Inactive renin in human plasma.
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Biomedical subjects
Publications and source records attributed to M Tree.
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Athough in general, measurement of renal vein renin appears to give a good prediction as to the subsequent response to surgery, its main value lies in its ability to reflect changes in renal plasma flow; true changes in renin secretion rate being much more difficult to detect. Although it is a little early to say how much information can be derived from saralasin infusions, caution must be exercised in necessarily assuming that the test accurately reflects subsequent surgical response.
Angiotensin II, infused intravenously, increased plasma aldosterone concentration in two of six anephric subjects taking their usual dietary quantities of sodium. After 3 days of dietary sodium restriction and weight-reducing hemodialysis, the aldosterone response to infused angiotensin II in the two previously reactive subjects was enhanced, while the four previously unreactive subjects also showed a rise in plasma aldosterone. Before and after sodium depletion the anephric subjects were less responsive than normal subjects. Even when sodium-depleted, the anephrics showed no further rise in plasma aldosterone when arterial plasma angiotensin II was increased by infusion to concentrations greater than 50-199pg/ml, in contrast to sodium-depleted normals who show progressive aldosterone responses with plasma angiotensin II concentrations up to at least 370pg/ml. Before the infusion of angiotensin II, arterial plasma renin, angiotensin II, and aldosterone were detectable in the anephrics, but were unchanged by dietary sodium restriction or weight-reducting hemodialysis. Sodium depletion caused significant falls in weight, plasma sodium, and blood pressure, but no changes in plasma potassium or cortisol. Increases in blood pressure in relation to increments of arterial plasma angiotensin II were unaffected by sodium depletion, as might be expected in the absence of a rise in endogenous angiotensin II.
The frequency of underlying renal or renal artery disease, and the incidence of vascular complications were reviewed in a series of 136 cases of primary hyperaldosteronism. This was in order to investigate the possible existence of 'tertiary' hyperaldosteronism, and to examine the commonly held view that primary hyperaldosteronism is a relatively benign form of hypertension. Ten cases (7-4 per cent) had evidence of renal artery stenosis and eleven (8-1 per cent) parenchymatous renal disease. In comparison with the reported frequency in large general series of hypertensives, these data show no evidence of an excess of underlying renal disease. It is unlikely, therefore, that autonomous aldosterone secreting adenomata occur commonly as a consequence of prolonged secondary hyperaldosteronism. Four cases (2-9 per cent) had evidence of the malignant-phase of hypertension, and over a mean observation time of 5-9 years, 31 cases (22-8 per cent) developed 39 vascular complications. It appears, therefore, that vascular complications are not rare in primary hyperaldosteronism, and early and effective treatment is thus necessary.
A study of the frequency distribution of plasma-renin concentration in 81 patients with essential hypertension produced no evidence of a distinct sub-population with low renin levels. An arbitrary dividing line was used, therefore, to define low-renin hypertension (36% of patinets). Patients in this group were older than those with normal renin levels, and there was a significant negative correlation between renin and age among all patients. Low-renin hypertension was not characterized by increased exchangeable sodium, but exchaneable postassium was significantly lower than in patients with normal plasma-renin. This difference became insignificant when five patients in the low-renin group with persistent hypokalaemia were excluded. It is concluded that low-renin hypertension does not represent a separate diagnostic entity but that plasma-renin falls with age in essential hypertension.
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1. Intravenous frusemide produced in normal subjects a prompt rise of plasma renin concentration which correlated with urinary sodium. 2. The renin response to frusemide was suppressed in patients with primary hyperaldosteronism. 3. In patients with low-renin hypertension and normal renin essential hypertension, the renin response to frusemide was similarly suppressed. 4. Suppression of the renin response to frusemide is therefore a feature of hypertension not confined to patients with primary hyperaldosteronism and low-renin hypertension. 5. Thus low-renin hypertension does not appear to constitute a distinct diagnostic entity. 6. It is suggested that suppression of the renin response is part of a long-term renal adaptation to high blood pressure.
Rectal potential difference (pd) is directly related to the plasma aldosterone concentration, and rises when aldosterone is stimulated by sodium deprivation. However, when the measurement of rectal pd was tested at a screening test for hyperaldosteronism in 19 hypertensive subjects, four of the eight with primary hyperaldosteronism had a normal pd and four of the eight without aldosterone excess had an abnormally raised potential difference. The technique cannot therefore be recommended as a routine screening test for hyperaldosteronism. No relationship was found between rectal pd and hypertension associated with excess of deoxycorticosterone. Rectal pd rises in response to the mineralocorticoid-like agent carbenoxolone.
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Plasma concentrations of angiotensin II, renin, renin-substrate and aldosterone were measured in cases of acute renal failure. Angiotensin II, and renin levels were abnormally high on at least one occasion in nearly all patients. Mean angiotensin II and renin levels were highest in the first ten days of the disease. There was a highly significant positive correlation between concurrent estimations of renin and angiotensin II. Renin-substrate was also frequently elevated, but the correlations with renin and angiotensin II were not statistically significant. Despite the frequently marked elevation of plasma angiotensin II, only 2 of 17 measurements of plasma aldosterone were abnormally high. There was no significant relationship between aldosterone and plasma concentrations of angiotensin II, renin, sodium or potassium. The data are discussed in relation to current hypotheses implicating renin and angiotensin in the pathogenesis of acute circulatory renal failure.
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