycythemia vera.

Polycythemia vera (PV) is one of the myeloproliferative diseases, and, as such, is an example of clonal hematopoiesis. The progeny of a single, abnormal, hematopoietic stem cell gain a growth advantage over their normal counterparts resulting in overproduction of red cells generally accompanied by overproduction of granulocytes and platelets as well. There are a variety of nonspecific symptoms at onset related to the increased red cell mass and hematocrit accompanied by the more specific manifestations of pruritus, erythromelalgia, and hepatic, portal, and mesenteric vein thrombosis. Splenomegaly and hypertension are common. The laboratory hallmark is an increased red cell mass. There is also often an increase in white cell count, platelet count, and leukocyte alkaline phosphatase along with other findings reflecting the increased rate of turnover of hematopoietic cells. The bone marrow biopsy generally displays hypercellularity involving all three cell lines and absent iron stores. The diagnosis of PV depends on excluding spurious polycythemia in which there is a high hematocrit but a normal red cell mass and secondary polycythemia in which there is an increased red cell mass in response to tissue hypoxia or the inappropriate production of erythropoietin, generally by a tumor. In addition, one should try to establish the diagnosis in a positive fashion by a combination of studies of the blood and bone marrow. Phlebotomy and occasionally plateletpheresis should be used as acute therapy. Chronic therapy is guided by the knowledge that patients treated with phlebotomy alone have an increased rate of thrombotic complications particularly in older patients and those with previous thrombotic disease. Myelosuppressive therapy can reduce the incidence of these complications, but is commonly associated with an increased incidence of second malignancies, particularly acute leukemia. At present, hydroxyurea is the myelosuppressive agent of choice. Antiplatelet agents have a limited role except in the palliation of the syndrome of erythromelalgia. Median survival is approximately 10 years. As implied above, the causes of morbidity and mortality vary with the mode of chronic therapy which has been employed, leukemia being more common after myelosuppressive therapy and thrombotic complications being more common after therapy with phlebotomy alone. Ten percent to 50% of patients move into a spent phase followed by postpolycythemic myeloid metaplasia, irrespective of previous therapy employed. Eventually, the major problems may be cytopenias and massive splenomegaly.

Humans↗

The present state of pathophysiology and therapeutic trials in polycythemia vera.

Polycythemia vera shares basic features of pathogenesis with other subtypes of the group of chronic myeloproliferative disorders. All myelopoietic cells are derived from one transformed hemopoietic stem cell. Genetic instability of mitotic clonal cells explains the risk of leukemic transformation, which may be enhanced by cytoreductive treatment. Recent data show that erythroid hyperplasia is not due to erythropoietin hypersensitivity, but rather to abnormal stimulation by other cytokine growth factors. Treatment as established by clinical trials has almost normalized life expectancy in older patients, but the optimal strategy for subgroups of patients is still unknown. For younger patients, new and potentially curative approaches should be investigated.

Animals↗

Stem cell transplantation for polycythemia vera.

Polycythemia vera (PV) is a rare disease in children. A 9-year-old male was diagnosed following laboratory results acquired because of an acute appendicitis. Regular phlebotomy was performed for over 2 years followed by alpha-interferon treatment. At the age of 12 years, HLA-matched unrelated stem cell transplantation including T-cell depletion was done. The conditioning regimen consisted of busulfan, cyclophosphamide, and ATG. Chimerism was monitored during the whole post-transplant period. A single dose of donor T-lymphocytes was given at month 3. One year after transplantation, chimerism was complete. The patient is in complete remission and shows no signs of transplant-related morbidity at month 78.

Child↗

[Polycythemia vera].

Polycythemia vera (PV) is a chronic myeloproliferative disorder due to a haematopoietic stem cell's clonal proliferation. PV is also characterized by independency or hyper sensibility of haematopoietic progenitors to several cytokine as erythropoietin. This acquired disorder is often associated with thrombocytosis, leukocytosis and splenomegaly. Generally, diagnosis remains easy, based on basic clinical and biological abnormalities. Sometimes, positive diagnosis required more sophisticated tests as assay of endogenous erythroid colony, erythropoietin blood level and bone marrow biopsy. Usually natural history of disease remains long with a good quality of life. In some cases complications occur: mainly thrombosis and late myeloid metaplasia with myelofibrosis and acute leukemia. Therapeutic approachs remain complex and difficult to optimize based up on age and disease severity. Treatment searchs for reducing hyper viscosity complications and for avoiding therapeutic induced leukemia.

Biopsy↗

Diagnosis and therapy of polycythemia vera.

Polycythemia vera (PV) is a hematopoietic stem cell disorder characterized by a predominant proliferation of the erythroid cell line. The diagnosis is commonly based on the WHO criteria. The acquired V617F mutation in the tyrosine kinase gene JAK2 represents a new molecular marker proving clonality in PV and other chronic myeloproliferative disorders. Phlebotomy is still the treatment of choice to reduce the red cell mass. Low-dose acetylsalicylic acid is successful in the primary prophylaxis of vascular complications. However, the majority of patients require myelosuppressive therapy during the course of their disease due to progressive myeloproliferation. Hydroxyurea still plays a role in patients of all age groups. Interferon alpha represents an alternative, particularly for younger patients. Apart from sporadic cases of bone marrow transplantation, there is no known curative treatment in PV. To date, the diagnosis of PV was based mainly on clinical criteria. The identification of the JAK2 mutation enables new approaches to the diagnosis, classification, and treatment of PV and of the other myeloproliferative disorders.

Drug Therapy↗

[Carotid thrombus and cerebral infarction as the initial clinical manifestation of polycythemia vera].

Polycythemia vera (PV) can produce cerebral infarction. The mechanisms proposed by most authors are hyperviscosity-related diminished cerebral blood flow and platelet function abnormalities. We present a 36-year-old woman whose initial clinical manifestation of PV consisted of cerebral ischemia due to a carotid thrombus, as well as occlusion of the middle cerebral artery and cortical branches of the anterior cerebral artery demonstrated by angiography. To our knowledge, this is the first published case of cerebral infarction in PV caused by a thrombus of an extracranial artery. Therefore, PV can produce ischemic stroke due to thrombosis not only in small distal arteries or arterioles but also in the carotid artery or main branches. Treatment of intraluminal thrombus in non-arteriosclerotic carotid artery is discussed. Myeloproliferative disorders, including PV, must be suspected in all stroke patients with an elevated platelet count, even in those who have potential causes of reactive thrombocytosis.

Adult↗

Chromosome studies in polycythemia vera.

Polycythemia vera (PV) represents an apparent monoclonal stem cell proliferation with a frequent transition to full neoplastic behavior. Up to 26% of untreated PV patients can be expected to have some chromosome abnormalities in the marrow at the time of diagnosis, and 10--15% have an abnormal cell line or clone. Both structural and numerical aberrations occur. Aneuploidy is the most common type of chromosome abnormality, however, with hyperdiploid clones occurring more frequently than hypodiploid clones. Chromosomes 1, 8, 9 and 20 are involved in a non-random pattern, and aberrations of all the F group, or at least the No. 20 chromosome seem to be associated to some extent with diseases involving erythroid hyperplasia. Leukemia develops in a certain percentage of patients regardless of the type of treatment they have received, but the relationship, if any, between the chromosome abnormalities and the development of leukemia is still uncertain. The abnormal clones that occur in PV appear to be quite stable and there is no indication at this time that they correlate with a prognosis of leukemic transformation.

Aneuploidy↗

Identification of an acquired JAK2 mutation in polycythemia vera.

Polycythemia vera (PV) is a human clonal hematological disorder. The molecular etiology of the disease has not been identified. PV hematopoietic progenitor cells exhibit hypersensitivity to growth factors and cytokines, suggesting possible abnormalities in protein-tyrosine kinases and phosphatases. By sequencing the entire coding regions of cDNAs of candidate enzymes, we identified a G:C--> T:A point mutation of the JAK2 tyrosine kinase in 20 of 24 PV blood samples but none in 12 normal samples. The mutation has varying degrees of heterozygosity and is apparently acquired. It changes conserved Val(617) to Phe in the pseudokinase domain of JAK2 that is known to have an inhibitory role. The mutant JAK2 has enhanced kinase activity, and when overexpressed together with the erythropoietin receptor in cells, it caused hyperactivation of erythropoietin-induced cell signaling. This gain-of-function mutation of JAK may explain the hypersensitivity of PV progenitor cells to growth factors and cytokines. Our study thus defines a molecular defect of PV.

Amino Acid Sequence↗