Urinary concentrating defect in mice with selective deletion of phloretin-sensitive urea transporters in the renal collecting duct
- 3 May 2004
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 101 (19) , 7469-7474
- https://doi.org/10.1073/pnas.0401704101
Abstract
To investigate the role of inner medullary collecting duct (IMCD) urea transporters in the renal concentrating mechanism, we deleted 3 kb of the UT-A urea transporter gene containing a single 140-bp exon (exon 10). Deletion of this segment selectively disrupted expression of the two known IMCD isoforms of UT-A, namely UT-A1 and UT-A3, producing UT-A1/3(-/-) mice. In isolated perfused IMCDs from UT-A1/3(-/-) mice, there was a complete absence of phloretin-sensitive or vasopressin-stimulated urea transport. On a normal protein intake (20% protein diet), UT-A1/3(-/-) mice had significantly greater fluid consumption and urine flow and a reduced maximal urinary osmolality relative to wild-type controls. These differences in urinary concentrating capacity were nearly eliminated when urea excretion was decreased by dietary protein restriction (4% by weight), consistent with the 1958 Berliner hypothesis stating that the chief role of IMCD urea transport in the concentrating mechanism is the prevention of urea-induced osmotic diuresis. Analysis of inner medullary tissue after water restriction revealed marked depletion of urea in UT-A1/3(-/-) mice, confirming the concept that phloretin-sensitive IMCD urea transporters play a central role in medullary urea accumulation. However, there were no significant differences in mean inner medullary Na(+) or Cl(-) concentrations between UT-A1/3(-/-) mice and wild-type controls, indicating that the processes that concentrate NaCl were intact. Thus, these results do not corroborate the predictions of passive medullary concentrating models stating that NaCl accumulation in the inner medulla depends on rapid vasopressin-regulated urea transport across the IMCD epithelium.Keywords
This publication has 30 references indexed in Scilit:
- Mammalian Urea TransportersAnnual Review of Physiology, 2003
- Characterization of mouse urea transporters UT-A1 and UT-A2American Journal of Physiology-Renal Physiology, 2002
- Urea-selective Concentrating Defect in Transgenic Mice Lacking Urea Transporter UT-BJournal of Biological Chemistry, 2002
- Cloning and characterization of the vasopressin-regulated urea transporterNature, 1993
- Urea permeability of mammalian inner medullary collecting duct system and papillary surface epithelium.Journal of Clinical Investigation, 1987
- Sodium chloride, urea, and water transport in the thin ascending limb of Henle. Generation of osmotic gradients by passive diffusion of solutes.Journal of Clinical Investigation, 1974
- Sodium Chloride and Water Transport in the Medullary Thick Ascending Limb of Henle. EVIDENCE FOR ACTIVE CHLORIDE TRANSPORTJournal of Clinical Investigation, 1973
- Countercurrent multiplication system without active transport in inner medullaKidney International, 1972
- Concentration of urine in a central core model of the renal counterflow systemKidney International, 1972
- Aktiver Salztransport als möglicher (und wahrscheinlicher) Einzeleffekt bei der Harnkonzentrierung in der NiereHelvetica Chimica Acta, 1959