Literature DB >> 6846537

Water removal and solute additions determining increases in renal medullary osmolality.

B Schmidt-Nielsen, B Graves, J Roth.   

Abstract

Osmolality and solute concentrations of the mammalian renal medulla increase and decrease with changing urine osmolality. These changes are brought about by addition or removal of solute or water to or from the renal medullary tissue. In Munich-Wistar rats and Syrian hamsters, males and females, actual amounts of and the various solutes involved in these changes were determined. Kidneys were removed from animals killed in different stages of water diuresis and antidiuresis. The renal medulla was analyzed by a new method that permits determination of water and solutes on the same piece of tissue. Removal of water and addition of urea were the two most important factors in raising inner medullary osmolality. Papillary water content was inversely related to the papillary osmolality and was 50% lower in extreme antidiuresis compared with water diuresis. Rats had higher papillary water content than hamsters. In the outer medulla, water removal was significant in the hamsters but not in the rats. Addition of urea to the papillary tissue exceeded the osmotic equivalent of NaCl by a factor of 2.8 in both rats and hamsters. Females of both species showed greater changes than males in amounts of urea in the inner medulla.

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Year:  1983        PMID: 6846537     DOI: 10.1152/ajprenal.1983.244.5.F472

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  18 in total

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4.  On the renal inner medullary concentration of sodium.

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5.  Osmoregulation of ceroid neuronal lipofuscinosis type 3 in the renal medulla.

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6.  Thienoquinolins exert diuresis by strongly inhibiting UT-A urea transporters.

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7.  ILDR1 is important for paracellular water transport and urine concentration mechanism.

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8.  Body mass-specific Na+-K+-ATPase activity in the medullary thick ascending limb: implications for species-dependent urine concentrating mechanisms.

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9.  Renal phenotype of UT-A urea transporter knockout mice.

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10.  TRPV4 mediates hypotonicity-induced ATP release by the thick ascending limb.

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Journal:  Am J Physiol Renal Physiol       Date:  2008-08-06
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