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Biomedical subjects

I Marshall

Publications and source records attributed to I Marshall.

At least 109 records · Page 6Linked to original sources

Stimulation-evoked release of [3H]-noradrenaline by 1, 10 or 100 pulses and its modification through presynaptic alpha 2-adrenoceptors.

1 Mice isolated vasa deferentia were loaded with 1-[7,8-3H]-noradrenaline and subsequently field stimulated with 1, 10 or 100 pulses (2 ms pulse width, 1 Hz). The tritium overflow was separated into [3H]-noradrenaline and its 3H-metabolites. 2 The resting release of tritium contained about 7% [3H]-noradrenaline, 33% [3H]-3, 4-dihydroxyphenylglycol ([3H]-DOPEG) and 60% 3H-non-catechols with usually less than 1% [3H]-dihydroxymandelic acid ([3H]-DOMA). The proportion of the tritium as [3H]-noradrenaline increased with stimulation train length to 35% with 100 pulses; this increase in [3H]-noradrenaline was associated with falls in [3H]-DOPEG and 3H-non-catechols. Generally the proportional increase in [3H]-noradrenaline on stimulation was about 10 x total tritium when compared with the resting release. 3 The fractional release of [3H]-noradrenaline per pulse was independent of train length, averaging about 6 x 10(-6). This was reduced by the alpha 2-adrenoceptor agonist clonidine (0.3 - 30 nM) with an IC50 of 4.8 nM (10 pulses at 1 Hz). 4 The alpha 2-adrenoceptor antagonist, yohimbine (10 - 100 nM), did not alter the fractional release of [3H]-noradrenaline elicited by 1 pulse. The antagonist did not change the amount or composition of the resting or evoked tritium overflow. However, yohimbine (1 - 100 nM) increased the fractional release of [3H]-noradrenaline per pulse for trains of 10 or 100 pulses (1 Hz) in a concentration-dependent fashion. An increase above controls was significant only with 100 pulses and yohimbine, 30 nM. 5 The results show that the release of noradrenaline during trains of pulses in the mouse vas deferens can be regulated through presynaptic alpha 2-adrenoceptors. There was no evidence of inhibition by noradrenaline of its own release following a single pulse.

Animals↗

Calcium ions, morphine tolerance and noradrenergic transmission in the mouse vas deferens.

The response of the isolated vas deferens of the mouse to electrical stimulation is inhibited by morphine and levorphanol via an opiate receptor, the inhibition decreasing with increasing stimulation frequency (0.2-16 Hz). Tolerance to the locomotor stimulant effect of morphine was induced over 48 h using a slow release preparation. Vasa from mice similarly treated with the slow release preparation showed a shift to the right of the morphine and levorphanol twitch inhibition curves. The reduction in the fractional release of [3H]noradrenaline by morphine and levorphanol was less in vasa from morphine-pretreated mice. Altering the Krebs solution by reducing the Ca2+ or Na+ or adding Mg2+ increased the effect of opiate agonists in vasa from naive and morphine-tolerant mice. Therefore, tolerance to morphine has not changed the ability of these ions to modulate opiate responses.

Animals↗

alpha-Adrenoceptors in the mouse vas deferens and their effects on its response to electrical stimulation.

1 Noradrenaline (ID50, 0.75 micrometer) and clonidine (ID50, 2.8 nM) produced a dose-related inhibition of the twitch response of the isolated vas deferens of the mouse to electrical stimulation, their effectiveness decreasing as frequency of stimulation increased from 0.2 to 16 hertz. 2 Phenylephrine (1.0--2.0 micrometer) produced a dose-related contraction of the mouse isolated vas deferens and potentiated the responses to field stimulation. 3 Yohimbine (10 nM) antagonized the inhibitory effects of noradrenaline and clonidine, but had no effect on the motor activity of phenylephrine. At a concentration of 128 nM yohimbine potentiated the twitch response by 110% at 1 Hz, but its effectiveness decreased with increasing frequency of stimulation up to 16 hertz. 4 Thymoxamine (0.3 micrometer) antagonized the effects of phenylephrine, but not those of clonidine. 5 From a consideration of the known characteristics of pre- and postsynaptic alpha-adrenoceptors, it is concluded that the inhibitory effect of noradrenaline is produced by stimulation of the former and the effects of phenylephrine by stimulation of the latter.

Adrenergic alpha-Agonists↗

The effects of release and depletion of endogenous noradrenaline on the transmission of impulses in the mouse vas deferens.

1 The effects of endogenous noradrenaline released by tyramine and the influence of depletion of the tissue noradrenaline with reserpine and/or alpha-methyl-p-tyrosine on the twitch responses of the field-stimulated mouse vas deferens have been studied.2 Tyramine (10-40 muM) inhibited the twitch responses to field stimulation and failed to produce a contraction. The inhibition decreased as the rate of stimulation increased.3 The inhibition produced by tyramine was antagonized by cocaine (10 muM) and by yohimbine (10 nM), which indicated that it was produced by released noradrenaline acting on presynaptic alpha-adrenoceptors.4 Depletion of the tissue noradrenaline by 39% by blockade of the synthesis of noradrenaline with alpha-methyl-p-tyrosine, was without effect on the twitch response but it reduced the inhibitory effect of tyramine.5 Depletion of the tissue noradrenaline by 96.5% with reserpine alone and by 99.4%, with a combination of reserpine and alpha-methyl-p-tyrosine, reduced the twitch responses by approximately 66% and virtually abolished the inhibition produced by tyramine. It also increased the rate of decline of the responses when the tissue was continuously stimulated. The remaining twitch was not antagonized by phenoxybenzamine (15 muM).6 Residual twitches were bigger in tissues depleted by 99.4% than in those depleted by only 96.5%. This difference was eliminated in the presence of yohimbine (128 nM).7 It is concluded that inhibition of the twitch responses by tyramine is produced by stimulation of presynaptic alpha-adrenoceptors and that the twitch response is associated with stimulation of the sympathetic neurone, but that it is not mediated by postsynaptic alpha-adrenoceptors.

Animals↗