Literature DB >> 16144961

Axial flow modulates proximal tubule NHE3 and H-ATPase activities by changing microvillus bending moments.

Zhaopeng Du1, Qingshang Yan, Yi Duan, Sheldon Weinbaum, Alan M Weinstein, Tong Wang.   

Abstract

We have previously demonstrated that mouse proximal tubules in vitro respond to changes in luminal flow with proportional changes in Na+ absorption (Du Z, Duan Y, Yan Q, Weinstein AM, Weinbaum S, and Wang T. Proc Natl Acad Sci USA 101: 13068-13073, 2004). It was hypothesized that brush-border microvilli function as a sensor to detect and amplify luminal hydrodynamic forces and transmit them to the actin cytoskeleton. In the present study we examine whether 1) flow-dependent HCO3- transport is proportional to flow-dependent variations in microvillous torque (bending moment); 2) both luminal membrane Na(+)/H+ exchange (NHE3) and H(+)-ATPase activity are modulated by axial flow; and 3) paracellular permeabilities contribute to the flux perturbations. HCO3- absorption is examined by microperfusion of mouse S2 proximal tubules in vitro, with varying perfusion rates, and in the presence of the Na/H-exchange inhibitor EIPA, the H(+)-ATPase inhibitor bafilomycin, and the actin cytoskeleton inhibitor cytochalasin D. Paracellular permeability changes are assessed with measurements of epithelial HCO3- permeability and transepithelial potential difference (PD). It is found that 1) an increase in perfusion rate enhances HCO3- absorption and microvillous torque, and the fractional changes of each are nearly identical; 2) inhibition of NHE3 by EIPA, or H(+)-ATPase by bafilomycin, produced only partial inhibition of flow-stimulated bicarbonate transport; 3) disruption of the actin cytoskeleton by cytochalasin D blocked the increment of HCO3- absorption by high flow; and 4) HCO3- permeability and transepithelial PD are not modulated by flow. We conclude that flow-dependent modulation of proximal tubule HCO3- reabsorption is due to changes in both NHE3 and H(+)-ATPase activity within the luminal cell membrane and this requires an intact actin cytoskeleton. Paracellular permeability changes do not contribute to this flow dependence. Perfusion-absorption balance in the proximal tubule is a direct effect of flow-induced torque on brush-border microvilli to regulate luminal cell membrane transporter activity.

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Year:  2005        PMID: 16144961     DOI: 10.1152/ajprenal.00255.2005

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  42 in total

Review 1.  Mechanotransduction in the renal tubule.

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Journal:  Am J Physiol Renal Physiol       Date:  2010-09-01

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

Authors:  Wen Liu; Núria M Pastor-Soler; Carlos Schreck; Beth Zavilowitz; Thomas R Kleyman; Lisa M Satlin
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3.  Shear-induced reorganization of renal proximal tubule cell actin cytoskeleton and apical junctional complexes.

Authors:  Yi Duan; Nanami Gotoh; Qingshang Yan; Zhaopeng Du; Alan M Weinstein; Tong Wang; Sheldon Weinbaum
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4.  Albumin handling by renal tubular epithelial cells in a microfluidic bioreactor.

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Review 5.  Modeling transport in the kidney: investigating function and dysfunction.

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6.  Use of optical tweezers to probe epithelial mechanosensation.

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Review 7.  Molecular mechanisms and regulation of urinary acidification.

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8.  Podocyte Injury Augments Intrarenal Angiotensin II Generation and Sodium Retention in a Megalin-Dependent Manner.

Authors:  Masahiro Koizumi; Kohei Ueda; Fumio Niimura; Akira Nishiyama; Motoko Yanagita; Akihiko Saito; Ira Pastan; Toshiro Fujita; Masafumi Fukagawa; Taiji Matsusaka
Journal:  Hypertension       Date:  2019-07-29       Impact factor: 10.190

Review 9.  Regulation of glomerulotubular balance: flow-activated proximal tubule function.

Authors:  Tong Wang; Sheldon Weinbaum; Alan M Weinstein
Journal:  Pflugers Arch       Date:  2017-03-07       Impact factor: 3.657

10.  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

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