antidiuretic effect
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2021 ◽  
Vol 12 ◽  
Author(s):  
Pierre-Emmanuel Girault-Sotias ◽  
Romain Gerbier ◽  
Adrien Flahault ◽  
Nadia de Mota ◽  
Catherine Llorens-Cortes

Apelin, a (neuro)vasoactive peptide, plays a prominent role in controlling body fluid homeostasis and cardiovascular functions. Experimental data performed in rodents have shown that apelin has an aquaretic effect via its central and renal actions. In the brain, apelin inhibits the phasic electrical activity of vasopressinergic neurons and the release of vasopressin from the posterior pituitary into the bloodstream and in the kidney, apelin regulates renal microcirculation and counteracts in the collecting duct, the antidiuretic effect of vasopressin occurring via the vasopressin receptor type 2. In humans and rodents, if plasma osmolality is increased by hypertonic saline infusion/water deprivation or decreased by water loading, plasma vasopressin and apelin are conversely regulated to maintain body fluid homeostasis. In patients with the syndrome of inappropriate antidiuresis, in which vasopressin hypersecretion leads to hyponatremia, the balance between apelin and vasopressin is significantly altered. In order to re-establish the correct balance, a metabolically stable apelin-17 analog, LIT01-196, was developed, to overcome the problem of the very short half-life (in the minute range) of apelin in vivo. In a rat experimental model of vasopressin-induced hyponatremia, subcutaneously (s.c.) administered LIT01-196 blocks the antidiuretic effect of vasopressin and the vasopressin-induced increase in urinary osmolality, and induces a progressive improvement in hyponatremia, suggesting that apelin receptor activation constitutes an original approach for hyponatremia treatment.


2021 ◽  
Vol 12 ◽  
Author(s):  
Serena Milano ◽  
Monica Carmosino ◽  
Andrea Gerbino ◽  
Ilenia Saponara ◽  
Dominga Lapi ◽  
...  

We previously showed that the beta-3 adrenergic receptor (BAR3) is expressed in most segments of the nephron where its agonism promotes a potent antidiuretic effect. We localized BAR3 in distal convoluted tubule (DCT) cells expressing the thiazide-sensitive sodium-chloride cotransporter (NCC). Aim of this study is to investigate the possible functional role of BAR3 on NCC modulation in DCT cells. Here, we found that, in mice, the knockout of BAR3 was paralleled by a significant attenuation of NCC phosphorylation, paralleled by reduced expression and activation of STE-20/SPS1-related proline-alanine-rich kinase (SPAK) and WNKs the main kinases involved in NCC activation. Conversely, in BAR1/2 knockout mice, we found reduced NCC abundance with no changes in the phosphorylation state of NCC. Moreover, selective BAR3 agonism promotes both SPAK and NCC activation in wild-type mouse kidney slices. In conclusion, our findings suggest a novel role for BAR3 in the regulation of NCC in DCT.


Author(s):  
Satish AM ◽  
Mohammed Sibgatullah ◽  
Lokraj Subedee ◽  
Shashi Kumar ◽  
Umme Salma ◽  
...  

2015 ◽  
Vol 29 (S1) ◽  
Author(s):  
Giuseppe Procino ◽  
Serena Milano ◽  
Massimo Dal Monte ◽  
Maria Nicoletti ◽  
Maria Mastrodonato ◽  
...  

2013 ◽  
Vol 112 (1) ◽  
pp. 131-136 ◽  
Author(s):  
Nozomu Watanabe ◽  
Hironobu Akino ◽  
Tetsuyuki Kurokawa ◽  
Minekatu Taga ◽  
Ryusei Yokokawa ◽  
...  

2013 ◽  
Vol 304 (3) ◽  
pp. F268-F278 ◽  
Author(s):  
Kristian Vinter Juul ◽  
Lars Erichsen ◽  
Gary L. Robertson

This study aimed to estimate the relationship between pharmacokinetics and the antidiuretic effect of desmopressin. In the investigator-blind, randomized, parallel group study, 5 dose groups and 1 placebo group, each consisting of 12 healthy, overhydrated, nonsmoking male subjects 18–55 yr of age were infused intravenously over 2 h with placebo or 30, 60, 125, 250, and 500 ng desmopressin in 50 ml of normal saline. Plasma desmopressin and urine osmolality rose by variable amounts during the infusions of 60, 125, 250, and 500 ng desmopressin. Plotting mean urine osmolality against the concurrent mean plasma desmopressin yielded a temporal delay between pharmacokinetic (PK) and -dynamic (PD) responses in all dose groups. Using simulation from the indirect-response model, assuming a constant (4 ng/ml) desmopressin concentration, this delay between PK and PD was estimated at 4 h (10th-90th percentile: 1.8–8.1). Within each group, however, there were large individual variations (2- to 10-fold) in the magnitude and duration of the antidiuretic effect. The antidiuretic effect of intravenous desmopressin in water-loaded healthy adults varies considerably due largely to factors other than individual differences in pharmacokinetics. The antidiuretic effect is time as well as dose dependent and may be self-amplifying. The most likely explanation for these findings is that the time required for a given level of plasma desmopressin to exert its maximum antidiuretic effect varies markedly from person to person due to individual differences in the kinetics of one or more of the intracellular mechanisms that promote the reabsorption of solute-free water by principal cells in renal collecting tubules.


2013 ◽  
Vol 440 (2) ◽  
pp. 154-160 ◽  
Author(s):  
Anna Giulia Balducci ◽  
Luca Ferraro ◽  
Fabrizio Bortolotti ◽  
Claudio Nastruzzi ◽  
Paolo Colombo ◽  
...  

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