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February 11, 2010Journal of Applied Physiology3 citations

The impact of the endothelin type A receptor on regional endothelin-1 turnover, in particular renal endothelin-1 release, in humans

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EREric RullmanTGThomas GustafssonGAG. Ahlborg

Key Result

ETA receptor blockade with BQ-123 prior to big ET-1 infusion resulted in a threefold higher renal ET-1 release (P<0.001).

Structured PICO

Does ETA receptor blockade with BQ-123 alter regional endothelin-1 turnover and hemodynamics in healthy subjects?

P
Population
6 healthy subjects studied on two occasions with or without ETA receptor blockade to assess regional endothelin-1 turnover.
I
Intervention
Infusion of ETA receptor blocker BQ-123 for 40 min, followed by concomitant infusion of big ET-1
C
Comparator
Infusion of NaCl for 40 min, followed by concomitant infusion of big ET-1
O
Outcome
Regional endothelin-1 (ET-1) turnover (including renal ET-1 release) and hemodynamics (heart rate, cardiac output, blood pressure, vascular resistance)surrogate

ETA receptor-mediated negative feedback regulates circulating ET-1 levels, with the kidneys playing a major role in this mechanism.

Main Result

Effect estimate: threefold higher

p-value: p=<0.001

Abstract

The endothelin type A (ETA) receptor was studied in six healthy subjects on two occasions with or without an ETA receptor (BQ-123) blockade. At 40 min of either BQ-123 or NaCl infusion, a concomitant infusion of the endothelin-1 (ET-1) precursor, big ET-1, was initiated to augment ET-1 formation. Blood samples were taken from catheters in a peripheral artery, the renal and femoral veins, and the pulmonary artery. Forty minutes of infusion with BQ-123 alone increased heart rate (P<0.001) and cardiac output (CO; P<0.01) and depressed mean arterial blood pressure (P<0.001) and systemic vascular resistance (SVR; P<0.01). During infusion of big ET-1 alone, CO, stroke volume, and renal blood flow decreased (P<0.01), whereas SVR and pulmonary and renal vascular resistance increased (P<0.05). These responses to big ET-1 were abolished or diminished by BQ-123. Renal ET-1 release was threefold higher when big ET-1 infusion was preceded by BQ-123 infusion (P<0.001). Arterial ET-1 concentrations rose to similar levels after big ET-1 infusion (P<0.01) in both trials because of elevated concomitant pulmonary uptake (P<0.05) after ETA blockade. Although there was no net ET-1 leg exchange, leg ET-1 turnover was higher after big ET-1 was preceded by BQ-123. Gene expression of endothelin-converting enzyme 1 and ET-1 in skeletal muscle remained unaltered on both occasions. Our data demonstrate that the level of circulating ET-1 is regulated by ETA receptor-mediated negative feedback. This mechanism seems to be coupled to increased conversion of big ET-1 and is most potent in the kidneys. This emphasizes the important physiological role of ETA receptors in the kidneys, and the lung seems to be mainly a clearing organ for ET-1.

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Cite This Study

Rullman et al. (2010) studied Healthy subjects (n=6). ETA receptor blockade (BQ-123) vs. NaCl infusion was evaluated on Renal ET-1 release (threefold higher, p=<0.001). ETA receptor blockade with BQ-123 prior to big ET-1 infusion resulted in a threefold higher renal ET-1 release (P<0.001).

synapsesocial.com/papers/6a76f66cd3a6aa87c6bd7df3https://doi.org/10.1152/japplphysiol.00881.2009
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