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Biomedical subjects

H Moritoki

Publications and source records attributed to H Moritoki.

At least 37 records · Page 2Linked to original sources

Opioid receptor types on adrenergic nerve terminals of rabbit ear artery.

Methionine enkephalin, leucine enkephalin, [D-Ala2, D-Leu5] enkephalin, alpha-neoendorphin, beta-endorphin, dynorphin (1-13) and ethylketocyclazocine inhibited the contractions of rabbit ear artery ring segments elicited by transmural nerve stimulation at 8 Hz. Ethylketocyclazocine, dynorphin (1-13) and leucine enkephalin produced partial inhibition, their apparent intrinsic activities (alpha) being 0.57, 0.75 and 0.66, respectively. Morphine and normorphine, which are agonists at mu-receptors, did not inhibit the response of the artery. Naloxone antagonized the actions of opioids and ethylketocyclazocine, and was more effective against methionine enkephalin, leucine enkephalin and [D-Ala2, D-Leu5] enkephalin than against alpha-neoendorphin, ethylketocyclazocine and dynorphin (1-13). The pA2 values of naloxone against so-called delta-agonists were approx. 8.5, and against so-called kappa-agonists were approx. 7.7. The supposed kappa-antagonist, Mr2266, was more effective than naloxone in antagonizing the actions of alpha-neoendorphin, and the kappa-agonists dynorphin (1-13) and ethylketocyclazocine. The pA2 values of Mr2266 against kappa-agonists were 8.5-9.0, and against delta-agonists were 7.8 or less. The opioid peptides and opioids tested did not cause dilatation of the artery previously contracted with histamine. These results suggest that the opioid peptides and ethylketocyclazocine acted on opioid receptors at adrenergic nerve terminals in the ear artery. The opioid receptors appear to be of the delta- and kappa-types, not the mu-type.

Animals

Tripeptides acting on opioid receptors in rat colon.

The tripeptides SD-34 and SD-25 induced atropine-, guanethidine-, antihistaminics-resistant but naloxone-sensitive contractions of isolated rat distal colon. They appeared to act on an opioid receptor, probably of the mu subtype, distinct from those for methionine enkephalin and morphine, because the pA2 values of naloxone for the peptides were similar to those for mu-agonists but different from those for methionine enkephalin and morphine, and because the peptides caused contractions of colon that had been desensitized to morphine. Mr 2266, a supposed kappa-antagonist, inhibited the actions of the peptides, ethylketocyclazocine and dynorphin at concentrations much lower than those inhibiting the actions of methionine enkephalin and morphine. Thus these peptides seem to act on the mu- and/or kappa-receptors. The actions of the tripeptides were inhibited by methysergide and methylergometrine, but not by the 5-HT2 antagonist ketanserin, and were not affected by 5-HT or substance P autodesensitization . Thus their actions do not seem to involve 5-HT, histamine, ACh or substance P. It seems likely that the tripeptides, through opioid receptors, directly activate the muscle, or remove some inhibitory modulation of myogenic activity, thus causing contractions.

Animals

Possible involvement of prostaglandins in the action of ATP on guinea-pig uterus.

ATP and other adenine derivatives, such as AMP and adenosine, at concentrations above 10(-6) M induced dose-dependent contractions of guinea-pig uterine strips. Treatment of the strips with nonsteroidal anti-inflammatory drugs, such as indomethacin, aspirin and phenylbutazone, at concentrations of 10(-6) to 10(-4) M irreversibly inhibited the contractions, without affecting those caused by acetylcholine and bradykinin. Arachidonic acid (10(-8)-10(-6) g/ml) and prostaglandins (E1, E2 and F2 alpha, 10(-9)-10(-7) g/ml) restored the inhibited uterine response to ATP, but the inhibition was reinstated on washing out of the arachidonic acid or prostaglandins. Furthermore, the prostaglandin antagonists polyphloretin phosphate (3 x 10(-5)-3 x 10(-4) g/ml) and SC 19220 (10(-6)-3 X 10(-5) M) selectively suppressed the action of ATP. In addition to the prostaglandin antagonists, 2,2'-pyridylisatogen, reported to be an ATP antagonist, at concentrations of 10(-6) to 3 x 10(-5) M selectively inhibited the response of uterine strips to ATP. These results suggest the involvement of prostaglandins in the actions of ATP and other adenine derivatives on guinea-pig uterine tissue and provide further evidence for ATP-stimulated prostaglandin formation in smooth muscle.

Adenine Nucleotides

Effects of cholinesterase inhibitors on the spasmogenic action of acetate esters on rat uterus.

Acetate esters, such as phenyl acetate and aspirin, induced atropine-sensitive contractions of isolated uterus only when choline was present. These contractions were selectively and reversibly inhibited by carbamate-type cholinesterase inhibitors, such as neostigmine and eserine, and quaternary ammonium compounds, such as tetraethylammonium and decamethonium. After treatment with organophosphorus cholinesterase inhibitors, such as di-isopropyl fluorophosphate and tetraethyl pyrophosphate, the uterus failed to respond to the acetate esters, even when high concentrations of choline were present. The inhibition of the response of the uterus by organophosphates was effectively removed by pyridine-2-aldoxime methiodide. Pretreatment of the uterus with neostigmine or simultaneous addition of high concentrations of quaternary ammonium compounds prevented the inhibition by organophosphates. The inhibition produced by neostigmine was also reduced by simultaneous addition of quaternary ammonium compounds. These findings suggest that some esterase having an anionic site and an esteratic site, probably cholinesterase, may mediate in the uterine contractions induced by acetate esters in the presence of choline, and that inhibition by organophosphates, carbamates and quaternary ammonium compounds of cholinesterase activity in the preparation may impede the initiation of contractions by the acetate esters in the presence of choline.

Acetates

Potentiation by dipyridamole of the inhibition of guinea-pig ileum twitch response caused by adenine derivatives.

The inhibition actions of adenosine and adenine nucleotides, such as ATP, AMP and cyclic AMP, on contractions of guinea-pig from ileum induced by transmural stimulation were potentiated by dipyridamole, whereas those of inosine, morphine and tetrodotoxin were not affected. Tritium activity, accumulated during incubation of the ileal segments with [3H]adenosine, was reduced by dipyridamole. The adenosine added was degraded to inosine and then hypoxanthine during incubation, with the ileal segments, thereby restoring the twitch response of the ileal segments. In the presence of dipyridamole, the degradation of adenosine and the recovery of the twitch response was retarded. Thus, dipyridamole may potentiate the inhibitory actions of adenosine and adenine nucleotides on the twitch response of the ileum by inhibiting both the accumulation and the degradation of adenosine.

Adenine Nucleotides

Aspects of the spasmogenic effects of acetate esters on ileal smooth muscle.

Acetate esters, such as aspirin methylester, aspirin and resorcinol monoacetate, induced contractions of guinea-pig ileum. Their actions were selectively antagonized by atropine, but were not affected by ganglion blocking agents, conduction blockers, aging with cooling, anoxia or antihistaminics. On the other hand, N-acetates, such as acetanilide and p-acetaminophenol, and no contractile action on the ileum. These acetate esters thus seemed to have a cholinergic action, and not a direct action on muscle or other known specific receptors for endogenous active substances. The contractions induced by the acetate esters were selectively potentiated by low concentrations of choline, whereas those induced by acetylcholine, nicotine, 5-hydroxytryptamine and histamine were not. However, N-acetates did not induce the contractions even in the presence of choline. Organophosphorus cholinesterase inhibitors, such as diisopropyl fluorophosphate and paraoxon, selectively and irreversibly inhibited the actions of aspirin and N,O-diacetyl-p-aminophenol with or without choline. From these results, it is concluded that the acetate esters with or without choline act through the cholinergic system. However, their actions cannot be explained in terms of known mechanisms, such as acetylcholine release, cholinesterase inhibition or a direct muscarinic action. Therefore, the acetate esters, including phenyl acetate which was supposed to be a releaser of acetylcholine, seem to have a hitherto undescribed type of cholinergic action whose mechanism is unknown. It seems that organophosphate-sensitive esterase(s) in the preparation may be essential for initiation of the actions of the acetate esters with or without choline, but the mechanism of the effect of choline is unknown.

Acetates

Effects of methylxanthines and imidazole on the contractions of guinea-pig ileum induced by transmural stimulation.

Methylxanthines (10(-5) to 10(-3)M) were found to increase the amplitude of contractions of guinea-pig ileum induced by transmural stimulation but to inhibit those induced by acetylcholine or histamine. The order of the abilities of methylxanthines to augment the contractile responses was theobromine greater than caffeine greater than theophylline. When the contractions were completely suppressed by reduction of the calcium content in the medium or by addition of cyclic AMP, methylxanthines restored the responses effectively, just as does addition of calcium. Methylxanthines also accelerated the release of acetylcholine from the ileum associated with stimulation. Imidazole (3 X 10(-5) to 10(-3) M) had an essentially similar effect to methylxanthines in potentiating the contractile responses and in augmenting the release of acetylcholine. The present results indicate that the potentiating effects of methylxanthines and imidazole are due to an action on the nerve terminals, not on the postsynaptic membranes or contractile elements. Therefore, it si concluded that theit potentiating actions are due to facilitation of the movement of calcium in the nerve terminals on excitation, resulting in increased release of acetylcholine, and are not due to the effect of cyclic AMP formed as a result of their inhibitory actions on phosphodiesterase.

Animals