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T Noguchi

Publications and source records attributed to T Noguchi.

At least 991 records · Page 55Linked to original sources

Regulation of rat liver L-type pyruvate kinase mRNA by insulin and by fructose.

The effects have been studied of streptozotocin-induced diabetes and subsequent insulin administration or feeding of a high fructose diet on the amount of enzyme protein and mRNA activity of L-type pyruvate kinase in rat liver. Diabetes markedly decreased the L-type enzyme activity in rat liver and insulin treatment resulted in restoration of the enzyme activity to normal. A high fructose diet also increased the enzyme activity in diabetic rats but to a lesser extent. Immunochemical analysis showed that these alterations in the enzyme activity were due to changes in the amount of immunoreactive enzyme protein. The mechanism of the changes was studied further by assaying the level of functional mRNA coding for this enzyme in a nuclease-treated reticulocyte lysate system with total RNA isolated from rat liver. L-type pyruvate kinase mRNA, expressed as a percentage of the total protein synthesized, was greatly decreased in diabetic rats. Insulin administration resulted in recovery of the mRNA activity to the normal level within 24 h. The lag period before accumulation of translatable mRNA of the L-type enzyme was about 4-5 h. The mRNA activity was also increased in diabetic rats fed a high fructose diet. This fructose effect, which was much smaller than the insulin effect, was maximal after feeding fructose diet for one day. These changes were approximately comparable to the changes in enzyme activity. Thus, it is suggested that regulations of rat liver L-type pyruvate kinase by insulin and by fructose are primarily due to changes in the level of translatable mRNA of this enzyme.

Animals↗

Expression in Escherichia coli of chemically synthesized gene for a novel opiate peptide alpha-neo-endorphin.

Chemically synthesized alpha-neo-endorphin gene was fused to the Escherichia coli beta-galactosidase gene on the plasmid pKO13. The resulting recombinant DNA was used to transform E. coli cells. Radioimmunoassay for alpha-neo-endorphin in CNBr-treated bacterial cells showed that alpha-neo-endorphin was synthesized at approximately 5 x 10(5) molecules per single E. coli cell. One of the transformants, WA802/p alpha NE2, was used for alpha-neo-endorphin purification. From 10.9 g of wet cells, we isolated 4 mg of chemically pure and biologically active alpha-neo-endorphin.

Amino Acid Sequence↗

Evidence for a dual effect of dibutyryl cyclic AMP on the synthesis of tyrosine aminotransferase in rat liver.

A single injection of dibutyryl cyclic AMP (Bt2cAMP) into adrenalectomized rats results in rapid and proportionate increases in hepatic tyrosine aminotransferase catalytic activity and in the amount of functional mRNA coding for this enzyme. This effect is transient in that mRNATAT peaks at 0.065% of total poly(A)+RNA activity at 1 h and is back to the basal level of 0.012% in 2.5 h. Enzyme activity peaks at 2.5 h and is back to the basal level by 5 h. If Bt2cAMP is repeatedly injected (0, 1, 2.5, and 4 h), enzyme activity remains at maximal levels for 4 to 5 h, whereas changes in mRNATAT activity are identical with those observed in the single injected rats. The rate of tyrosine aminotransferase synthesis at 5.5 h in the multiply injected rats, a time when mRNATAT has already returned to the basal level, is 3 to 4 times greater than that in either control or singly injected rats at the same time (0.3% of total protein versus 0.07%) and is equivalent to the maximal rate seen 1 h after the initial injection of the cyclic nucleotide. Since the rate of synthesis is increased in proportion to the increase in enzyme catalytic activity, stabilization of the enzyme against degradation is excluded as an induction mechanism at this late time point. These responses are not due to differences in the metabolism of Bt2cAMP, and the effect depends on the presence of metabolically active derivatives of this nucleotide. It thus appears that Bt2cAMP induces the synthesis of tyrosine aminotransferase in rat liver in two distinct ways. One is pretranslational and involves a transient and rapid increase in mRNATAT activity. The second appears to involve a delayed but sustained increase in translation of a basal level of mRNATAT.

Animals↗

Selective early loss of polypeptides in liver microsomes of CCl4-treated rats. Relationship to cytochrome P-450 content.

Treatment of rats with carbon tetrachloride (CCl4) resulted in early reproducible losses of either one or two specific polypeptides (depending on the inducing agent with which the animals had been treated) in the molecular weight range of the multiple forms of cytochrome P-450. The loss was correlated with a decrease in total cytochrome P-450 content in the microsome. The results of this study and those in the accompanying report indicate that CCl4 was metabolized by a specific form of cytochrome P-450 (52,000 daltons), which was rapidly destroyed in the process. The early loss of this peptide occurred simultaneously with the previously demonstrated production of highly reactive trichloromethyl radicals (CCl3). This polypeptide, which was shown to disappear from liver microsomes following treatment of rats with CCl4 was demonstrated in the accompanying report to be the form of cytochrome P-450 specifically required for production of the highly reactive trichloromethyl radical in a reconstituted monooxygenase system.

Animals↗

Specificity of a phenobarbital-induced cytochrome P-450 for metabolism of carbon tetrachloride to the trichloromethyl radical.

Evidence is presented which demonstrates that the first polypeptide to disappear in liver microsomes of phenobarbital-induced rats treated with CC14 was the 52,000 dalton p-450 cytochrome. Data are also presented which show that this form of cytochrome P-450 was capable of generating the trichloromethyl radical from CCl4 in a reconstituted system containing the purified cytochrome, NADPH-cytochrome P-450 reductase, NADPH, CCl4, and the spin-trapping agent, phenyl-t-butyl nitrone. Other cytochrome P-450 fractions not containing the 52,000 dalton form did not produce this radical. The formation of this highly reactive radical may have resulted in localized damage to the cytochrome, causing the cytochrome either to be released from the microsomal membrane or to form large aggregates which did not migrate in the gel electrophoretic procedures employed.

Animals↗

The M1 and M2 subunits of rat pyruvate kinase are encoded by different messenger RNAs.

The question of whether the M1- and M2-type isozymes of pyruvate kinase are synthesized by a common mRNA was examined by isolating total RNA from rat skeletal muscle and AH-130 Yoshida ascites hepatoma cells, which express the M1- and M2-type isozymes, respectively, and translating the preparations in a rabbit reticulocyte lysate system. The newly synthesized pyruvate kinase subunits were compared by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and isoelectric focusing under the denaturing condition. The pyruvate kinase subunit synthesized from hepatoma cell RNA had a slightly larger molecular weight and higher pI value than the subunit from muscle RNA. When a mixture of the two RNAs was added to the lysate, the same result was obtained. Thus, it is concluded that the M1- and M2-type isozymes are translated from different messenger RNAs.

Animals↗

Development of glutamate:glyoxylate aminotransferase in the cotyledons of cucumber (Cucumis sativus) seedlings.

Glutamate:glyoxylate aminotransferase had been reported to be present exclusively in the peroxisomes of plant leaves and to participate in the glycollate pathway in leaf photorespiration (Tolbert (1971) Annu. Rev. Plant Physiol. 22, 45-74]. Glutamate:glyoxylate aminotransferase activity was already present in the etiolated cotyledons of cucumber (Cucumis sativus) seedlings, and increased during greening. The enzyme was present only in the cytosol of the etiolated cotyledons and appeared in the peroxisomes during greening. The enzyme was purified to homogeneity from the cytosol of the etiolated cotyledons and from the peroxisomes of the green cotyledons of cucumber seedlings. The two enzyme preparations had nearly identical enzymic and physical properties. On the basis of these findings, roles of glutamate:glyoxylate aminotransferase in the glycollate pathway in photorespiration, and the mechanism of its appearance in the peroxisomes during greening, are discussed.

Glutamates↗

Subcellular distribution, and physical and immunological properties of hepatic alanine: glyoxylate aminotransferase isoenzymes in different mammalian species.

1. Subcellular distribution, and physical and immunological properties of hepatic alanine: glyoxylate aminotransferase isoenzymes 1 and 2 were examined with ten different mammalian species. 2. Intracellular organelles containing isoenzyme 1 varied from species to species; isoenzyme 1 was located in the peroxisomes, mitochondria or both organelles. In contrast, isoenzyme 2 was found only in the mitochondria but not in the peroxisomes. 3. In any species, isoenzyme 1 had molecular weight of approx. 80,000 with two identical subunits, and isoenzyme 2 approx. 200,000 with four identical subunits. 4. In any species, an immunological cross-reactivity was observed among isoenzymes 1 and among isoenzymes 2 but did not between isoenzymes 1 and isoenzymes 2.

Alanine Transaminase↗

Metabolism of urea and glyoxylate, degradative products of purines in marine animals.

In marine fish and crustacean liver, degradative enzymes able to convert purines to urate have been shown to be located only in the cytosol, and degradative enzymes able to convert urate to urea and glyoxylate, only in the peroxisomes (Noguchi, T., Takada, Y., & Fujiwara, S. (1979) J. Biol. Chem. 254, 5272-5275). The subcellular distribution of these two enzymes involved in further metabolism of urea and glyoxylate in marine animal species was examined by centrifugation in a sucrose density gradient. Urease was located only in the cytosol of crustacean and mollusc liver; no activity was detected with fish liver. In fish, crustacean and mollusc liver, the conversion of glyoxylate to glycine may be mainly catalyzed by alanine : glyoxylate aminotransferase. Hepatic alanine: glyoxylate aminotransferase was located both in the mitochondrial matrix and in the cytosol in each species studied. These findings suggest that peroxisomal urea is transported to the cytosol then degraded to NH3 for the excretion of purine nitrogens, while peroxisomal glyoxylate is transported to the cytosol or mitochondria then converted to glycine for the reutilization of purine carbons.

Animals↗

Factors contributing to the poor myelination in the brain of the Snell dwarf mouse.

Conventional histological examination of the pituitary does not distinguish Snell dwarf mutants (dw/dw) from their normal littermates (+/?) in the neonatal stage. However, immunohistochemical examination of pituitaries of litters born to heterozygous Snell parents revealed that in approximately 25% of the glands examined, the number of positive cells was very low in the neonatal stage. We attempted to delineate the events resulting in the poor myelination in the brain of the Snell dwarf mouse, and to devise an immunohistochemical method for identifying the mutant neonate. Differences in the brain weights of the dw/dw and +/? mice first became apparent on the 10th day of age, and from this time on no further increase in the weight of the dwarf mouse brain was recorded. Increase in CNPase activity was found to be suppressed in the cerebrum and brain stem throughout the developmental stage, but not in the other parts of the brain. The yield of isolated myelin decreased by 58% in the mutant mouse, but CNPase activity was equivalent to that of control myelin. Differences in DNA content per cerebrum from the dw/dw and +/? mice first became apparent on the 10th day of age. Henceforth, the dw/dw mice showed no further increase, although the +/? mice continued to increase. [3H]Thymidine incorporation into the DNA fraction in vivo on the 7th day of age, when glial cell proliferation in the cerebrum is most active, was suppressed to about 50% of the control level in all parts of the dwarf brain. These findings indicate that the poor myelination found in the mutant cerebrum is a hypomyelination due to reduce oligodendroglial proliferation caused by lack of circulating growth hormone.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Effects of bovine growth hormone on the retarded cerebral development induced by neonatal hydrocortisone intoxication.

In comparison with normal controls, hydrocortisone-intoxicated rats (HC rats) had smaller cerebra, lowered 2',3'-cyclic nucleotide 3'-phosphohydrolase (CNPase) activity, and greatly reduced learning ability. The reduction in cerebral weight and DNA content was considered to be caused by a decrease in the number of proliferating glial cells, because the usual postnatal elevation of thymidine kinase (TK) activity was found to be suppressed in the cerebra from the HC rats. Electron microscopic observation of the pituitary gland revealed that the 5-day-old HC rat contained growth hormone (GH) secretory cells which were fully packed with GH granules, suggesting a disorder in the system which releases GH. In an attempt to promote cerebral development in the HC rats, we administered bovine GH (bGH) to some of the HC rats daily from the day of birth until weaning (HC + bGH rats). In the HC + bGH rats, the cerebral DNA was restored to normal levels and a concomitant increase in TK and CNPase activity was noted. Furthermore, in the brightness discrimination test, whereas the HC + bGH rats attained the learning ability of the normal controls after only 10 sessions, the HC rats were unable to reach an equivalent level even after 25 sessions.

Animals↗

Postnatal action of growth and thyroid hormones on the retarded cerebral myelinogenesis of Snell dwarf mice (dw).

Snell dwarf mice (dw) showed a lower CNPase activity (59% of the normal controls) only in the cerebrum among different parts of the CNS, and a strikingly reduced level of spontaneous locomotion activity with an indistinct diurnal periodicity in a 24-h record at 40 days of age. Daily administration of bGH and T4 to the dwarfs during the first 40 days of postnatal life restored CNPase activity to the level of the normal controls, and was accompanied by normalization of the pattern of spontaneous locomotion activity. Daily administration of bGH alone also restored CNPase activity and spontaneous locomotion, but to a lesser extent. The daily administration of thyroid stimulating hormone (TSH) alone, however, failed to restore CNPase activity, in spite of the fact that the thyroid glands of the TSH-treated dwarfs were indistinguishable from the normal controls in organization and appearance. These results indicate that the restoration of both the retarded myelinogenesis and abnormal behavior of the Snell dwarf mice might essentially depend upon GH levels and the synergistic effects of T4.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗