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An increase in a circulating inhibitor of Na+,K+-dependent ATPase: a possible link between salt intake and the development of essential hypertension.

作者信息

MacGregor G A, Fenton S, Alaghband-Zadeh J, Markandu N D, Roulston J E, de Wardener H E

出版信息

Clin Sci (Lond). 1981 Dec;61 Suppl 7:17s-20s. doi: 10.1042/cs061017s.

DOI:10.1042/cs061017s
PMID:6274566
Abstract
  1. The plasma's ability to stimulate guinea-pig renal glucose 6-phosphate dehydrogenase (G6PD) in vitro was measured by a cytochemical technique in 23 normotensive subjects and 19 patients with hypertension, all of whom were studied on their normal sodium intake. The ability of plasma to stimulate renal G6PD was significantly (P less than 0.001) increased in the hypertensive patients (mean 195 +/- 52 units/ml) compared with the normotensive subjects (mean 22.2 +/- 5.8 units/ml). In all 42 individuals, there was a significant correlation between diastolic pressure and the ability of plasma to stimulate G6PD (r = 0.69 P less than 0.001). 2. The ability of plasma to stimulate G6PD was greatest in the hypertensive patients with values of plasma renin activity below the normal range. In the normotensive subjects the ability of plasma to stimulate G6PD was significantly greater in the older subjects. 3. As the ability of plasma to stimulate G6PD reflects its ability to inhibit Na+,K+-dependent ATPase, these results suggest that patients with essential hypertension have an increase in a circulating inhibitor of Na+,K+-ATPase. The results support the hypothesis that a rise in a circulating sodium transport inhibitor may, in part, be responsible for the rise in blood pressure in essential hypertension, and may form the link between salt intake, abnormalities of sodium transport and a rise in blood pressure.
摘要

相似文献

1
An increase in a circulating inhibitor of Na+,K+-dependent ATPase: a possible link between salt intake and the development of essential hypertension.
Clin Sci (Lond). 1981 Dec;61 Suppl 7:17s-20s. doi: 10.1042/cs061017s.
2
Evidence for a raised concentration of a circulating sodium transport inhibitor in essential hypertension.原发性高血压中循环钠转运抑制剂浓度升高的证据。
Br Med J (Clin Res Ed). 1981 Nov 21;283(6303):1355-7. doi: 10.1136/bmj.283.6303.1355.
3
Cytochemically detectable glucose-6-phosphate dehydrogenase-stimulating/Na-K-ATPase-inhibiting activity of plasma and hypothalamus in reduced renal mass hypertension.
Am J Hypertens. 1991 Apr;4(4 Pt 1):315-20. doi: 10.1093/ajh/4.4.315.
4
The relation of the natriuretic hormone to essential hypertension.利钠激素与原发性高血压的关系。
Postgrad Med J. 1983;59 Suppl 2:74-7.
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Na-K-ATPase-inhibiting and glucose-6-phosphate dehydrogenase-stimulating activity of plasma and hypothalamus of the Okamoto spontaneously hypertensive rat.
J Endocrinol. 1986 Jan;108(1):69-73. doi: 10.1677/joe.0.1080069.
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Evidence that the hypothalamus may be a source of a circulating Na+-K+-ATPase inhibitor.
J Endocrinol. 1983 Aug;98(2):221-6. doi: 10.1677/joe.0.0980221.
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Cytochemically assayable Na+,K+-ATPase inhibition by Milan hypertensive rat plasma.
Hypertension. 1987 May;9(5):498-503. doi: 10.1161/01.hyp.9.5.498.
8
[Cytochemical demonstration of an endogenous inhibitor of Na-K ATPase and its relationship to familial arterial hypertension].[钠钾ATP酶内源性抑制剂的细胞化学证明及其与家族性动脉高血压的关系]
Nephrologie. 1987;8(1):3-6.
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Ouabainlike Na+,K+-ATPase inhibitor in the plasma of normotensive and hypertensive humans and rats.
Hypertension. 1987 Nov;10(5 Pt 2):I52-6. doi: 10.1161/01.hyp.10.5_pt_2.i52.
10
Is a circulating sodium transport inhibitor involved in the pathogenesis of essential hypertension?
Clin Exp Hypertens (1978). 1981;3(4):815-30. doi: 10.3109/10641968109033705.

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