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M Teramura

Publications and source records attributed to M Teramura.

At least 19 recordsLinked to original sources

Content of reticulocyte hemoglobin is a reliable tool for determining iron deficiency in dialysis patients.

BACKGROUND: The evaluation of iron status in dialysis patients provides information essential to the planning of adequate recombinant human erythropoietin (rHuEPO) treatment. Iron status of the patients can be determined from the recently available measurement of content of reticulocyte hemoglobin (CHr). METHODS: In this study, to clarify the accuracy of CHr in diagnosing iron deficiency in hemodialysis (HD) patients, we initially compared CHr with such conventional iron parameters as serum ferritin levels, transferrin saturation and serum soluble transferrin receptor levels. Secondly, we investigated the changes in CHr during iron supplementation for iron-deficient patients to determine whether this marker is a prospective and reliable indicator of iron sufficiency. The participants in this study were 149 hemodialysis (HD) patients and 53 age-matched healthy subjects. Iron deficiency was defined as having a TSAT of less than 20% and serum ferritin of less than 100 ng/ml. Conventional parameters of red blood cells and CHr were measured by an ADVIA120 autoanalyzer. RESULTS: Mean CHr was 32.3 +/- 2.2 pg in the patients undergoing hemodialysis treatment. CHr significantly correlated with iron parameters in the dialysis patients. Logistic regression analysis was performed to determine the relationship between CHr and each outcome measure, and CHr was the significant multivariate predictor of iron deficiency. Iron supplements given to the patients with low CHr and hematocrit (Hct) significantly increased Hct, resulting in a decrease in the weekly dosage of rHuEPO. CONCLUSIONS: CHr, measured simultaneously with Hct, is a sensitive and specific marker of iron status in dialysis patients.

Adult↗

Anti-lymphoma effect of naproxen and indomethacin in a patient with relapsed diffuse large B-cell lymphoma.

A 77-year-old man with relapsed non-Hodgkin's lymphoma, diffuse large B-cell type, was treated with naproxen, a nonsteroidal anti-inflammatory drug (NSAID), for paraneoplastic fever. A dramatic disappearance of not only the fever but also generalized lymphadenopathy was observed. Naproxen was continued, and he maintained remission for 10 months. When relapse of lymphoma occurred in spite of continuous naproxen administration, indomethacin, another type of NSAID, was tried. Surprisingly, rapid regression of lymphoma occurred again and was maintained for almost 1 year. These results indicate that NSAIDs are effective in some patients with non-Hodgkin's lymphoma.

Aged↗

Relative increase of granulocytes with a paroxysmal nocturnal haemoglobinuria phenotype in aplastic anaemia patients: the high prevalence at diagnosis.

To clarify the pathologic significance of granulocytes exhibiting the paroxysmal nocturnal haemoglobinuria (PNH) phenotype in patients with aplastic anaemia (AA), we examined peripheral blood from 100 patients with AA for the presence of granulocytes deficient in glycosylphosphatidylinositol (GPI)-anchored proteins using a sensitive flow cytometric assay. A significant increase in the frequency of CD55-CD59-CD11b+ granulocytes (>0.003%) compared to normal individuals was observed in 31 of 35 (88.6%) patients with untreated AA at diagnosis. The proportions of patients showing increased PNH granulocytes in treated AA patients with a short (<5 yr) and long (>5 yr) disease duration were 68.6% (11/16) and 20.4% (10/49), respectively. When 19 patients showing increased frequency of PNH granulocytes before therapy were studied 6-12 months after antithymocyte globulin plus cyclosporin A therapy, the frequency decreased to 0.01-90% of pretreatment values in 15 recovering patients. These findings suggest that a relative increase in the number of PNH granulocytes is a common feature of AA at diagnosis, and that it may represent the presence of immunologic pressure to normal haematopoietic stem cells as a cause of AA.

Adult↗

Chemoprotective effects of KF41399, a derivative of carbazole compounds, on nimustine-induced thrombocytopenia.

We examined the chemoprotective effects of KF41399, a novel derivative of carbazole compounds, on severe thrombocytopenia induced by nimustine (ACNU, 45 mg/kg administered for 2 consecutive days intravenously) in mice. Administration schedule studies revealed that pretreatment of mice with KF41399 was necessary to improve thrombocytopenia. Oral administration of KF41399 ameliorated thrombocytopenia induced by ACNU and accelerated the rate of platelet recovery in a dose-dependent fashion. In addition, KF41399 pretreatment improved the decrease in body weight and spleen weight and in the colony-forming activity of bone marrow mononuclear cells (MNC). Oral administration of KF41399 to normal mice induced G(0)/G(1)-phase accumulation of MNC as well as hematopoietic progenitor cells (lineage negative cells [Lin(-)]) and reduced the colony-forming activity of MNC. In Lin(-) cells derived from KF41399-treated mice, up-regulation of Bcl-2 and down-regulation of cyclin E and cyclin A proteins were observed. In the same cells, a decrease in the phosphorylated form of Rb protein and an increase in the p130 protein were observed without changes in the protein level of cell cycle-dependent kinase 2 (Cdk2), Cdk4, and Cdk6. More important, KF41399 did not affect the antitumor activity of ACNU against mouse Sarcoma180 and human lung cancer LC-6. However, 25-mg/kg KF41399 treatment reduced the antitumor activity of ACNU against human lung cancer Lu-65, and 5 mg/kg KF41399 caused a slight reduction of the antitumor activity of ACNU without inducing thrombocytopenia. These results suggest that KF41399 might be useful as a chemoprotective agent to improve chemotherapy-induced thrombocytopenia and types of other toxicity. (Blood. 2000;95:3771-3780)

Adenocarcinoma↗

Delineation of the frequently deleted region on chromosome arm 13q in B-cell non-Hodgkin's lymphoma.

The loss of a specific chromosomal region provides a clue to the elucidation of the putative tumor suppressor gene implicated in the pathogenesis and progression of tumors. To delineate the specific region(s) involved in lymphomagenesis, we performed a survey of loss of heterozygosity for 11 polymorphic microsatellite loci scattered on variable chromosome arms. We examined 20 primary lymphoma samples, including both indolent and aggressive B-cell non-Hodgkin's lymphoma (B-NHL) and Hodgkin's disease (HD), and found a significant number of B-NHLs with loss of genetic material on chromosome arm 13q at the RB1 locus (50%; 4 of 8 informative cases for the RB1 locus). To specify the 13q deletion and to narrow the critical deleted region, we examined the same 20 lymphomas by intensive microsatellite mapping analysis using 12 microsatellite markers, mapping from 13q12.3 to 13q14. We confirmed the frequent 13q14 deletion to be in the vicinity of the RB1 locus (50% of the informative NHLs for at least 1 of 12 microsatellite loci; 5 of 10 aggressive NHLs and 2 of 4 indolent NHLs, but none of 6 HDs) and determined a subchromosomal region deleted in lymphoma on 13q14 defined by D13S164-D13S273, which is an overlapped region frequently lost in chronic lymphocytic leukemia. Taken together, our data indicate that the 13q alterations are present in a wide variety of NHLs including both indolent and aggressive B-NHLs, suggesting that loss of genetic material at chromosome band 13q14 may play an important role in the formation or development of a wide variety of mature lymphoid malignancies.

Adult↗

Frequent chromosome arm 13q deletion in aggressive non-Hodgkin's lymphoma.

To clarify the role of allelic loss on chromosome arm 13q in lymphomagenesis, we performed fluorescence in situ hybridization (FISH) analysis of a total of 43 primary lymphomas, including both indolent and aggressive non-Hodgkin's lymphoma (NHL) and Hodgkin's disease (HD), using the specific probes at RB1 and D13S319 loci on the centromeric portion of chromosome arm 13q. Monosomy at either or both RB1 and D13S319 loci was detected in 15 of 43 (35%) lymphomas (14 of 43 cases at RB1 locus and seven of 43 cases at D13S319 locus); the 13q deletion was frequently detected in the aggressive NHLs (40%; 12 of 30 cases) compared with that in indolent NHL (17%; one of six cases) and a subset of HD (29%; two of seven cases). There are only six cases of 43 which have total monosomy 13q14, all aggressive NHL, 14% of total or 20% of this subgroup. In addition, we analyzed the loss of heterozygosity in 15 of the 43 primary lymphoma samples for several polymorphic microsatellite loci (D13S168, RB1 and D13S272) on the chromosome arm 13q, and confirmed the 13q deletion in four of five cases that were positive on FISH analysis. The subchromosomal region frequently altered in lymphoma on 13q14 is the region around RB1 locus and centromeric to D13S319 locus, which is an overlapped region frequently deleted in chronic lymphocytic leukemia. Together, our data indicate that the 13q alterations are present in a variety of types of lymphoma and occur in a significant proportion of aggressive NHLs, suggesting the possible presence of common candidate gene(s) on the 13q14 region, whose alteration may play an important role in the formation or development of a wide variety of mature lymphoid malignancies.

Adult↗

[Thrombopoietin: current and future status].

Thrombopoietin (TPO), which is a major physiological regulator of platelet production, was cloned in 1994. It has already been shown that the administration of recombinant TPO increases platelet production and accelerates platelet recovery after cytoablative therapy in preclinical and clinical trials. In addition, recent results indicate that the effects of TPO on hematopoiesis are more widespread than initially anticipated. In this article, physiological activities of TPO and results of clinical trials are briefly reviewed, and possible clinical application and some problems in its clinical use are discussed.

Animals↗

Transcription factor NF-E2 is essential for the polyploidization of a human megakaryoblastic cell line, Meg-J.

Transcription factors regulating the process of megakaryocyte development remain largely unclarified. To clarify them further, we used a human megakaryoblastic cell line, Meg-J, which showed prominant polyploidization and augmented platelet glycoprotein (GP) Ib expression after incubation with thrombopoietin (TPO, c-mpl ligand) and K252a (an indolocarbasole derivative). Under these conditions, we analyzed the expression of the transcription factors and observed that the expression of NF-E2 p45, but not those of GATA-1, GATA-2, Tal-1/SCL, Evi-1, and MafK, was increased after TPO and K252a stimulation. Gel-shift assay confirmed the enhanced binding activity to the NF-E2 site. The abolishment of NF-E2 p45 with NF-E2 antisense oligomers inhibited TPO plus K252a-induced polyploidization. These findings suggest that NF-E2 p45 is essential for the polyploidization of megakaryocytic cells.

Basic Helix-Loop-Helix Proteins↗

K-252a-induced polyploidization and differentiation of a human megakaryocytic cell line, Meg-J: transient elevation and subsequent suppression of cyclin B1 and cdc2 expression in the process of polyploidization.

Megakaryocytes are unique haemopoietic cells which undergo DNA replication, giving rise to polyploid cells. However, little is known about the mechanism of megakaryocytic polyploidization. To address this issue, we used the human megakaryocytic cell line Meg-J. In the presence of K-252a (an indolocarbasole derivative), Meg-J cells stopped proliferation and exhibited additional megakaryocytic features, including morphological changes, polyploidization, and increases in the levels of surface expression of platelet glycoprotein (GP) IIb/IIa and GPIb. Thrombopoietin (TPO) promoted the K-2 52a-induced polyploidization and megakaryocytic differentiation. In the process of K-252a-induced polyploidization, levels of expression of both cdc2 and cyclin B1 were elevated transiently and subsequently decreased. This suggested that the polyploidization process in Meg-J cells was at least in part associated with a transient elevation and subsequent decrease in the expression of cdc2/cyclin B1 complex, a critical kinase involved in G2/M cell cycle transition.

CDC2 Protein Kinase↗

In vitro and in vivo effects of KT6352, a derivative of indolocarbazole compounds, on murine megakaryocytopoiesis.

We investigated the in vitro and in vivo effects of KT6352, a derivative of indolocarbazole compound, on murine megakaryocytopoiesis. When serum-free megakaryocyte (Meg) colony assay was performed with 100 U/mL of recombinant mouse interleukin-3 (rmIL-3), the addition of 1x10(-11)M to 1x10(-9)M of KT6352 increased the number of Meg colonies. An additional increase of Meg colonies by KT6352 was observed in the serum-free culture containing rmIL-3 plus recombinant mouse interleukin-6 or rmIL-3 plus recombinant mouse stem cell factor. KT6352 did not stimulate Meg colony formation without rmIL-3. When KT6352 was administered intraperitoneally to normal BALB/c male mice at a dose of 10 mg/kg daily for 5 consecutive days, a 2.1-fold increase in the platelet count was observed on day 14, and the prolonged thrombocytopoiesis was detectable from 9 to 27 days after KT6352 administration. A marked increase in the white blood cell count was also observed from 5 to 14 days after KT6352 treatment. Before the gradual increase of platelet counts, 8 days after KT6352 administration, a marked increase in the number of colony-forming units of megakaryocytes (CFU-Megs) in bone marrow and spleen was observed, and a substantial increase in the number of splenic CFU-Megs was observed 14 and 23 days after KT6352 administration. Bone marrow Meg ploidy analysis by two-color flow cytometry showed a shift in the modal ploidy class from 16 to 32 and an increase in the frequency of 64 cells in KT6352-treated mice. These results suggest a possible therapeutic benefit of KT6352 in the management of thrombocytopenia.

Animals↗

Purification, cDNA cloning, and characterization of a new serpin with megakaryocyte maturation activity.

A new member of the serine protease inhibitor (serpin) superfamily with megakaryocyte maturation activity was purified, and its cDNA was cloned and characterized. The predicted amino acid sequence consisting of 380 residues was unique and was 38% identical to the serpin plasminogen activator inhibitor type 2 (PAI-2). The recombinant factor expressed in Chinese hamster ovary cells showed species-specific activity on the induction of megakaryocyte maturation in vitro. When injected into mice, the factor indeed elicited an increase in the number of platelets in plasma. The sequence alignment indicated that the factor possessed a lysine residue at the P1 position, suggesting that it might function as an inhibitor of Lys-specific proteases. Although we could not show any inhibitory activities toward several known Lys-specific proteases, we detected the activity toward protease activity present in the culture supernatant of COLO 201 cells. These results suggested that the protein might influence the maturation of megakaryocytes via action as a serpin.

Amino Acid Sequence↗

Effect of thrombopoietin (c-Mpl ligand) alone and in combination with other hematopoietic growth factors on human megakaryocytopoiesis in serum-free cultures.

The effect of human recombinant (hr) thrombopoietin (TPO) on human megakaryocytopoiesis was studied in a serum-free system. hrTPO induced megakaryocyte colony formation by purified CD 34-positive cells and polyploidization of megakaryocytes by purified CD41a-positive cells. hrTPO gave rise to much smaller colonies which appeared at an earlier time compared to the use of human recombinant interleukin-3 (hrIL-3), suggesting that hrTPO predominantly affects the population of megakaryocyte progenitor cells in the late stage. hrIL-3 additively increased the hrTPO-induced megakaryocyte colony formation by CD34-positive cells. The hrTPO-induced megkaryocyte colony formation was also increased by the presence of hrIL-6, hrIL-11, human recombinant erythropoietin (hrEpo) or human recombinant stem cell factor (hrSCF), none of which stimulated megakaryocyte colony growth when added alone. The combined addition of hrTPO, hrIL-3 and hrSCF to CD34-positive cells markedly stimulated megakaryocyte colony formation and produced large numbers of megakaryocytes. hrTPO stimulated the polyploidization of CD34-positive cell-derived megakaryocytes in liquid culture. However, the addition of hrIL-6, hrIL-11 or hrEpo to hrTPO did not further enhance the hrTPO-induced polyploidization. These findings indicate that at the megakaryocyte progenitor cell level, the effect of hrTPO can be promoted by the presence of various hematopoietic growth factors involved in human megakaryocytopoiesis.

Culture Media, Serum-Free↗

Mechanism of action of antithymocyte globulin in the treatment of aplastic anaemia: in vitro evidence for the presence of immunosuppressive mechanism.

Antithymocyte globulin (ATG) is one of the effective drugs used in the treatment of aplastic anaemia (AA). Although it has been speculated that the mechanism of action of ATG is mediated by its immunosuppressive effect on lymphocytes which might have an inhibitory effect on haemopoietic stem and progenitor cells, no definite evidence of the presence of such a mechanism has been demonstrated. In this study we investigated whether such a mechanism is truly operating in ATG therapy for AA. In five patients who responded to ATG, bone marrow cells were obtained after haematological recovery and CD34-positive cells were separated by immunobeads. Autologous CD34-positive cells were mixed with autologous peripheral CD4- or CD8-positive cells obtained before ATG therapy and after haematological recovery, liquid-cultured for 12h, and then cultured in methylcellulose for 14d in the presence of haemopoietic growth factors. In all five cases studied, only the CD8 cells obtained before ATG therapy suppressed the colony forming unit-granulocyte-macrophage (CFU-GM)- and burst forming unit-erythroid (BFU-E)-derived colony formation. This result is definite evidence that one of the mechanisms of action of ATG in AA is an inhibitory effect on CD8-positive cells which have suppressive activity for the growth of haemopoietic progenitor cells.

Adult↗

Effect of interleukin 11 on normal and pathological thrombopoiesis.

Interleukin 11 (IL-11) is a stromal cell-derived cytokine that has multiple effects on hematopoietic and nonhematopoietic systems. In vitro, it enhances the growth of early progenitors and promotes megakaryocytopoiesis and erythropoiesis. In healthy animals, IL-11 administration stimulates megakaryocyte maturation and increases peripheral platelet counts. IL-11 accelerates the recovery of peripheral neutrophil, erythrocyte, and platelet counts in mice that have undergone cytoablative treatment. Therefore, IL-11 may be useful clinically as an agent promoting recovery from hematopoiesis. However, its clinical use in patients with hematological malignancies may be restricted because IL-11 has been reported to stimulate some leukemia and myeloma cells. In the United States, phase I trials have shown that IL-11 accelerates recovery from chemotherapy-induced or bone-marrow transplantation (BMT)-induced thrombocytopenia. In Japan, phase II trials studying the thrombopoietic effect of IL-11 in patients with solid tumors postchemotherapy, in patients undergoing BMT, and in patients with aplastic or refractory anemia are now under way. Recently, thrombopoietin (TPO) has been cloned, and its thrombopoietic effect and accelerating effect on platelet count recovery in thrombopoietic states have been demonstrated in animal models. The physiological effect of TPO is restricted to hematopoiesis; therefore, it may have fewer side effects than IL-11. However, in addition to its hematopoietic effect, IL-11 administration to mice that have undergone cytoablative therapy significantly decreases morbidity and mortality due to chemotherapy-related endogenous infections caused by gut microorganisms. Therefore, IL-11 can be used in patients postchemotherapy and post-BMT not only to promote platelet recovery but also to prevent life-threatening infections. The use of in-vitro-expanded hematopoietic stem cells for BMT or as target cells for gene therapy is one of the most exciting areas in the field of medicine. Since IL-11 can expand hematopoietic progenitor-cell populations when used in combination with other cytokines, it may be useful as an ex vivo hematopoietic progenitor-cell-amplifying agent.

Anemia, Aplastic↗

Special Education: Aplastic Anemia.

WHAT IS HYPOPLASTIC ANEMIA? Aplastic anemia is a hematological disease characterized by pancytopenia and bone marrow hypoplasia. Acquired cases of aplastic anemia are almost all idiopathic and arise from unknown causes. Other cases of aplastic anemia are secondary and are caused by radiation, chemicals or viruses. PATHOPHYSIOLOGY: Aplastic anemia is manifested as a marked reduction in the number of pluripotent hematopoietic stem cells, but why this occurs is still uncertain. Some of the proposed causes include abnormalities of the hematopoietic stem cells, abnormalities in the hematopoietic microenvironment, and immunologically mediated damage to the hematopoietic stem cells (Figure 1). ABNORMALTIES OF THE HEMATOPOIETIC STEM CELLS: Patients with aplastic anemia, and long-term survivors in particular, are at increased risk of developing paroxysmal nocturnal hemoglobinuria (PNH), myelodysplastic syndrome (MDS), or acute myelocytic leukemia. This suggests that, in at least some of these patients, the hematopoietic stem cells themselves are abnormal. It also suggests that in some of these patients the blood cells are clonal (that is, all the blood cells are derived from a single pluripotent stem cell). In short, what these findings imply is that aplastic anemia may be caused by the emergence of an abnormal clone. Clonal hematopoiesis, however, can also be considered nothing more than a consequence. In other words, it is possible that hematopoiesis in this kind of patient is performed by a lone pluripotent stem cell that somehow managed to survive eradication. No definitive interpretation of clonal hematopoiesis has been agreed upon, and it is still a topic for future research. ABNORMAL HEMATOPOIETIC MICROENVIRONMENT: The presence of stromal cells, which form the microenvironment of bone marrow, is very important in hematopoiesis. Hematopoietic stem cells proliferate and differentiate either by adhering to stromal cells or by being stimulated by the various hematopoietic factors that stromal cells produce. Therefore, it is quite possible that aplastic anemia is caused by abnormalities in the hematopoietic microenvironment. However, many separate studies have demonstrated that the hematopoietic microenvironment in the vast majority of aplastic anemia cases is normal. IMMUNE MECHANISMS: Immunosuppressive agents are often effective in treating aplastic anemia, and therefore it is believed that immunological mechanisms contribute to the disease in more than half the cases. The following mechanisms have been proposed as causes for the onset of immunologically mediated aplastic anemia: * Decreases in Hematopoietic Factors Produced by Monocytes and Lymphocytes. Some patients with aplastic anemia show decreased production of interleukin 1 (IL-1) by peripheral blood monocytes, and it is possible that a drop in the concentration of this factor is linked to the onset of the disease [1]. It is also possible, however, that decreased IL-1 production by monocytes is not a cause of the disease, but merely a consequence. Moreover, no cases have been reported that exhibit reduced production of hematopoietic factors produced by lymphocytes such as GM-CSF, IL-3, or IL-6. * Damage by Cytokines that Suppress Hematopoiesis. It has been reported that increased levels of interferon &ggr; (IFN-&ggr;), which is produced by lymphocytes, and tumor necrosis factor &agr; (TNF-&agr;), which is produced by monocytes and macrophages, are found in the bone marrow and peripheral blood of aplastic anemia patients [2, 3]. These two factors act as suppressors of hematopoiesis, and it is possible that they contribute to the disease. The increase of these inflammatory cytokines in the bone marrow strongly suggests the presence of either specific or non-specific destruction of the hematopoietic stem cells by immunoregulatory cells. * Suppression of Hematopoiesis by Cytotoxic T Cells (Killer T Cells). Cases have been reported in which cytotoxic T cell clones that damage the autologous hematopoietic precursor cells are present [4]. Therefore, we can easily conceive of a mechanism in which these cytotoxic T cells specifically destroy the hematopoietic stem cells and cause aplastic anemia. * Suppression of Hematopoiesis by Natural Killer (NK) Cells. NK activity of aplastic anemia patients is depressed, and, generally speaking, it is highly unlikely that NK cells contribute to this condition. However, it has been reported that clonal NK cells are thought to cause the disease in patients exhibiting pancytopenia and bone marrow hypoplasia. Therefore, when this disease is diagnosed, a peripheral blood granular lymphocyte count and NK cell surface marker analysis should always be performed. DIAGNOSIS: A necessary condition for the diagnosis of aplastic anemia is the presence of pancytopenia. Moreover, it is necessary to rule out all other causes of pancytopenia. It is especially important in differential diagnosis to look for PNH and MDS. In cases of aplastic anemia there are patients that exhibit PNH during the course of the disease, and this condition is called aplastic anemia-PNH syndrome. It has recently been shown that bone marrow and peripheral blood cells in some patients diagnosed with aplastic anemia are partially lacking GPI anchor proteins (CD16, CD55, and CD59) [5]. Whether such patients become to exhibit aplastic anemia-PNH syndrome in the future remains to be elucidated. In MDS the bone marrow generally exhibits normoplasia or hyperplasia, and only in rare cases does it exhibit hypoplasia. This condition is referred to as hypoplastic MDS. Hypoplastic MDS can be differentiated from aplastic anemia by the presence of abnormal cell morphology that is sometimes accompanied by chromosomal abnormalities. TREATMENT:Aplastic anemia is treated with androgens, high-dose methylprednisolone, cyclosporin A (CyA), antithymocyte globulin (ATG), antilymphocyte globulin (ALG), hematopoietic growth factors such as G-CSF, and bone marrow transplantation. Interestingly, patients who require continuous CyA administration to maintain stable hematopoiesis have a specific HLA class II haplotype (DRB1*1501-DQA1*0102-DQB1*0602) [6]. Recent reports from EBMT SAA Working Party showed the excellent therapeutic result (response rate 82%) when severe cases were treated with ALG, CyA and G-CSF in combination [7].

Journal Article↗