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Biomedical subjects

H Sabe

Publications and source records attributed to H Sabe.

At least 19 recordsLinked to original sources

Molecular cloning and expression of chicken C-terminal Src kinase: lack of stable association with c-Src protein.

Cloning and sequencing of chicken C-terminal Src kinase (CSK), a tyrosine kinase that phosphorylates the regulatory C-terminal tyrosine residue present on cytoplasmic tyrosine kinases of the Src family, demonstrated a high degree of interspecies conservation as well as src homology 2 and 3 domains N-terminal to the kinase domain. The lack of autophosphorylation sites distinguishes CSK from other tyrosine kinases. CSK is unique and does not belong to a gene family, suggesting that it may phosphorylate other members of the Src family of tyrosine kinases in addition to c-Src. Since complex formation between c-Src and CSK seemed a likely regulatory step in the control of c-Src kinase activity, such an association was investigated by immunoprecipitation and Western blotting as well as intracellular localization studies. Although some portions of CSK were found in a membrane fraction, no complex formation between CSK and c-Src was observed, suggesting that the src homology 2 domain of CSK does not play a role in the direct interaction of c-Src.

Amino Acid Sequence

Activation of c-Src in cells bearing v-Crk and its suppression by Csk.

The protein product of the CT10 virus, p47gag-crk (v-Crk), which contains Src homology region 2 (SH2) and 3 (SH3) domains but lacks a kinase domain, is believed to cause an increase in cellular protein tyrosine phosphorylation. A candidate tyrosine kinase, Csk (C-terminal Src kinase), has been implicated in c-Src Tyr-527 phosphorylation, which negatively regulates the protein tyrosine kinase of pp60c-src (c-Src). To investigate how c-Src kinase activity is regulated in vivo, we first looked at whether v-Crk can activate c-Src kinase. We found that cooverexpression of v-Crk and c-Src caused elevation of c-Src kinase activity, resulting in an increase of tyrosine phosphorylation of cellular proteins and morphological transformation of rat 3Y1 fibroblasts. v-Crk and c-Src complexes were not detected, although v-Crk bound to a variety of tyrosine-phosphorylated proteins in cells overexpressing v-Crk and c-Src. Overexpression of Csk in these transformed cells caused reversion to normal phenotypes and also reduced the level of c-Src kinase activity. However, Csk did not cause reversion of cells transformed by v-Src or c-Src527F, in which Tyr-527 was changed to Phe. These results strongly suggest that Csk acts on Tyr-527 of c-Src and suppresses c-Src kinase activity in vivo. Because Csk can suppress transformation by cooverexpression of v-Crk and c-Src, we suggest that v-Crk causes activation of c-Src in vivo by altering the phosphorylation state of Tyr-527.

Animals

Biochemical evidence for a third chain of the interleukin-2 receptor.

Two receptor proteins that specifically bind interleukin-2 (IL-2) have been identified previously. The L (Tac or alpha) chain can bind IL-2 with a Kd value of 10 nM (low affinity). Although the H (beta) chain expressed on lymphocytes can bind IL-2 with a Kd value of 1 nM (intermediate affinity), transfected fibroblasts expressing the H chain cannot bind IL-2, suggesting the involvement of other lymphocyte-specific factors for the function of the H chain. To obtain direct evidence for the presence of a third component of the IL-2 receptor, we examined the IL-2 binding activity of detergent-solubilized cell membrane preparations. We found that lysates of transfected Cos7 cells expressing H chains can bind IL-2 when mixed with lysates from lymphocytes that cannot bind IL-2. Chemical cross-linking of 125I-IL-2-bound lysate mixture and subsequent immunoprecipitation with a noncompetitive anti-H chain antibody gave rise to two 125I-IL-2-bound proteins, a 56-kDa protein (p56) and the H chain, although neither the H chain nor p56 alone is able to bind IL-2. These results indicate that p56 is the IL-2 receptor third chain that is required for IL-2 binding to the H chain. A similar lysate mixing experiment also showed that p56 is involved in IL-2 binding to the high affinity IL-2 receptor by forming the quaternary complex of IL-2, p56, L chain, and H chain.

Animals

Comparison of protein tyrosine phosphorylation and morphological changes induced by IL-2 and IL-3.

We constructed cell lines which can proliferate in response to IL-2 or IL-3 by introducing a wild-type and mutant forms of cDNAs encoding the human IL-2R p75 chain into an IL-3 dependent hematopoietic cell line which expresses the p55 chain of the IL-2R. We compared early events that were induced in these cells by IL-2 and IL-3. Analysis of protein tyrosine phosphorylation showed that two common protein bands, pp95 and pp90, were phosphorylated by stimulation of either IL-2 or IL-3, suggesting the possible sharing of part of a signal transduction pathway between IL-2R and IL-3R. Comparison of protein tyrosine phosphorylation profiles induced by IL-2 and IL-3 among a variety of cell lines revealed that the pp90 band is the common tyrosine phosphorylation substrate in the cell lines examined, although the general tyrosine phosphorylation pattern differed in each cell line. Mutant p75 molecules incapable of inducing tyrosine phosphorylation could bind and internalize IL-2, but could not support cell growth. We also found that swift changes of cytoskeletal protein organization are one of the early events caused by signal transduction through either IL-2R and IL-3R. Reorganization of cytoskeletal proteins seems to be associated with protein phosphorylation, as a significant portion of pp90 was found in a detergent-soluble fraction in IL-2 or IL-3 treated cells.

Base Sequence

HTLV-1 p27rex stabilizes human interleukin-2 receptor alpha chain mRNA.

Expression of the pX gene products (p40tax, p27rex and p21X-III) of human T cell leukemia virus type 1 (HTLV-1), which is known to be a causative agent of adult T cell lymphoma/leukemia, induces expression of the interleukin-2 receptor alpha chain (IL-2R alpha) on infected T cells. Comparison of IL-2R alpha promoter activities has revealed that the transcriptional activation of the promoter alone cannot explain the large numbers of IL-2R alpha expressed on HTLV-1 infected cells. We found that the rates of the IL-2R alpha mRNA degradation were greatly reduced in pX-positive cells as compared with pX-negative cells. Simultaneous transfection of the expression vector plasmid containing IL-2R alpha cDNA and similar plasmids containing various pX sequences showed that p27rex elongated the half life of IL-2R alpha mRNA. As p27rex did not affect the transport of the IL-2R alpha mRNA from nucleus to cytoplasm, prolongation of the IL-2R alpha mRNA half life by p27rex is ascribed to stabilization of the mRNA. Experiments using deletion mutants and chimeric constructs of the IL-2R alpha cDNA demonstrated that the coding sequence but not the 5' or 3' untranslated region of the IL-2R alpha mRNA sequence is responsible for its protection by p27rex.

Cell Line

Stepwise formation of the high-affinity complex of the interleukin 2 receptor.

The interleukin 2 receptor (IL-2R) is composed of at least two polypeptides--a 55 kd protein (the L chain, p55, or alpha chain) and a 75 kd protein (the H chain, p75 or beta chain). The high-affinity binding of IL-2 results in the formation of a ternary complex consisting of IL-2 and the L and H chains. We found that the rate of high-affinity complex formation at 0 degrees C was about one-third of that at 37 degrees C. The reduction of high-affinity complex formation rate at lower temperatures correlates with the reduction of lateral diffusion within the membrane at lower temperatures. An anti-H chain antibody (2RB) inhibited the formation of the high-affinity complex at 0 degrees C but not at 37 degrees C. We studied the kinetics of the high-affinity complex formation at 37 degrees C after the preincubation of ATL-2 cells with the 2RB antibody and IL-2 at 0 degrees C. We found that the amount of IL-2.L complex formed initially at 0 degrees C was almost equivalent to the amount of high-affinity complex formed by subsequent incubation at 37 degrees C. These results suggest that the IL-2.L complex might be converted to the high-affinity IL-2R complex. Similar experiments using YTC3 cells, which express a smaller number of L chains, showed slower rates of high-affinity complex formation, in agreement with the affinity conversion/stepwise binding model.

Antibodies, Monoclonal

A larger number of L chains (Tac) enhance the association rate of interleukin 2 to the high affinity site of the interleukin 2 receptor.

The IL-2-R is composed of at least two proteins, that is, a 55-kD protein (p55, the L chain, or Tac) and a 75-kD protein (p75, the H chain, or converter). The high affinity binding of IL-2 results in the formation of the ternary complex consisting of IL-2, and the L and H chains. To distinguish the affinity conversion model and the binary complex model we have carried out kinetic studies on the IL-2 binding to the high affinity IL-2-R on T lymphocytes expressing various numbers of L chains and a relatively constant number of H chains. We found that expression of a larger number of L chains accelerated the association of IL-2 to the high affinity receptor. The results are not compatible with the binary complex model that assumes a fixed number of high affinity sites determined by the numbers of a limiting chain. Instead, the results are consistent with the prediction of the affinity conversion model that assumes association of IL-2 to the L chain as the first step of the ternary complex formation and they indicate that the possible role of excess L chains is to accelerate the formation of the ternary complex. The reaction rate constants calculated from the affinity conversion model were reasonably constant.

Humans

Differential effects on expression of IL-2 receptors (p55 and p70) by the HTLV-I pX DNA.

Abnormal expression of the low-affinity receptor for interleukin-2 (IL-2R) is a characteristic of the HTLV-I (+) leukemic T cells in adult T-cell leukemia (ATL). Despite the expression of IL-2R bearing Tac antigen (IL-2R/p55), leukemic cells of the majority of ATL patients do not proliferate in response to IL-2. In the human NK cell line, YT, as well as in ATL-derived T cells, the co-expression of IL-2R/p55 and the second IL-2R without the Tac epitope (IL-2R/p70) is required to produce high-affinity IL-2R. To study the effect of HTLV-I on both of the IL-2Rs, we transfected a fragment of HTLV-I containing the p40X gene into YT cells. One of the 2 transfected YT clones (YT/pX-5.1) had an increased level of expression of IL-2R/p55. In contrast, expression of IL-2R/p70 was unaffected, as determined by Scatchard analysis and the cross-linking study using 125I-IL-2. Our results show that the T-cell phenotype is not required for induction of IL-2R/p55 by p40X. We suggest that HTLV-I infection induces a disproportionate induction of IL-2R/p55 without significant enhancement of IL-2R/p70 expression, resulting in the predominant expression of low-affinity IL-2R in ATL. IL-2R/p70 may be a critical parameter determining the IL-2 reactivity of HTLV-I-infected T cells as well as of normal lymphocytes.

Antigens, Differentiation

Molecular mechanism for the formation of the high-affinity complex of interleukin 2 and its receptor.

Interleukin 2 (IL-2) binds to its receptors with three distinct affinities, with Kd values of 10(-11) M (high), 10(-9) M (intermediate) and 10(-8) M (low). IL-2 responding cells express two proteins that bind IL-2, i.e. a 55 x 10(3) Mr protein (p55 or L chain), which has classically been known as the IL-2 receptor and a second 75 x 10(3) Mr chain (p75 or H chain) with intermediate affinity. Experiments were performed to clarify the mechanism of the high-affinity site formation. Crosslinking of human IL-2 with the high-affinity sites of human T lymphocytes yielded a 150 x 10(3) Mr ternary complex consisting of IL-2, L and H chains. The ternary complex with human IL-2 was formed on EL/Tac 3 cells expressing human L and murine H chains, although human IL-2 was unable to bind to the parental EL-4 cell, which does not express human L chain. The high-affinity ternary complex was stable during solubilization and fractionated by gel-filtration chromatography, and the numbers of these complexes were quantified by this method. The number of high-affinity sites on the CT/hR-1 cells, which express the human L, murine L and murine H chains, was almost constant even when either the human or murine L chain was blocked by specific antibodies in agreement with a previous observation. These results indicate that the L and H chains do not form a stable binary complex by themselves and that IL-2 binding induces the formation of the stable high-affinity ternary complex.

Animals

Expression of the c-myc gene in human gastrointestinal malignancies.

We have examined the level of the c-myc transcript in 6 esophageal, 16 gastric, 19 colorectal and 1 anal cancer tissue samples; these included four lymph nodes and six hepatic metastases obtained surgically. The esophageal cancer tissues were without an increase of the c-myc transcript, some of the gastric cancer samples showed a two to three fold increase and most of the colorectal and the one anal cancer samples showed a two to ten fold increase when compared with a normal mucosal layer. Therefore, the level of the c-myc transcript in human gastrointestinal malignancies shows organ dependency. Local, lymphatic, and hepatic metastases showed little difference in the level of c-myc mRNA from that of the primary tumor.

Actins

Expression of a provirus of human T cell leukaemia virus type I by DNA transfection.

We isolated the full length provirus of human T cell leukaemia virus type I (HTLV-I) from MT-2, a lymphoid cell line producing HTLV-I. In three non-lymphoid cell lines (COS7, human osteosarcoma HOS cells, and HeLa) this provirus expressed a trans-acting activity after co-transfection with a recombinant plasmid carrying a bacterial chloramphenicol acetyltransferase gene under the control of a long terminal repeat of HTLV-I provirus. The trans-acting protein p40 was detected by immunoprecipitation in transfected HOS cells. Structural proteins of HTLV-I, the gag and env products, were also formed and processed in the same manner as observed in MT-2 cells. In transfected HeLa cells, the p40 protein was mainly localized in the nucleus, while other structural proteins were detected in the cytoplasm and/or the membrane by indirect immunofluorescence. Syncytium formation was observed in HeLa cells after transfection. These results demonstrated that non-lymphoid cells could produce the major proteins of HTLV-I after DNA transfection of the cloned provirus.

Antigens, Viral

Structural analysis of p28 adult T-cell leukaemia-associated antigen.

The 28,000 mol. wt. polypeptide (p28) of adult T-cell leukaemia-associated antigen encoded by the 24S defective human T-cell leukaemia virus (HTLV-I) is associated with protein kinase activity. We have determined the nucleotide sequence of this defective HTLV-I provirus and found that it contains a portion of the gag gene (p19 and part of p24), the pX region, and two long terminal repeats, one at each end. The predicted p28 gag-pX fused protein consists of 190 amino acids and its mol. wt. was calculated as 21,055. The results of peptide mapping analysis showing that p28 contains p19 supported the nucleotide sequence data. That p28 was encoded by this defective provirus was also demonstrated by transient expression of p28 polypeptide in COS 7 cells transfected with a recombinant plasmid containing a simian virus 40 early promoter and the p28-coding region of the 24S HTLV-I.

Adult

Structure and function of the interleukin 2 receptor: affinity conversion model.

We cloned cDNAs of the human and mouse IL-2 receptors. Comparison of their structures allowed us to identify several conserved regions localized to exons 2 and 4, the cytoplasmic portion and the transmembrane portion. These regions might be important for the functions of the IL-2 receptor. The human IL-2 receptor, which was expressed on an IL-2-dependent murine T-cell line, CTLL-2, by cDNA transfection, was shown to be functionally active by blocking the endogenous mouse IL-2 receptor with monoclonal antibodies. On the other hand, the human IL-2 receptors expressed on non-lymphoid cells were functionally inactive. They were unable to mediate the growth signal, were of low affinity species and aberrant in internalization. We postulated that the dysfunction of the IL-2 receptors in non-lymphoid cells would be due to the absence of the putative converter protein which is expressed specifically in lymphoid cells. Since the human IL-2 receptor is active in the murine T cell, the converter may interact with the receptor at the portions conserved between man and mouse. We proposed the affinity conversion model that explained the high affinity state of the receptor by the ternary complex formation between IL-2, the IL-2 receptor and the converter.

Allosteric Regulation

Genomic expressions of human T-lymphotropic virus (HTLV-I).

Human T-lymphocyte cell line termed MT-2 is producing persistently HTLV-I virion and has a strong potential to transform human T-lymphocytes when cocultivated. The virion of HTLV-I (MT-2) was isolated and its RNA was extracted to analyze the gene and gene products of HTLV-I. HTLV (MT-2) virion RNA was translated in a rabbit reticulocyte lysate system in vitro in which a gag precursor polyprotein (p53) and a putative gag-prt fusion protein (p76) were synthesized from a full length 35S RNA. The full length provirus, HTLV-I (MT-2), was molecularly cloned and its genomic expression was examined transiently and permanently by transfecting in human lymphoid and non-lymphoid cells. The cloned provirus expressed the same virological activities as observed in naturally occurring infection of the virus. A new protease gene of HTLV-I was found and its function of the gene product was studied.

Animals

Molecular cloning and structure of the human interleukin 2 receptor gene.

We have cloned the IL-2 receptor gene from human genomic DNA libraries using IL-2 receptor cDNA as probe. The genomic DNA segments that hybridized with cDNA were subcloned in M13 phages and their sequences were determined. The nucleotide sequences showed that the IL-2 receptor gene was encoded by eight exons and that the coding region sequences agreed completely with that of the IL-2 receptor cDNA cloned from a cell line derived from adult T cell leukemia (ATL), in which IL-2 receptors are expressed abnormally. The nucleotide sequence of the 5'-flanking region had a putative promotor region, which had some homology with the human IL-2 gene. Transcription initiation sites were clustered about 25 bp 3' to the TATA box as assessed by primer extension analysis. These sites for normal and ATL T cells were the same. Exons 2 and 4 encoding the extracytoplasmic portion had significant homology, suggesting that the two exons are derived by duplication of an ancestral exon. Exon 2 contained six cysteine residues, four of which are conserved at the corresponding positions in exon 4.

Amino Acid Sequence

Nucleotide sequence of mouse IL-2 receptor cDNA and its comparison with the human IL-2 receptor sequence.

We have cloned cDNA encoding the mouse interleukin-2 (IL-2) receptor from a murine T cell line, CTLL using human IL-2 receptor cDNA as probe. COS 7 cells transfected with the cDNA expressed the antigen recognized by the monoclonal antibody against the murine IL-2 receptor. The cDNA identified 4 species of mRNA (4.5, 3.5, 2.2 and 1.5 kb) of the mouse IL-2 receptor in CTLL cells. Difference in the length of mRNA seems to be ascribed to the variable length of the 3' untranslated sequence. Total nucleotide sequence (approximately 1400 bp) of this cDNA was determined and compared with the human receptor. The nucleotide and amino acid sequences of the IL-2 receptor are 70% and 60%, respectively, homologous in average between the two species. The comparison has revealed several conserved regions localized to particular exons such as transmembrane and cytoplasmic portions, suggesting that these regions are important for receptor function and its regulation.

Amino Acid Sequence

Promoter analysis of the phosphoenolpyruvate carboxylase gene of Escherichia coli.

In order to find the promoter region of phosphoenolpyruvate carboxylase [EC 4.1.1.31] gene (ppc), in vitro transcription was performed using truncated DNA fragments as templates. Transcription mapping showed three promoters as candidates, but only one of them could be assigned to the promoter of ppc gene, considering the nucleotide sequence of its coding region (Fujita, N., Miwa, T., Ishijima, S., Izui, K. and Katsuki, H. (1984) J. Biochem. 95, 909-916). Nuclease S1 mapping showed that the in vivo and in vitro transcription initiation sites are identical and that the site lies 91 or 92 nucleotides upstream the translation initiation site. No alteration of the transcription initiation site was observed whether the cells were starved for an amino acid or grown on various carbon sources. The sequences of the -10 and -35 regions were fairly in accordance with the consensus sequences hitherto reported. Some features of the sequence around the promoter region were discussed.

Base Sequence