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  • American Physiological Society  (2)
  • Kim, Soo Wan  (2)
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  • American Physiological Society  (2)
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  • 1
    Online Resource
    Online Resource
    American Physiological Society ; 2008
    In:  American Journal of Physiology-Renal Physiology Vol. 295, No. 2 ( 2008-08), p. F497-F506
    In: American Journal of Physiology-Renal Physiology, American Physiological Society, Vol. 295, No. 2 ( 2008-08), p. F497-F506
    Abstract: Urinary tract obstruction impairs renal function and is often associated with a urinary acidification defect caused by diminished net H + secretion and/or HCO 3 − reabsorption. To identify the molecular mechanisms of these defects, protein expression of key acid-base transporters were examined along the renal nephron and collecting duct of kidneys from rats subjected to 24-h bilateral ureteral obstruction (BUO), 4 days after release of BUO (BUO-R), or BUO-R rats with experimentally induced metabolic acidosis (BUO-A). Semiquantitative immunoblotting revealed that BUO caused a significant reduction in the expression of the type 3 Na + /H + exchanger (NHE3) in the cortex (21 ± 4%), electrogenic Na + /HCO 3 − cotransporter (NBC1; 71 ± 5%), type 1 bumetanide-sensitive Na + -K + -2Cl − cotransporter (NKCC2; 3 ± 1%), electroneutral Na + /HCO 3 − cotransporter (NBCn1; 46 ± 7%), and anion exchanger (pendrin; 87 ± 2%). The expression of H + -ATPase increased in the inner medullary collecting duct (152 ± 13%). These changes were confirmed by immunocytochemistry. In BUO-R rats, there was a persistent downregulation of all the acid-base transporters including H + -ATPase. Two days of NH 4 Cl loading reduced plasma pH and HCO 3 − levels in BUO-A rats. The results demonstrate that the expression of multiple renal acid-base transporters are markedly altered in response to BUO, which may be responsible for development of metabolic acidosis and contribute to the urinary acidification defect after release of the obstruction.
    Type of Medium: Online Resource
    ISSN: 1931-857X , 1522-1466
    Language: English
    Publisher: American Physiological Society
    Publication Date: 2008
    detail.hit.zdb_id: 1477287-5
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  • 2
    Online Resource
    Online Resource
    American Physiological Society ; 2010
    In:  American Journal of Physiology-Renal Physiology Vol. 298, No. 4 ( 2010-04), p. F941-F950
    In: American Journal of Physiology-Renal Physiology, American Physiological Society, Vol. 298, No. 4 ( 2010-04), p. F941-F950
    Abstract: Previously we demonstrated that ANG II receptor (AT1R) blockade attenuates V2 receptor (V2R), AQP2, and pS256-AQP2 downregulation in the postobstructed kidney and partially reverses obstruction-induced inhibition of cAMP generation and cyclooxygenase 2 (COX-2) induction. Therefore, we speculated whether the effects of AT1R blockade on V2R and the vasopressin-regulated pathway are attributable to attenuated COX-2 induction. To examine this, rats were subjected to 24-h bilateral ureteral obstruction (BUO) followed by 48-h release and treated with the COX-2 inhibitor parecoxib or saline. Control rats were sham-operated. Parecoxib treatment significantly reduced urine output 24 h after release of BUO whereas urine osmolality and solute-free water reabsorption was comparable between saline- and parecoxib-treated BUO rats. Immunoblotting revealed a significant decrease in AQP2 and pS256-AQP2 abundance to 20 and 23% of sham levels in parecoxib-treated BUO rats compared with 40 and 55% of sham levels in saline-treated BUO rats. Immunohistochemistry confirmed the exacerbated AQP2 and pS256-AQP2 downregulation in parecoxib-treated BUO rats. Finally, parecoxib treatment had no effect on V2R downregulation and the inhibited, vasopressin-stimulated cAMP generation in inner medullary membrane fractions from the postobstructed kidney. In conclusion, COX-2 inhibition exacerbates AQP2 and pS256-AQP2 downregulation 48 h after release of 24-h BUO independently of V2R abundance and vasopressin-stimulated cAMP generation. The results indicate that COX-2 inhibition does not mimic AT1R blockade-mediated effects and that AT1R-mediated AQP2 regulation in the postobstructed kidney collecting duct is independent of COX-2 induction.
    Type of Medium: Online Resource
    ISSN: 1931-857X , 1522-1466
    Language: English
    Publisher: American Physiological Society
    Publication Date: 2010
    detail.hit.zdb_id: 1477287-5
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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