Study summary · research use only
Brain and kidney GHS-R1a underexpression is associated with changes in renal function and hemodynamics during neurogenic hypertension
Plain-language summary
Paraphrased from the published abstract below — not a verdict on whether anything works.
In this rat study using Wistar (WT) and spontaneously hypertensive rats (SHR), researchers examined the role of the growth hormone secretagogue receptor subtype 1a (GHS-R1a) in renal function and hemodynamics during neurogenic hypertension. Rats in metabolic cages received vehicle, ghrelin, the GHS-R1a antagonist PF04628935, ghrelin plus PF04628935, or the GHS-R1a agonist MK-677; renal vasomotion, hemodynamics, and GHS-R1a protein levels in brain, aorta, renal artery, and renal cortex/medulla were assessed. Ghrelin and MK-677 altered osmolarity in SHR in a GHS-R1a-dependent manner; GHS-R1a antagonism reduced urinary sodium, potassium, and creatinine clearance in WT but not SHR; and ghrelin reduced arterial pressure and increased renal artery conductance in SHR. GHS-R1a protein levels were lower in kidney and brain of SHR versus WT.
Abstract
Ghrelin is a peptide hormone whose effects are mediated by the growth hormone secretagogue receptor subtype 1a (GHS-R1a), mainly expressed in the brain but also in kidneys. The hypothesis herein raised is that GHS-R1a would be player in the renal contribution to the neurogenic hypertension pathophysiology. To investigate GHS-R1a role on renal function and hemodynamics, we used Wistar (WT) and spontaneously hypertensive rats (SHR). First, we assessed the effect of systemically injected vehicle, ghrelin, GHS-R1a antagonist PF04628935, ghrelin plus PF04628935 or GHS-R1a synthetic agonist MK-677 in WT and SHR rats housed in metabolic cages (24 h). Blood and urine samples were also analyzed. Then, we assessed the GHS-R1a contribution to the control of renal vasomotion and hemodynamics in WT and SHR. Finally, we assessed the GHS-R1a levels in brain areas, aorta, renal artery, renal cortex and medulla of WT and SHR rats using western blot. We found that ghrelin and MK-677 changed osmolarity parameters of SHR, in a GHS-R1a-dependent manner. GHS-R1a antagonism reduced the urinary Na+ and K+ and creatinine clearance in WT but not in SHR. Ghrelin reduced arterial pressure and increased renal artery conductance in SHR. GHS-R1a protein levels were decreased in the kidney and brain areas of SHR when compared to WT. Therefore, GHS-R1a role in the control of renal function and hemodynamics during neurogenic hypertension seem to be different, and this may be related to brain and kidney GHS-R1a downregulation.
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