Search PubMed⌕ Search

Biomedical subjects

H Kozutsumi

Publications and source records attributed to H Kozutsumi.

12 recordsLinked to original sources

Growth and survival signals transmitted via two distinct NPXY motifs within leukocyte tyrosine kinase, an insulin receptor-related tyrosine kinase.

Leukocyte tyrosine kinase (LTK) is a receptor tyrosine kinase, which belongs to the insulin receptor family and is mainly expressed in pre-B cells and brain. In this study, we show that LTK utilizes insulin receptor substrate-1 (IRS-1) and Shc as major two substrates and possesses two NPXY motifs for them separately, tyrosine 485 of one NPXY motif at the juxtamembrane domain for IRS-1 and tyrosine 862 of another NPXY motif at the carboxyl-terminal domain for Shc. By using Ba/F3 cells expressing epidermal growth factor receptor-LTK chimeric receptors containing a mutation at each NPXY site, we showed that while both NPXY motifs equally contribute to activation of the Ras pathway and generation of mitogenic signals, only tyrosine 485 of LTK transmits cell survival signals. These data suggest that IRS-1 possesses anti-apoptotic function at least in LTK signaling. Moreover, our data indicate that the survival signaling pathway of LTK is distinct from the Ras pathway and the p70(S6) kinase pathway. Our results provide a useful insight in understanding the distinctive roles of Shc and IRS-1 in the signal transduction system of the insulin receptor family, and this anti-apoptotic function of IRS-1 may explain the survival effects of insulin, IGF-1, and interleukin 4.

Amino Acid Sequence↗

Special Education.

HEMOPOIETIC FACTORS AND BLOOD CELL PROLIFERATION AND DIFFERENTIATION: Blood cells are generally classified into three cell lineages: erythrocytes, granulocytes and megakaryocytes. In the bone marrow, pluripotent stem cells differentiate into either the lymphoid stem cell line, where they are further induced to differentiate into B- or T-derived lymphocytes, or the myeloid stem cell (CFU-GEMM) line, where they are further induced to become erythrocytes, granulocytes (neutrophils, eosinophils or basophils), macrophages or megakaryocytes (platelets). Proliferation and differentiation of blood cells in the bone marrow are regulated by hemopoietic factors. Hemopoietic factors include those that are continuously produced, such as EPO, G-CSF and thrombopoietin (TPO), and those that are produced on demand in response to inflammation and infection, such as IL-3, IL-11 and GM-CSF. In recent years the genes for hemopoietic factors which regulate erythrocytes and granulocytes have been cloned using the techniques of genetic engineering. In 1994 the gene for TPO was cloned. TPO acts specifically on megakaryocytes. PROLIFERATION AND DIFFERENTIATION OF ERYTHROCYTIC CELLS: The earliest cells destined to become erythrocytes which differentiate from the myeloid stem cells (CFU-GEMM) are early phase erythroblast progenitor cells called BFU-E cells. After the BFU-E cells have undergone several divisions, they differentiate into late phase erythroblast progenitor cells called CFU-E cells. After passing through the proerythroblast stage, the CFU-E cells become erythroblasts. Erythroblasts can be confirmed by light microscope as belonging to the erythroid cell line. Erythroblasts mature and become enucleated reticulocytes, which are then released from the bone marrow into the blood, thus becoming mature erythrocytes. Proliferation and differentiation of the erythroid progenitor cells are regulated by erythropoietin (EPO), which is primarily produced by the kidneys. In 1985 genomic DNA and cDNA for human EPO were cloned, and it was learned that the mature protein is a glycoprotein consisting of 165 amino acids and having a molecular weight of about 30,000. There is powerful evidence to suggest that EPO is produced by peritubular cells of the renal cortex. When the hematocrit drops for some reason and hypoxia occurs, the number of EPO-producing cells increases and EPO production rises in the kidneys. CFU-E cells are the main target cells for EPO. EPO receptors are expressed along the lineage from BFU-E cells to proerythroblasts, with peak expression found in CFU-E cells. The EPO receptor, which was cloned in 1989, belongs to the cytokine receptor family, transduces the EPO signal to the interior of the cell, and brings about the proliferation and differentiation of CFU-E cells. PROLIFERATION AND DIFFERENTIATION OF GRANULOCYTIC CELLS: The earliest cells destined to become neutrophils and macrophages which differentiate from the pluripotent stem cells are called granulocyte-macrophage progenitor (CFU-GM) cells. The CFU-GM cells are affected by colony-stimulating factors and become either CFU-G or CFU-M cells. Ultimately, they differentiate into mature neutrophils or macrophages. The main factor stimulating the proliferation and differentiation of neutrophils is the granulocyte colony-stimulating factor (G-CSF). CFU-GM cells are stimulated by G-CSF in the bone marrow, pass through the CFU-G stage, and become myeloblasts, which are the most primitive neutrophils that can be morphologically distinguished. Myeloblasts continue to divide and differentiate, and they mature into neutrophils, which then lose their ability to divide. Mature neutrophils are not immediately released into the blood, but rather are stored within the bone marrow. Neutrophils that have been released into the blood reside in the marginal granulocyte pool or the circulating granulocyte pool, and they later egress into tissues. G-CSF is produced by cells such as monocytes, macrophages and bone marrow stromal cells, and its action is almost entirely selective for the proliferation of neutrophils. The cDNA for G-CSF was cloned in 1986, and it was learned that the mature protein is a glycoprotein consisting of 174 amino acids and having a molecular weight of about 20,000. When G-CSF is administered to a patient it causes the release of mature neutrophils from the marrow into the peripheral blood. G-CSF also enhances neutrophil function in the presence of bacterial products, and it acts on mature neutrophils to enhance cellular motility, the production of bioactive oxygen, and microbicidal activity. The cDNA for the G-CSF receptor was cloned in 1990, and its receptor belongs to the cytokine receptor family. The human G-CSF receptor consists of 813 amino acids and has an approximate molecular weight of 100,000 to 130,000. The G-CSF receptor signal is mediated by the JAK-1 and JAK-2 tyrosine kinases.

Journal Article↗

An epidermal growth factor receptor-leukocyte tyrosine kinase chimeric receptor generates ligand-dependent growth signals through the Ras signaling pathway.

Leukocyte tyrosine kinase (LTK) is a receptor tyrosine kinase that belongs to the insulin receptor family. LTK is mainly expressed in pre B cells and brain. Previously we cloned the full-length cDNA of human LTK, but no ligands have so far been identified, and hence, very little is known about the physiological role of LTK. To analyze the function of the LTK kinase, we constructed chimeric receptors composed of the extracellular domain of epidermal growth factor receptor and the transmembrane and the cytoplasmic domains of LTK and established cell lines that stably express these chimeric molecules. When cultured in medium containing EGF, growth of these cell lines was stimulated, and these fusion proteins became autophosphorylated and associated with Shc in vivo in a ligand-dependent manner. By treatment with EGF, Shc was associated with the Grb2/Ash-Sos complex. Our analyses demonstrate that LTK associates with Grb2/Ash through an internal adaptor, Shc, depending on a ligand stimulation. The LTK binding site for Shc was tyrosine 862 at the carboxyl-terminal domain and to a lesser extent tyrosine 485 at the juxtamembrane domain. Both of them are located in NP/AXY motif which is consistent with binding sites for Shc. These findings demonstrate that LTK can activate the Ras pathway in a ligand-dependent manner and that at least one of the functions of this kinase is involved in the cell growth.

Adaptor Proteins, Signal Transducing↗

Human ltk receptor tyrosine kinase binds to PLC-gamma 1, PI3-K, GAP and Raf-1 in vivo.

Leukocyte tyrosine kinase (ltk) is a receptor-type tyrosine kinase which is suggested to be expressed in hematopoietic cells and neuronal cells in human. Recently we have cloned a full sized human ltk cDNA which has a 423 amino acid extracellular domain which may bind to unknown ligand(s), and a 415 amino acid cytoplasmic domain which contains a tyrosine kinase domain. To identify the cellular signal transducer proteins binding to the ltk protein, we have analysed the recombinant ltk protein transiently expressed in COS cells. By an in vitro immune complex kinase assay, a major 140 kDa phosphoprotein and other cellular phosphoproteins were co-immunoprecipitated with the 100 kDa ltk protein using anti-ltk monoclonal antibodies. Western blot analysis revealed that the wild-type ltk protein was tyrosine-phosphorylated in vivo and associated with SH2 containing proteins, PLC-gamma 1, p85 subunit of PI3-K and GAP, in vivo. Furthermore, the wild-type ltk protein also binds to a serine/threonine kinase, Raf-1, in vivo. In contrast, none of these signal transducer proteins were associated with a kinase-negative ltk mutant (K544M-ltk) in which methionine at the putative ATP binding site was replaced with lysine. These results suggest that the associations of the ltk protein with those signaling molecules depend on the tyrosine kinase activity of the ltk protein. This is the first detection of cytoplasmic signal transducers that bind to the ltk protein in vivo.

Base Sequence↗

The C-terminal SH3 domain of the mouse c-Crk protein negatively regulates tyrosine-phosphorylation of Crk associated p130 in rat 3Y1 cells.

We have isolated the mouse c-crk cDNA from a mouse liver cDNA library. It encodes 304 amino acids and consists mainly of SH2/SH3 regions. In Northern blot analysis, the mouse c-crk mRNA is expressed ubiquitously in every tissue and organ, suggesting that the c-Crk protein may be a common signal transducing molecule among tissues. In contrast to the v-Crk protein, which has a single SH3 domain, the c-Crk protein contains two, the more N-terminal SH3(1) domain and the C-terminal SH3(2) domain. To elucidate functions of these SH3 domains, we have constructed two c-crk mutants, B-crk and D-crk, which lack the SH3(2) and the SH3(1) domain, respectively. These mutants were expressed in rat 3Y1 cells, and examined for their transforming ability in terms of morphological phenotypes and for tyrosine phosphorylation profiles of cells expressing the mutant proteins. Morphological alteration and increased tyrosine phosphorylation of 130-140 kDa proteins, the major component of which is the Crk-associated p130, were observed in cells expressing B-Crk as well as those expressing v-Crk, but little in cells expressing c-Crk even at a similar level of expression. Although a highly tyrosine-phosphorylated form of the p130 was coimmunoprecipitated with c-Crk as well as B-Crk, the relative level of tyrosine phosphorylation of the p130, which is normalized to the amount of Crk protein immunoprecipitated, was 10 to 20 times higher in B-Crk-expressing cells than in c-Crk- or D-Crk-expressing cells. The present results indicate that the SH3(2) domain of mouse c-Crk protein negatively regulates tyrosine phosphorylation of the p130, and that lack of the SH3(2) domain in B-Crk and v-Crk may contribute, at least partly, to their morphological alteration or transforming ability through increasing tyrosine phosphorylation of the p130.

Amino Acid Sequence↗

Differently spliced cDNAs of human leukocyte tyrosine kinase receptor tyrosine kinase predict receptor proteins with and without a tyrosine kinase domain and a soluble receptor protein.

Leukocyte tyrosine kinase (LTK) is a tyrosine kinase that has been suggested to be specific for hematopoietic cells and neuronal cells and reported as an unusual membrane protein lacking an extracellular domain. Here we report the cloning of a human LTK cDNA clone containing the complete open reading frame of a putative receptor tyrosine kinase protein. The extracellular domain of the receptor protein is larger than previously predicted. Furthermore, we have cloned a set of cDNAs representing differently spliced human LTK mRNAs. These cDNAs predict a truncated receptor protein lacking the tyrosine kinase domain and a soluble receptor protein that has neither a transmembrane nor a tyrosine kinase domain. Our results suggest that the LTK gene produces not only the putative receptor tyrosine kinase for unknown ligand but also multiple protein products that may have different functions.

Alternative Splicing↗

Identification of the human ltk gene product in placenta and hematopoietic cell lines.

Two different monoclonal antibodies (MAbs) were raised against an extracellular domain and a C-terminal portion of the human ltk protein which is a receptor-type protein tyrosine kinase. Western blot analysis showed that these MAbs specifically immunoprecipitated a 100 kDa ltk protein which was transiently expressed in COS-1 cells transfected with a human ltk cDNA. By an in vitro immune complex kinase assay using these MAbs, a 100 kDa phosphoprotein was detected in human placenta and hematopoietic cell lines. These data indicate that the ltk gene product expressed in human placenta and hematopoietic cells shows tyrosine kinase activity. This is the first detection of native ltk protein naturally expressed in human cells.

Amino Acid Sequence↗

Chemical modification of erythropoietin: an increase in in vitro activity by guanidination.

Human recombinant erythropoietin (rHuEPO) was chemically modified with several group-specific reagents in order to study the role of each kind of amino-acid residue in its biological activity. Guanidination of the amino groups of the lysine residues yielded derivatives that showed higher activities in vitro than native rHuEPO, whereas amidination had no effect on the activity. By contrast, modification of the positive charges of the lysine residues to neutral or negative charges, such as in carbamylation, trinitrophenylation, acetylation or succinylation, caused a significant loss of rHuEPO activity. Chemical modification of other amino-acid residues, such as arginine and tyrosine residues or carboxyl groups, also led to loss of activity.

Arginine↗

Relationship between sugar chain structure and biological activity of recombinant human erythropoietin produced in Chinese hamster ovary cells.

Two forms of erythropoietin, EPO-bi and EPO-tetra, with different biological activities were isolated from the culture medium of a recombinant Chinese hamster ovary cell line, B8-300, into which the human erythropoietin gene had been introduced. EPO-bi, an unusual form, showed only one-seventh the in vivo activity and 3 times higher in vitro activity of the previously described recombinant human EPO (standard EPO). In contrast, EPO-tetra showed both in vivo and in vitro activities comparable to those of the standard EPO. EPO-bi, EPO-tetra, and the standard EPO had the same amino acid composition and immunoreactivity. However, structural analyses of their N-linked sugar chains revealed that EPO-bi contains the biantennary complex type as the major sugar chain, while EPO-tetra and the standard EPO contain the tetraantennary complex type as the major sugar chain. From examination of various preparations of recombinant human EPO, we found a positive correlation between the in vivo activity of EPO and the ratio of tetraantennary to biantennary oligosaccharides. These results suggest that higher branching of the N-linked sugar chains is essential for effective expression of in vivo biological activity of EPO.

Animals↗

Production of monoclonal antibodies against human erythropoietin and their use in the purification of human urinary erythropoietin.

Several murine monoclonal antibodies (MAbs) specific for human erythropoietin (HuEpo) were produced by hybridomas obtained from the fusion of murine myeloma cells, P3X63-Ag.8-653, with the splenocytes of mice immunized with recombinant human Epo (rHuEpo). Based on epitope analysis by a competitive binding assay, these MAbs could be classified into at least three groups: (1) 1E10, (2) 1H7, (3) 2D6, 3D6 and 3D8. In a sandwich enzyme-linked immunosorbent assay (ELISA), using these MAbs as the solid-phase antibodies, MAb-bound HuEpo was detected with rabbit anti-HuEpo sera. Some combinations of two different classes of MAbs, such as 1H7 and 3D8, were found to capture much more HuEpo than each MAb used individually. Urinary HuEpo (U-HuEpo) was highly purified from the urine of patients with severe aplastic anemia with about 50% final recovery using an immunoaffinity column on which a mixture of 1H7 and 3D8 was immobilized. The purified U-HuEpo had a specific activity of 77,340 U/mg in a radioimmunoassay (RIA) and of 76,673 U/mg using an in vivo bioassay.

Anemia, Aplastic↗

Mitogenic effect of IL 2 on non-thymic and thymic lymphocytes of the mouse.

Interleukin 2 (IL 2) was obtained from culture fluids of Con A-stimulated rat spleen cells and purified by repeated Sephacryl S-200 column chromatography. The purified IL 2 showed a direct mitogenic effect on C57BL/6 mouse spleen cells and lymph node cells but not on unfractionated thymocytes. Contamination of Con A in the IL 2 was ruled out by the finding that the mitogenic effect of the IL 2 was not diminished by addition of alpha-methyl-D-mannoside in the reaction mixture. The treatment of the spleen cells with anti-Thy 1.2 and complement abolished the response to the IL 2, indicating that the IL 2-responding cells bear a T cell marker. Although unfractionated thymocytes did not blastogenically respond to the IL 2, fractionation of thymocytes by means of discontinuous gradient centrifugation with Percoll resulted in a minor cell population which strongly responded to the IL 2 stimulation. The cells were distributed in lower density fractions. The cells distributed in higher density fractions did not respond to the IL 2.

Animals↗

Different response of mouse thymocyte subpopulations to interleukin 2 and concanavalin A.

Fractionation of C57BL/6 mouse thymocytes by Percoll density gradient centrifugation resulted in three thymocyte subpopulations of different characters. The first population (Fr 1 cells) and both the second (Fr 2 cells) and the third (Fr 3 cells) populations mainly consisted of Thy 1.2+, Ly 1+, Ly 2-, PNA- cells and Thy 1.2+, Ly 1-, Ly 2+, PNA+ cells, respectively. Although all these subpopulations expressed Thy 1.2 alloantigen, its density on the cells was different and was high in the order of Fr 3, Fr 2, and Fr 1 cells. In terms of blastogenic response, Fr 1 cells were highly responsive to either IL 2 or Con A, but Fr 2 cells did not respond to Con A, unless IL 2 was present. Fr 3 cells were not responsive to Con A even in the presence of IL 2. When fractionated cells were cultured in normal culture medium for 12 h, the spontaneous incorporation of 3H-thymidine (SIT) into the cells was lowered in Fr 3 cells to a greater extent than was observed with Fr 1 and Fr 2 cells. These results indicated that the response of thymocyte subpopulations to IL 2 and/or Con A was closely related to the maturation stages of T cells and that Ly 1-, Ly 2+, PNA+ immature thymocytes might consist of two different subpopulations as indicated by their IL 2 response and the reduction of SIT capacity by culture.

Animals↗