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Braz. j. med. biol. res ; 42(1): 105-113, Jan. 2009. graf
Article Dans Anglais | LILACS | ID: lil-505425

Résumé

Besides other physiological functions, adenosine-5'-triphosphate (ATP) is also a neurotransmitter that acts on purinergic receptors. In spite of the presence of purinergic receptors in forebrain areas involved with fluid-electrolyte balance, the effect of ATP on water intake has not been investigated. Therefore, we studied the effects of intracerebroventricular (icv) injections of ATP (100, 200 and 300 nmol/µL) alone or combined with DPCPX or PPADS (P1 and P2 purinergic antagonists, respectively, 25 nmol/µL) on water intake induced by water deprivation. In addition, the effect of icv ATP was also tested on water intake induced by intragastric load of 12 percent NaCl (2 mL/rat), acute treatment with the diuretic/natriuretic furosemide (20 mg/kg), icv angiotensin II (50 ng/µL) or icv carbachol (a cholinergic agonist, 4 nmol/µL), on sodium depletion-induced 1.8 percent NaCl intake, and on food intake induced by food deprivation. Male Holtzman rats (280-320 g, N = 7-11) had cannulas implanted into the lateral ventricle. Icv ATP (300 nmol/µL) reduced water intake induced by water deprivation (13.1 ± 1.9 vs saline: 19.0 ± 1.4 mL/2 h; P < 0.05), an effect blocked by pre-treatment with PPADS, but not DPCPX. Icv ATP also reduced water intake induced by NaCl intragastric load (5.6 ± 0.9 vs saline: 10.3 ± 1.4 mL/2 h; P < 0.05), acute furosemide treatment (0.5 ± 0.2 vs saline: 2.3 ± 0.6 mL/15 min; P < 0.05), and icv angiotensin II (2.2 ± 0.8 vs saline: 10.4 ± 2.0 mL/2 h; P < 0.05), without changing icv carbachol-induced water intake, sodium depletion-induced 1.8 percent NaCl intake and food deprivation-induced food intake. These data suggest that central ATP, acting on purinergic P2 receptors, reduces water intake induced by intracellular and extracellular dehydration.


Sujets)
Animaux , Mâle , Rats , Adénosine triphosphate/administration et posologie , Consommation de boisson/effets des médicaments et des substances chimiques , Phosphate de pyridoxal/analogues et dérivés , Privation hydrique/physiologie , Xanthines/administration et posologie , Adénosine triphosphate/pharmacologie , Consommation de boisson/physiologie , Consommation alimentaire/effets des médicaments et des substances chimiques , Consommation alimentaire/physiologie , Injections ventriculaires , Phosphate de pyridoxal/administration et posologie , Phosphate de pyridoxal/pharmacologie , Rat Sprague-Dawley , Récepteurs purinergiques P1/agonistes , Récepteurs purinergiques P1/antagonistes et inhibiteurs , /agonistes , /antagonistes et inhibiteurs , Xanthines/pharmacologie
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