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This study in the pithed rabbit with electrically stimulated sympathetic outflow (spinal region, T-8; 3 Hz) was conducted to determine the contribution of the renin-angiotensin system to noradrenaline release in vivo. The rate of noradrenaline release (spillover) into the plasma was determined from the endogenous plasma noradrenaline level and the simultaneously determined noradrenaline plasma clearance. In the pithed rabbit, infusion of angiotensin II (0.1 μg/kg/min i.v.) failed to increase the noradrenaline release rate and only slightly increased blood pressure. On the other hand, the angiotensin-converting enzyme inhibitor captopril (1 mg/kg i.v.) decreased both blood pressure and the noradrenaline release rate. Bilateral nephrectomy was performed to reduce endogenous angiotensin II formation; and in this case, infusion of angiotensin II markedly increased the noradrenaline release rate and blood pressure, whereas captopril had no effect on either parameter. These results suggest that angiotensin II modulates noradrenaline release in vivo through activation of facilitatory prejunctional angiotensin II receptors, and that in the pithed rabbit these receptors are probably maximally activated by endogenously synthesized angiotensin II. The actions of angiotensin II on noradrenaline release open the possibility that increases in blood pressure in the pithed rabbit—by decreasing renin release via intra-renal baroreceptors and hence decreasing angiotensin II formation—may lead to decreased noradrenaline release. This was investigated using phenylephrine (6 μg/kg/min i.v.), a selective α1-adrenoceptor agonist, and adrenaline (1 μg/kg/min i.v.), an α1/α2-agonist. Both drugs increased blood pressure and decreased the noradrenaline release rate. After bilateral nephrectomy, the inhibitory effect of phenylephrine on noradrenaline release was abolished, whereas that of adrenaline was maintained. The release-inhibiting effect of adrenaline was blocked by the α2-selective antagonist yohimbine (1 mg/kg + 0.2 mg/kg/h i.v.). These results suggest that adrenaline directly activates inhibitory presynaptic α2-adrenoceptors at sympathetic terminal axons. In contrast, and in agreement with the initial hypothesis, the release-inhibiting effect of phenylephrine is indirect, requires the kidney, and probably involves suppression of renin secretion and less activation of facilitatory presynaptic angiotensin II receptors.
Majewski et al. (1984) studied this question.