Literature DB >> 1310229

Luminal flow rate regulates proximal tubule H-HCO3 transporters.

P A Preisig1.   

Abstract

In vivo microperfusion was used to examine the mechanism of luminal flow rate dependence of proximal tubule acidification. Luminal flow rate was acutely changed between 5 and 40 nl/min, while luminal and peritubular capillary composition were held constant. With inhibition of basolateral membrane base transport by peritubular 4,4'-diisothiocyanostilbene-2,2'-disulfonic acid (DIDS), cell pH (pHi) provides a sensitive index of apical membrane H secretory activity. At a luminal perfusate [HCO3] of 25 mM, progressive increases in luminal flow rate (5----15----25----40 nl/min) caused progressive increases in pHi. This effect was of a smaller magnitude with a luminal perfusate [HCO3] of 60 mM and was further decreased at a luminal perfusate [HCO3] of 100 mM. This pattern of diminished flow rate dependence at higher luminal [HCO3] is consistent with the presence of a luminal unstirred layer, whose composition can be modified by luminal flow rate. The activity of the apical membrane Na-H antiporter, assayed as the initial rate of pHi recovery from an acid load in the presence of peritubular DIDS, was faster at 40 compared with 5 nl/min. Basolateral membrane Na-3HCO3 symporter activity, assayed as the initial rate of pHi recovery from an alkali load in the absence of luminal and peritubular chloride, was faster at 40 compared with 5 nl/min. This effect was eliminated by luminal amiloride, suggesting an indirect effect of flow mediated by changes in pHi secondary to flow rate-dependent changes in apical membrane Na-H antiporter activity. In summary, increases in luminal flow rate directly increase apical membrane H secretion, possibly by modification of a luminal unstirred layer.(ABSTRACT TRUNCATED AT 250 WORDS)

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Year:  1992        PMID: 1310229     DOI: 10.1152/ajprenal.1992.262.1.F47

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


  18 in total

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2.  Luminal flow modulates H+-ATPase activity in the cortical collecting duct (CCD).

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3.  Shear-induced reorganization of renal proximal tubule cell actin cytoskeleton and apical junctional complexes.

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5.  The size of the unstirred layer as a function of the solute diffusion coefficient.

Authors:  P Pohl; S M Saparov; Y N Antonenko
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Review 8.  Sensing of tubular flow and renal electrolyte transport.

Authors:  Eric H J Verschuren; Charlotte Castenmiller; Dorien J M Peters; Francisco J Arjona; René J M Bindels; Joost G J Hoenderop
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9.  Modeling proximal tubule cell homeostasis: tracking changes in luminal flow.

Authors:  Alan M Weinstein; Eduardo D Sontag
Journal:  Bull Math Biol       Date:  2009-03-12       Impact factor: 1.758

10.  Mechanosensory function of microvilli of the kidney proximal tubule.

Authors:  Zhaopeng Du; Yi Duan; QingShang Yan; Alan M Weinstein; Sheldon Weinbaum; Tong Wang
Journal:  Proc Natl Acad Sci U S A       Date:  2004-08-19       Impact factor: 11.205

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