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H Bito

Publications and source records attributed to H Bito.

At least 73 records · Page 4Linked to original sources

Functional coupling of SSTR4, a major hippocampal somatostatin receptor, to adenylate cyclase inhibition, arachidonate release and activation of the mitogen-activated protein kinase cascade.

Somatostatin has a modulatory role in regulating the membrane conductance in hippocampal neurons. To examine the signal transducing molecules involved in this process, we isolated the cDNA encoding the dominant rat hippocampal somatostatin receptor, SSTR4. Distribution of SSTR4 in the adult central nervous system was restricted to the hippocampus, cerebral cortex, striatum, hypothalamus, and thalamus, as determined by Northern blot analysis and in situ hybridization. In SSTR4-expressing Chinese hamster ovary cells, SSTR4 was functionally coupled not only to inhibition of adenylate cyclase, but also to activation of both arachidonate release and mitogen-activated protein (MAP) kinase cascade, with similar ED50 values. All of these pathways, including both MAP kinase kinase and MAP kinase activation, were completely blocked by pretreatment with pertussis toxin. On the other hand, neither inositol 1,4,5-trisphosphate synthesis nor intracellular Ca2+ mobilization was induced upon SSTR4 stimulation. These data indicate that the hippocampal functions of somatostatin might be mediated through diverse but selective second messenger systems activated via SSTR4 and reveal an unsuspected coupling of a neuronal SSTR subtype to a mitogenic signaling pathway. SSTR4, in addition, provides a useful system to study the Ca(2+)-independent, Gi-dependent (pertussis toxin-sensitive) pathway of MAP kinase activation.

Adenylate Cyclase Toxin↗

Cloning, expression and tissue distribution of rat platelet-activating-factor-receptor cDNA.

The biological functions of platelet-activating factor (PAF) have been extensively studied in the rat. However, the precise structure and distribution of rat PAF receptor has not been reported. To address this question, we isolated a rat PAF-receptor cDNA from a size-fractionated rat spleen cDNA library. The deduced amino acid sequence of the rat PAF receptor showed 80% and 79% identity with guinea pig and human PAF receptors, respectively. Pharmacological properties (ED50, inhibition by WEB2086) of rat PAF receptors expressed in Xenopus oocytes were similar to those for PAF receptors expressed from guinea pig or human cDNAs. Northern blot analysis showed a widespread distribution of PAF-receptor mRNA in almost all organs including spleen, small intestine, kidney, lung, liver and brain. Considerable difference in the PAF-receptor distribution detected among species suggests the existence of a species-specific and tissue-specific regulatory mechanism for PAF-receptor-mRNA expression. Isolation of rat PAF-receptor cDNA should facilitate further analysis of PAF-receptor function and pharmacology in diverse pathophysiological processes.

Amino Acid Sequence↗

Closed-circuit anesthesia with sevoflurane in humans. Effects on renal and hepatic function and concentrations of breakdown products with soda lime in the circuit.

BACKGROUND: Sevoflurane reacts with CO2 absorbents, resulting in the generation of breakdown products. The concentrations of sevoflurane breakdown products in a low-flow system within 5 h have been reported, but concentrations in low-flow anesthesia exceeding 5 h or in closed-circuit anesthesia have not. In this study, the breakdown products of sevoflurane in closed-circuit anesthesia exceeding 5 h were examined. METHODS: Closed-circuit sevoflurane anesthesia was administered to ten patients. Laboratory tests of hepatic and renal function were performed before and after anesthesia. Gas samples were obtained from the inspiratory limb of the anesthesia circuit, and breakdown products were analyzed by gas chromatography. The temperature of the soda lime was measured during anesthesia. RESULTS: Among the breakdown products of sevoflurane, two products, CF2 = C(CF3)-O-CH2F (compound A) and CH3OCF2CH(CF3)OCH2F (compound B), were detected. Compound A was detected in all measurements, and its concentration reached 19.5 +/- 5.4 ppm 1 h after anesthesia and decreased after 5 h. The highest concentration observed for compound A was 30.0 ppm. Compound B was detected in seven of the ten patients; its concentration was 0.17 +/- 0.37 ppm after 0.5 h of anesthesia and remained at similar concentrations thereafter. The highest mean temperature of the soda lime was 46.0 +/- 1.7 degrees C. Postanesthetic clinical laboratory tests showed no abnormalities in hepatic or renal function associated with anesthesia. CONCLUSIONS: Two breakdown products were detected in the patients anesthetized with sevoflurane using a closed-circuit technique. No abnormalities were observed during anesthesia, and no evidence of hepatic or renal dysfunction was noted in postoperative laboratory tests.

Adult↗

Long-duration, low-flow sevoflurane anesthesia using two carbon dioxide absorbents. Quantification of degradation products in the circuit.

BACKGROUND: Sevoflurane reacts with soda lime, generating degradation products. The concentrations of sevoflurane degradation products in a low-flow circuit have been reported for anesthesia times of less than 5 h. In this study, sevoflurane degradation products generated during low-flow anesthesia exceeding 10 h were examined. METHODS: Sixteen patients received sevoflurane anesthesia with a fresh gas flow rate of 11/min. In eight patients, soda lime was used as the CO2 absorbent; in the other eight patients, Baralyme was used. During anesthesia, the concentrations of degradation products in the circuit, the temperature of the CO2 absorbent, inspired and end-tidal sevoflurane concentrations, and the volume of CO2 eliminated by the patient were measured. Gas was sampled from the inspiratory limb of the circuit and analyzed by gas chromatography. RESULTS: Two degradation products, CF2 = C(CF3)-O-CH2F (compound A) and CH3OCF2CH(CF3)OCH2F (compound B), were detected. In the soda lime group, the individual maximum concentration of compound A was 23.6 +/- 2.9 (12.0-37.4) ppm. In the Baralyme group, the concentration was 32.0 +/- 2.3 (23.5-41.3) ppm. The individual maximum concentration of compound A in the Baralyme group was significant higher than A in the Baralyme group was significant higher than that in the soda lime group. Compound B was detected in two patients, reaching a maximum concentration of 0.2 ppm. The end-tidal sevoflurane concentration, temperature of the CO2 absorbent, and volume of CO2 eliminated by the patient were the same in both groups. CONCLUSIONS: The degradation products detected were at low concentrations in long-duration, low-flow anesthesia with sevoflurane. Baralyme produced higher concentrations of degradation products than soda lime.

Adsorption↗

Plasma inorganic fluoride and intracircuit degradation product concentrations in long-duration, low-flow sevoflurane anesthesia.

Plasma inorganic fluoride (F-) concentrations in long-duration, low-flow sevoflurane anesthesia were studied to assess effects on renal and hepatic function. The intracircuit concentration of degradation product generated by reaction between sevoflurane and CO2 absorbant was also determined. Ten patients undergoing prolonged surgery of 10 h or longer received sevoflurane anesthesia at 1 L/min. Plasma F- concentration was measured and clinical laboratory tests were performed. Intracircuit gas was analyzed to measure the concentration of degradation products. Plasma F- concentration increased during anesthesia, and decreased 3 h after termination. Individual maximum plasma F- concentrations were 38.8-88.6 mumol/L (56.6 +/- 4.7 mumol/L, mean +/- SE). Minimum alveolar anesthetic concentration (MAC) hours (1 MAC = 2.05%) exposure correlated with individual maximum plasma F- concentration (r2 = 0.68, P < 0.01). CF2 = C(CF3)-O-CH2F (compound A) was the only degradation product detected in the circuit. Its individual maximum concentrations were 13.6-35.1 ppm (24.3 +/- 2.4 ppm). Postanesthesia clinical laboratory tests showed no renal impairment and only mild hepatic dysfunction that was not associated with anesthesia. Hyperfluorinemia and minute quantities of compound A were detected following long-duration, low-flow sevoflurane anesthesia.

Alanine Transaminase↗

[Evaluation of low-flow sevoflurane anesthesia using modified Engström Elsa Anesthesia System].

Engström Elsa Anesthesia System (Engström Elsa) was modified to make sevoflurane administration possible, and low-flow sevoflurane anesthesia using this modified anesthesia machine was administered to 10 surgical patients. Among the breakdown products of sevoflurane, CF2 = C (CF3) OCH2F (compound A) was 14.0 +/- 7.8 ppm after the first hour of anesthesia, and remained at this level until 7 hours. CH3OCF2CH(CF3)OCH2F (compound B) was detected in 3 of 10 patients, and these concentrations were below 0.5 ppm. No patient had clinical or laboratory evidence of organ toxicity. Low-flow sevoflurane anesthesia using modified Engström Elsa can be performed safely and easily. Although low levels of two breakdown products were detected, clinical laboratory tests showed no abnormality in hepatic or renal function.

Adult↗

Two different promoters direct expression of two distinct forms of mRNAs of human platelet-activating factor receptor.

The human platelet-activating factor (PAF) receptor gene exists as a single copy on chromosome 1. We identified two 5'-noncoding exons, each of which has distinct transcriptional initiation sites. These exons are alternatively spliced to a common splice acceptor site on a third exon that contains the total open reading frame to yield two different species of functional mRNA (Transcript 1 and 2). Transcript 1 has consensus sequences for transcription factor NF-kappa B and Sp-1, and the Initiator (Inr) sequence homologous to the murine terminal deoxynucleotidyltransferase gene. Transcript 2 also contains consensus sequences for transcription factor AP-1, AP-2, and Sp-1. Transcripts 1 and 2 were both detected in heart, lung, spleen, and kidney, whereas only Transcript 1 was found in peripheral leukocytes, a differentiated human eosinophilic cell line (EoL-1 cells), and brain. Existence of distinct promoters was thus suggested to play a role in the regulatory control of PAF receptor gene expression in different human tissues and cells.

Alternative Splicing↗

Three types of Gi alpha protein of the guinea-pig lung: cDNA cloning and analysis of their tissue distribution.

cDNA clones encoding three types of Gi alpha, the alpha subunit of GTP-binding protein (Gi1 alpha, Gi2 alpha, and Gi3 alpha), were isolated from a cDNA library of the guinea-pig lung. Nucleotide sequence analysis revealed a high degree of homology with other mammalian Gi alpha cDNAs. By RNA blot analysis, the expression pattern of Gi1 alpha was more tissue-specific than those of other types of Gi alphas in the guinea-pig tissues examined. While Gi2 alpha and Gi3 alpha mRNAs were ubiquitously expressed in all tissues examined, Gi1 alpha mRNA was mainly expressed in the brain, lung and kidney. These results suggest that each Gi alpha protein may have a different role.

Amino Acid Sequence↗

Leukotriene A4 hydrolase, a bifunctional enzyme. Distinction of leukotriene A4 hydrolase and aminopeptidase activities by site-directed mutagenesis at Glu-297.

We previously obtained evidence for intrinsic aminopeptidase activity for leukotriene (LT)A4 hydrolase, an enzyme characterized to specifically catalyse the hydrolysis of LTA4 to LTB4, a chemotactic compound. From a sequence homology search between LTA4 hydrolase and several aminopeptidases, it became clear that they share a putative active site for known aminopeptidases and a zinc binding domain. Thus, Glu-297 of LTA4 hydrolase is a candidate for the active site of its aminopeptidase activity, while His-296, His-300 and Glu-319 appear to constitute a zinc binding site. To determine whether or not this putative active site is also essential to LTA4 hydrolase activity, site-directed mutagenesis experiments were carried out. Glu-297 was mutated into 4 different amino acids. The mutant E297Q (Glu changed to Gln) conserved LTA4 hydrolase activity but showed little aminopeptidase activity. Other mutants at Glu-297 (E297A, E297D and E297K) showed markedly reduced amounts of both activities. It is thus proposed that either a glutamic or glutamine moiety at 297 is required for full LTA4 hydrolase activity, while the free carboxylic acid of glutamic acid is essential for aminopeptidase.

Amino Acid Sequence↗

Platelet-activating factor (PAF) receptor in rat brain: PAF mobilizes intracellular Ca2+ in hippocampal neurons.

Platelet-activating factor (PAF), an alkylether phospholipid, is produced in the brain when it is subjected to various stimuli. Using a Xenopus oocyte expression system, we obtained evidence for functional PAF receptor mRNA expression in rat brain. The presence of the PAF receptor was confirmed and shown to be quite ubiquitous in the CNS by RNA blot and radioligand binding studies. To investigate the neuronal functions of PAF, intracellular Ca2+ increase elicited by nanomolar PAF application was analyzed in cultured rat hippocampal cells. Fractions of NMDA-responsive cells and non-NMDA-responsive cells were shown to respond to PAF, suggesting a potential role for PAF in the Ca2+ signaling pathway in the hippocampus.

Animals↗

Molecular cloning and expression of platelet-activating factor receptor from human leukocytes.

The cDNA for a platelet-activating factor (PAF) receptor was cloned from a human leukocyte cDNA library using a 0.8-kilobase pair fragment of the guinea pig lung PAF receptor cDNA (Honda, Z., Nakamura, M., Miki, I., Minami, M., Watanabe, T., Seyama, Y., Okado, H., Toh, H., Ito, K., Miyamoto, T., and Shimizu, T. (1991) Nature 349, 342-346). The cDNA (1.8-kilobase pairs) had an open reading frame encoding 342 amino acid residues with a calculated Mr of 39,203. The clone was shown to code for a PAF receptor based on the following criteria: 1) the amino acid sequence possesses seven putative membrane spanning domains with 83% identity to the guinea pig lung PAF receptor, 2) Xenopus laevis oocytes injected with the transcript of the clone showed an electrophysiological response to PAF, and 3) COS-7 cells expressing the encoded receptor showed ligand binding with the pharmacological properties of the PAF receptor. Activation of the PAF receptor yielded inositol 1,4,5-trisphosphate production in both COS-7 cells and oocytes, and guanosine 5'-O-(2-thio)bisphosphate injection into the oocytes inhibited PAF-induced Cl- current, providing an evidence that PAF stimulates phosphoinositide turnover via G-protein(s). PAF receptor mRNA was abundant in leukocytes and less so in an undifferentiated human eosinophilic cell line (EoL-1 cells) or human erythroleukemia cells (HEL cells). The production of the mRNA was prominently increased when EoL-1 cells were treated with granulocyte macrophage colony stimulating factor, interleukin-5, and n-butyrate.

Amino Acid Sequence↗

Leukotriene A4 hydrolase is a zinc-containing aminopeptidase.

A comparison of amino acid sequences revealed that leukotriene A4 (LTA4) hydrolase is homologous to various types of aminopeptidases. Consistently with the finding, the purified LTA4 hydrolases from both human and guinea pig sources contained equimolar zinc ion, as determined by atomic absorption spectrometry. The enzyme had a significant amount of aminopeptidase activity toward synthetic peptide substrates. Both LTA4 hydrolase and aminopeptidase activities were inhibited by o-phenanthroline, p-chloromercuribenzoic acid, and Leu-thiol with similar IC50 values. Co-purification as well as co-immunoprecipitation of both enzyme activities with an affinity-purified antibody against LTA4 hydrolase strongly suggest that the two enzyme activities reside in a single protein.

Aminopeptidases↗

[Eicosanoids].

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Animals↗

Leukotriene A4 hydrolase from guinea pig lung: the presence of two catalytically active forms.

Leukotriene A4 hydrolase was purified to apparent homogeneity from the guinea pig lung. The molecular weight was determined to be 70 kDa by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The enzyme exhibited two active forms with different pI values (5.7 and 5.4) depending on the presence or absence of SH-reducing reagents during purification procedures. No significant differences were observed between both forms of the enzyme as regards the catalytic properties. The N-terminal 20 amino acid sequence (PEVVDTXSLASPATVXRTKH) showed a 90% identity to the human enzyme with a constitutive substitution of Ile-3 and Ser-14 (human) by Val-3 and Thr-14 (guinea pig), respectively.

Amino Acids↗

The role of calcium in activity-dependent neuronal gene regulation.

Synaptic transmission is a key signaling event, whereby an action potential-induced release of chemical neurotransmitters again generates a positive or negative electrical activity via opening of postsynaptic channels. Thereafter, information spreads through space, from the postsynaptic membranes to the dendrites, to the soma, to the nucleus, to the presynaptic terminals and, in some cases, back to the originally stimulated synapses. Furthermore, information is also often converted in time, either by shifting the phase of electrical activity during the integration of EPSPs and IPSPs into the generation of an action potential, or by triggering a long-lasting cascade of enzymatic or protein-protein interaction-mediated events in the cytoplasm and in the nucleus. Recent studies of the signaling from the synapse to the nucleus now allow us to consider how various patterns of synaptic activity could couple with activation of specific nuclear transcription factors and thus regulate neuronal gene expression. The critical importance of Ca(2+)-dependent signaling processes in such regulatory events will be discussed below.

Animals↗