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Biomedical subjects

T Deguchi

Publications and source records attributed to T Deguchi.

At least 343 records · Page 19Linked to original sources

Production and properties of antibody to soluble guanylate cyclase purified from bovine brain.

Guanylate cyclase was purified 12,700-fold from bovine brain supernatant, and the purified enzyme exhibited essentially a single protein band on polyacrylamide gel electrophoresis. Repeated injection of the purified enzyme into rabbits produced an antibody to guanylate cyclase. The immunoglobulin G fraction from the immunized rabbit gave only one precipitin line against the purified guanylate cyclase and the crude supernatant of bovine brain on double immunodiffusion and immunoelectrophoreis. The antibody completely inhibited the soluble guanylate cyclase activity from bovine brain, various tissues of rat and mouse and neuroblastoma N1E 115 cells, whereas the Triton-dispersed particulate guanylate cyclase from these tissues was not inhibited by the antibody.

Animals↗

[Effects of mianserin on functions of ascending and descending monoaminergic systems, using experimental models (author's transl)].

Studies were carried out to evaluate the antidepressant action of Mianserin as related to noradrenergic and serotonergic systems. The actions of known tricyclic anti-depressants were comparatively investigated together with Mianserin (Organon). Self-stimulation behavior induced by stimulation of the posterior hypothalamus and substantia nigra was unaffected by Mianserin and imipramine, was suppressed with chlorpromazine and markedly enhanced by methamphetamine. The enhancement due to methamphetamine was suppressed by both Mianserin and chlorpromazine, and was potentiated by imipramine. Mianserin, imipramine and amitriptyline enhanced the rolling movements induced by methamphetamine in rats in which the nigro-striatal dopaminergic system was destroyed by the injection of 6-hydroxydopamine. The excitation induced by ldopa administration, of isocarboxazid treated mouse was enhanced by Mianserin in doses over 25 mg/kg and by imipramine or amitriptyline. The excitation of MK-486 treated mouse, induced by L-5HTP was suppressed by Mianserin, nortriptyline augmented the excitation. The head twitches induced by 5HTP were reduced to 1/10 in onset frequency by Mianserin, 1 mg/kg, p.o. The suppressive potency of amitriptyline in this model was less than 1/5 of that of Mianserin. The potentiation of the flexor reflex of hind limbs of the spinal rat induced by the pretreatment with isocarboxazid and l-dopa, 20 hours after the reserpinization, was markedly suppressed by Mianserin and amitriptyline, but unaffected by imipramine nor chlorimipramine. The potentiation of the extensor reflex of hind limbs of the spinal rat, induced 20 hours after the reserpinization by pretreatment with isocarboxazid and 5-HTP was suppressed by Mianserin, even in a low dose of 0.5 mg/kg, and by amitriptyline in a dose of 10 mg/kg. As far as monoaminergic mechanisms are concerned, the mode of antidepresant action of Mianserin is probably different from that of tricyclic antidepressants.

5-Hydroxytryptophan↗

[Radioimmunoassays of 3H-fortimicins (author's transl)].

Radioimmunoassays for unique aminoglycoside antibiotics, three fortimicin components, have been developed using antisera obtained from rabbits injected with fortimicin A-, isofortimicin A- or fortimicin B-BSA conjugate, respectively. Fortimicins were tritiated with N-succinimidyl-[2, 3-3H] propionate. For fortimicin A, the standard curve was linear to logit-log plot yielding an sensitivity of 0.2 ng/tube. A correlation coefficient of 0.99 was obtained between the radioimmunoassay and a microbioassay for fortimicin A in human sera. In the assay cross-reaction occurred with fortimicin derivatives and there was no cross-reaction with neomycin, kanamycin, sagamicin, amikacin, dibekacin, penicillins and cephalosporins. From the comparison of the specificity observed in three kinds of antisera, the following conclusions have been obtained: (1) Anti-fortimicin A and anti-isofortimicin A antisera were specific for the corresponding haptens. (2) In fortimicin B-BSA conjugate and 3H labeled antigen of fortimicin B, the fortamine ring might be inverted from the 4C1 confirmation to the 1C4 conformation. Thus the specificity of anti-fortimicin B antisera for fortimicins resembled to that of anti-fortimicin A antisera.

Aminoglycosides↗

A circadian oscillator in cultured cells of chicken pineal gland.

The activity of serotonin N-acetyltransferase, the key enzyme of melatonin synthesis, shows a marked circadian rhythm in the pineal glands of various animal species. The regulation mechanism of the N-acetyltransferse rhythm in birds is different from that in mammals. N-Acetyltransferase activity in rat pineal gland is controlled by the central nervous system through the sympathetic nerves from the superior cervical ganglion, while in chicken the endogenous oscillator for N-acetyltransferase rhythm is presumably located in the pineal gland. Recently it has been shown that N-acetyltransferase activity oscillates in a circadian manner in the organ culture of chicken pineal glands. When chicken pineal glands were organ-cultured under continuous illumination, the nocturnal increase of enzyme activity was suppressed. These observations suggested that chicken pineal gland contains a circadian oscillator, a photoreceptor and melatonin-synthesising machinery. A central question arises whether the circadian oscillation of N-acetyltransferase activity and its response to environmental lighting are generated within the cell or are emergent properties of interaction between different types of pineal cells. I report here that in the dispersed cell culture of chicken pineal gland, N-acetyltransferase activity exhibits a circadian rhythm and responds to environmental lighting in the same manner as in the organ culture.

Acetyltransferases↗

Circadian rhythm of serotonin N-acetyltransferase activity in organ culture of chicken pineal gland.

When chicken pineal glands were organ-cultured in darkness, serotonin N-acetyltransferase activity was low during daytime, increased at midnight, and decreased on the next morning. The autonomous increase of N-acetyltransferase activity was suppressed by illumination of the glands. When pineal glands were cultured under a light-dark cycle (LD 12:12), the change of N-acetyltransferase activity continued to oscillate in phase with the light-dark cycle for 3 days.

Acetyltransferases↗

Incidence and clinical significance of HBe antigen and antibody in HBsAg-positive various liver diseases.

The HBeAg was detected in 5 of 24 patients with acute type B hepatitis (20.8%), 33 of 95 with chronic hepatitis (34.7%), 6 of 33 with liver cirrhosis (18.2%), and 3 of 39 with hepatocellular carcinoma (7.7%). On the other hand, anti-HBe was found in 4.2% of acute hepatitis, 18.9% of chronic hepatitis, 9.1% of liver cirrhosis, and 12.8% of hepatocellular carcinoma. We found that an early detection of HBeAg in patients with acute hepatitis is of no prognostic value, but its persistence may provide the earliest evidence of potential chronicity. In chronic liver diseases, HBeAg-positive cases showed remarkable fluctuations of serum transaminase levels, severe histological changes and poor responses to treatment. Many of the HBeAg-positive patients lost their initial positivity of HBeAg within six months or one year and in some cases serocoverted to anti-HBe after acute exacerbation. Follow-up study more than several years revealed that the presence of anti-HBe reflect an inactive stage and a more favorable outcome, whereas persistence of HBeAg may provide an active and continuing hepatocellular damage. From these results, we believed that serial measurements of HBeAg/anti-HBe system are useful prognostic marker in patients with HBsAg-positive liver disease.

Acute Disease↗

Guanylate cyclase in neuroblastoma N1E 115 cells: presence of endogenous activator.

Guanylate cyclase in cultured neuroblastoma N1E 115 cells was readily solubilized. MgCl2 as well as MnCl2 served as a metal cofactor of the guanylate cyclase. The maximal guanylate cyclase activity obtained with MgC12 was 80% of that with MnCl2. When the supernatant of cell homogenate was adjusted to pH 5.2, all of enzyme activity was precipitated. The guanylate cyclase activity recovered in the pH 5.2 precipitate was reduced to about 10% of the original supernatant. Combination of the pH 5.2 supernatant and precipitate fractions, however, restored guanylate cyclase activity, indicating that the pH 5.2 supernatant contains an endogenous activator for guanylate cyclase. The activating factor in the pH 5.2 supernatant remained in the aqueous phase after proteins were removed by perchloric acid. The factor was filterable through Diaflo ultrafilter membranes UM 2 and UM 10 indicating that the factor is a small molecule. The activation by the endogenous activator was prevented by N-methylhydroxylamine and lysolecithin.

Cell Fractionation↗

Blockade by N-methylhydroxylamine of activation of guanylate cyclase and elevations of guanosine 3',5'-monophosphate levels in nervous tissues.

Hydroxylamine and N-methylhydroxylamine prevented the activation of soluble guanylate cyclase by the endogenous activator as well as by nitroso compounds such as N-methyl-N'-nitro-N-nitrosoguanidine or nitroprusside, while other derivaties of hydroxylamine were ineffective. Hydroxylamine and N-methylhydroxylamine did not alter the basal guanylate cyclase activity of purified enzyme preparations. Kinetics analysis indicated that N-methylhydroxylamine competes with N-methyl-N'-nitro-N-nitrosoguanidine for guanylate cyclase. The activation of guanylate cyclase by N-methyl-N'-nitro-N-nitrosoguanidine and its inhibition by N-methylhydroxylamine were reversible reactions. These effects of N-methyl-N'-nitro-N-nitrosoguanidine and N-methylhydroxylamine were observed with guanylate cyclase from other tissues. N-Methylhydroxylamine prevented the increase of guanosine 3',5'-monophosphate (cyclic GMP) levels in cerebellar slices of guinea pig by N-methyl-N'-nitro-N-nitrosoguanidine, veratridine and adenosine, while the elevations of adenosine 3',5'-monophosphate by these agents were not effected. N-Methylhydroxylamine also blocked the increases of cyclic GMP levels by carbachol, prostaglandin E1 and N-methyl-N'-nitro-N-nitrosoguanidine in neuroblastoma N1E 115 cells. Thus N-methylhydroxylamine prevents the activation of guanylate cyclase and the increased synthesis of cyclic GMP in response to transmitters without blocking the synthesis of cyclic GMP via basal enzyme activity.

Animals↗

Purification and properties of guanylate cyclase from the synaptosomal soluble fraction of rat brain.

Guanylate cyclase (GTP pyrophosphate-lyase (cyclizing), EC 4.6.1.2) was purified 2250-fold from the synaptosomal soluble fraction of rat brain. The specific activity of the purified enzyme reached 41 nmol cyclic GMP formed per min per mg protein at 37 degrees C. In the purified preparation, GTPase activity was not detected and cyclic GMP phosphodiesterase activity was less than 4% of guanylate cyclase activity. The molecular weight was approx. 480 000. Lubrol PX, hydroxylamine, or NaN3 activated the guanylate cyclase in crude preparations, but had no effect on the purified enzyme. In contrast, NaN3 plus catalase, N-methyl-N'-nitro-N-nitrosoguanidine or sodium nitroprusside activated the purified enzyme. The purified enzyme required Mn2+ for its activity; the maximum activity was observed at 3-5 mM. Cyclic GMP activated guanylate cyclase activity 1.4-fold at 2 mM, whereas inorganic pyrophosphate inhibited it by about 50% at 0.2 mM. Guanylyl-(beta,gamma-methylene)-diphosphonate and guanylyl-imidodiphosphate, analogues of GTP, served as substrates of guanylate cyclase in the purified enzyme preparation. NaN3 plus catalase or N-methyl-N'-nitro-N-nitrosoguanidine also remarkably activated guanylate cyclase activity when the analogues of GTP were used as substrates.

Animals↗