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1.
Nat Genet ; 38(10): 1124-32, 2006 Oct.
Article in English | MEDLINE | ID: mdl-16964266

ABSTRACT

The mechanisms that govern homeostasis of complex systems have been elusive but can be illuminated by mutations that disrupt system behavior. Mutations in the gene encoding the kinase WNK4 cause pseudohypoaldosteronism type II (PHAII), a syndrome featuring hypertension and hyperkalemia. We show that physiology in mice transgenic for genomic segments harboring wild-type (TgWnk4(WT)) or PHAII mutant (TgWnk4(PHAII)) Wnk4 is changed in opposite directions: TgWnk4(PHAII) mice have higher blood pressure, hyperkalemia, hypercalciuria and marked hyperplasia of the distal convoluted tubule (DCT), whereas the opposite is true in TgWnk4(WT) mice. Genetic deficiency for the Na-Cl cotransporter of the DCT (NCC) reverses phenotypes seen in TgWnk4(PHAII) mice, demonstrating that the effects of the PHAII mutation are due to altered NCC activity. These findings establish that Wnk4 is a molecular switch that regulates the balance between NaCl reabsorption and K+ secretion by altering the mass and function of the DCT through its effect on NCC.


Subject(s)
Blood Pressure/physiology , Kidney Tubules, Distal/metabolism , Potassium/metabolism , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Animals , Chromosomes, Artificial, Bacterial , Electrolytes/blood , Female , Homeostasis , Humans , Kidney Tubules, Distal/diagnostic imaging , Mice , Mice, Transgenic , Mutation , Pseudohypoaldosteronism/genetics , Sodium Chloride Symporters/genetics , Sodium Chloride Symporters/metabolism , Ultrasonography
2.
J Exp Biol ; 206(Pt 22): 4057-65, 2003 Nov.
Article in English | MEDLINE | ID: mdl-14555746

ABSTRACT

Hypoxia-induced shortening of cardiac action potential duration (APD) has been attributed in mammalian hearts to the activation of ATP-sensitive potassium (KATP) channels. Since KATP channels are also present at high densities in the hearts of vertebrate ectotherms, speculation arises as to their function during periods of reduced environmental oxygen. The purpose of the present study was to determine whether nitric oxide (NO) plays a role in cardiac sarcolemmal KATP channel activation during hypoxia in a species with a high degree of tolerance to low oxygen environments: the goldfish (Carassius auratus). Conventional intracellular and patch-clamp recording techniques were used to record responses from excised ventricles or isolated ventricular myocytes and inside-out patches, respectively, from fish acclimated at 21 degrees C. During moderate, substrate-free hypoxia (6.1 +/- 0.2 kPa), ventricular APD was significantly shortened at 50% and 90% of full repolarization, a response that was reversible upon reoxygenation and blocked by the KATP channel antagonist BDM. Under normoxic conditions, APD was also reduced in the presence of the NO-donor SNAP (100 micromol l(-1)). In cell-attached membrane patches, sarcolemmal KATP channel activity was enhanced after 10 min hypoxia, an effect that was reduced or eliminated by simultaneous exposure to BDM, to the guanylate cyclase inhibitor ODQ or to the NO synthase inhibitor L-NAME. In cell-free patches, KATP channel activity was abolished by 2 mmol l(-1) ATP but increased by SNAP; the cGMP analog 8-Br-cGMP (200 micromol l(-1)) also enhanced activity, an effect that was eliminated by BDM. Our data indicate that NO synthesized in cardiac myocytes could enhance sarcolemmal KATP channel activation during moderate hypoxia in goldfish. This response may serve a cardioprotective role by helping to conserve ATP or by reducing intracellular Ca2+ accumulation.


Subject(s)
Diacetyl/analogs & derivatives , Goldfish/physiology , Hypoxia/physiopathology , Myocardium/metabolism , Nitric Oxide/pharmacology , Penicillamine/analogs & derivatives , Potassium Channels/drug effects , Action Potentials/drug effects , Analysis of Variance , Animals , Diacetyl/pharmacology , Goldfish/metabolism , NG-Nitroarginine Methyl Ester , Oxadiazoles , Patch-Clamp Techniques , Penicillamine/pharmacology , Quinoxalines , Sarcolemma/metabolism
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