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References
- Schafer JA, Troutman SL, Watkins ML, Andreoli TE: Volume absorption in the pars recta. I. "Simple" active Na+ transport. Am J Physiol (Renal Fluid Electrol Physiol) 3(4):F332–339, 1978
- Neumann KH, Rector FC: Mechanism of NaCl and water reabsorption in the proximal convoluted tubule of the rat kidney. Role of chloride concentration gradients. J Clin Invest 58:1110–1118, 1976
- Berry CA, Rector FC: Active and passive sodium transport in the proximal tubule. Miner Electrol Metab 4:149–160, 1980
- Harris GL, Betz WJ: Evidence for active chloride accumulation in normal and denervated rat lumbrical muscle. J Gen Physiol 90:127–144, 1987
- Khuri RN, Agulian SK, Bogharian K, Aklanjian D: Electrochemical potentials of chloride in proximal renal tubule of Necturus Maculosus. Comp Biochem Physiol 50A:695–700, 1975
- Spring KR, Kimura G: Chloride reabsorption by renal proximal tubules of Necturus. J Membr Biol 38:233–254, 1978
- Kimura G, Spring KR: Luminal Na+ entry into Necturus proximal tubule cells. Am J Physiol (Renal Fluid Electrol Physiol 5): F295–F301, 1979
- Shindo T, Spring KR: Chloride movement across the basolaterral membrane of proximal tubule cells. J Membr Biol 58:35–42, 1981
- Edelman A, Bouthier M, Anagnostopoulos T: Chloride distribution in the proximal convoluted tubule of Necturus kidney. J Membr Biol 62:7–17, 1981
- Guggino WB, Boulpaep EL, Giebisch G: Electrical properties of chloride transport across the Necturus proximal tubule. J Membr Biol 65:185–196, 1982
- Fujimoto M, Kubota T: Physiochemical properties of a liquid ion exchanger microelectrode and its application to biological fluids. Jpn J Physiol 26:631–650, 1976 | PubMed | ChemPort |
- Boron W, Boulpaep EL: Intracellular pH regulation in the renal proximal tubule of the Salamander: Basolateral HCO3 transport. J Gen Physiol 81:53–94, 1983 | Article | PubMed | ISI | ChemPort |
- Yoshitomi K, Hoshi T: Intracellular Cl activity of the proximal tubule of Triturus kidney: Dependence on extracellular ionic composition and transmembrane potential. Am J Physiol 245 (Renal Fluid Electrol Physiol 74):F359–F366, 1983
- Sohtell M: Electrical chemical forces for chloride transport in the proximal tubules of the rat kidney. Acta Physiol Scand 103:365–369, 1978
- Cassola AC, Mollenhauer M, Fromter E: The intracellular chloride activity of rat kidney proximal tubular cells. Pflügers Arch 399:259–265, 1983
- Krapf R, Berry CA, Verkman AS: Estimation of intracellular chloride activity in isolated perfused rabbit proximal convoluted tubules using a fluoresscent indicator. Biophys J 53:955–962, 1988
- Ishibashi K, Sasaki S, Yoshiyama N: Intracellular chloride activity of rabbit proximal straight tubule perfused in vitro. Am J Physiol (Renal Fluid Electrol Physiol) 255:F49–F56, 1988
- Sasaki S, Ishibashi K, Yoshiyama N, Shiigai T: KCl cotrans-port across the basolateral membrane of rabbit renal proximal tubules. J Clin Invest 81:194–199, 1988 | PubMed | ISI | ChemPort |
- Abramow M, Burg MB, Orloff J: Chloride flux in rabbit kidney tubules in vitro. Am J Physiol 213:1249–1253, 1967
- Cardinal J, Lutz MD, Burg MB, Orloff J: Lack of relationship of potential difference to fluid absorption in the proximal renal tubule. Kidney Int 7:94–102, 1975
- Green R, Bishop JHV, Giebisch G: Ionic requirements of proximal tubular sodium transport. III. Selective luminal anion substitution. Am J Physiol (Renal Fluid Electrol Physiol 5):F268–F277, 1979
- Lucci MS, Warnock DG: Effects of anion-transport inhibitors on NaCl reabsorption in the rat superficial proximal convoluted tubule. J Clin Invest 64:570–579, 1979
- Chantrelle B, Rector FC: Active and passive components of volume reabsorption in rat superficial proximal convoluted tubule. (abstract) Clin Res 28:441A, 1980
- Chantrelle BM, Cogan MG, Rector FC: Active and passive components of NaCl absorption in the proximal convoluted tubule of the rat kidney. Miner Electrol Metab 11:209–214, 1985
- Howlin KJ, Alpern RJ, Berry CA, Rector FC: Evidence for electroneutral sodium chloride transport in rat proximal convoluted tubule. Am J Physiol 250 (Renal Fluid Electrol Physiol 19): F644–F648, 1986
- Baum M, Berry CA: Evidence for neutral transcellular NaCl transport and neutral basolateral chloride exit in the rabbit proximal convoluted tubule. J Clin Invest 74:205–211, 1984
- Alpern RJ, Howlin KJ, Preisig PA: Active and passive components of chloride transport in the rat proximal convoluted tubule. J Clin Invest 76:1360–1366, 1985
- Schafer JA, Patlak CS, Andreoli TE: Fluid absorption and active and passive ion flows in the rabbit superficial pars recta. Am J Physiol (Renal Fluid Electrol Physiol) 3:F340–F348, 1978
- Schild L, Giebisch G, Karniski LP, Aronson PS: Effect of formate on volume reabsorption in the rabbit proximal tubule. J Clin Invest 79:32–38, 1987 | PubMed | ChemPort |
- Fromter E, Rumrich G, Ullrich KJ: Phenomenologie description of Na, Cl and HCO3 absorption from proximal tubules of the rat kidney. Pflügers Arch 343:189–220, 1973
- Buckhardt BCh, Cassola AC, Fromter E: Electrophysiological analysis of bicarbonate permeation across the peritubular cell membrane of rat kidney proximal tubule. II. Exclusion of HCO3-effects on other ion permeabilities and of coupled electroneutral HCO3-transport. Pflügers Arch 401:43–51, 1984
- Cardinal J, Lapointe JY, Laprade R: Luminal and peritubular ionic substitutions and intracellular potential of the rabbit proximal convoluted tubule. Am J Physiol 247 (Renal Fluid Electrol Physiol 16):F352–F346, 1984
- Warnock DG, Yee VJ: Chloride uptake by brush border membrane vesicles isolated from rabbit renal cortex. Coupling to proton gradients and K diffusion potentials. J Clin Invest 67:103–115, 1981 | PubMed | ChemPort |
- Ives HE, Chen PY, Verkman AS: Mechanism of coupling between CI and OH transport in renal brush-border membranes. Biochim Biophys Acta 863:91–100, 1986 | PubMed | ISI | ChemPort |
- Seifter JL, Knickelbein R, Aronson PS: Absence of Cl-OH exchange and NaCl cotransport in rabbit renal microvillus membrane vesicles. Am J Physiol 247 (Renal Fluid Electrol Physiol):F753–F759, 1984 | PubMed | ChemPort |
- Chen PY, Illsley NP, Verkman AS: Renal brush border chloride transport mechanisms characterized using a fluorescent indicator. Am J Physiol 254 (Renal Fluid Electrol Physiol 23):F114–F120, 1988
- Frizzell RA, Field M, Schultz SG: Sodium-coupled chloride transport by epithelial tissues. Am J Physiol 236 (Renal Fluid Electrol Physiol 5): F1–F8, 1979 | PubMed | ISI | ChemPort |
- Costanzo LS, Windhager EE: Calcium and sodium transport by the distal convoluted tubule of the rat. Am J Physiol 235 (Renal Fluid Electrol Physiol 4):F492–F506, 1978 | PubMed | ISI | ChemPort |
- Smith JW: The Physiology of the Kidney. New York, Oxford Univ Press, 1937, pp. 169–182
- Murer H, Hopfer U, Kinne R: Sodium/proton antiport in brush-border-membrane vesicles isolated from rat small intestine and kidney. Biochem J 154:597–604, 1976 | PubMed | ISI | ChemPort |
- Aronson PS, Suhm MA, Nee J: Interaction of external H with the Na/H exchanger in renal microvillus membrane vesicles. J Biol Chem 258:6767–6771, 1983
- Aronson PS, Nee J, Suhm MA: Modifier role of internal H in activating the Na-H exchanger in renal microvillus membrane vesicles. Nature 299:161–163, 1982 | Article | PubMed | ISI | ChemPort |
- Ives HE, Yee VJ, Warnock DG: Mixted type inhibition of the renal Na/H antiporter by Li and amiloride. J Biol Chem 258:9710–9716, 1983 | PubMed | ISI | ChemPort |
- Burg MB, Green N: Bicarbonate transport by isolated perfused rabbit proximal convoluted tubules. Am J Physiol 233 (Renal Fluid Electrol Physiol 2): F307–F314, 1977 | PubMed | ISI | ChemPort |
- Boron WF, Boulpaep EL: Intracellular pH regulation in the renal proximal tubule of the salamander. J Gen Physiol 81:29–52, 1983
- Chan YL, Giebisch G: Relationship between sodium and bicarbonate transport in the rat proximal convoluted tubule. Am J Physiol 240 (Renal Fluid Electrol Physiol 9):F222–F230, 1981 | PubMed | ChemPort |
- Chantrelle B, Cogan MG, Rector FC: Evidence for coupled sodium/hydrogen exchange in the rat superficial proximal convoluted tubule. Pflügers Arch 395:186–189, 1982
- Howlin KJ, Alpern RF, Rector FC: Amiloride inhibition of proximal tubular acidification. Am J Physiol 248 (Renal Fluid Electrol Physiol 77):F773–F778, 1985
- Preisig PA, Ives HE, Cragoe EJ, Alpern RJ, Rector FC: Role of the Na/H antiporter in rat proximal tubule bicarbonate absorption. J Clin Invest 80:970–978, 1987 | PubMed | ISI | ChemPort |
- Berliner RW: Metabolic Aspects of Transport across Cell Membranes. Madison, University of Wisconsin Press, 1957, pp. 227–228
- Baum M: Evidence that parallel Na-H and Cl-HCO3 (OH) antiport-ers transport NaCl in the proximal tubule. Am J Physiol 252 (Renal Fluid Electrol Physiol 21): F338–F345, 1987
- Sabolic I, Burkhardt G: Proton pathways in rat renal brush border and basolateral membranes. Biochim Biophys Acta 734:210–220, 1983
- Preisig PA, Ives HE, Cragoe EJ, Alpern RJ, Rector FC: Na/H antiporter mediates 65% of NaHCO3 absorption (JHCO3) and all of transcellular NaCl absorption in the rat proximal convoluted tubule (PCT). (abstract) Kidney Int 31:414, 1987
- Burnham C, Munzesheimer C, Rabon E, Sachs G: Ion pathways in renal brush border membranes. Biochim Biophys Acta 685:260–272, 1982 | PubMed | ISI | ChemPort |
- Shiuan D, Weinstein SW: Evidence for electroneutral chloride transport in rabbit renal cortical brush border membrane vesicles. Am J Physiol 247 (Renal Fluid Electrol Physiol):F837–F847, 1984
- Cassano G, Stieger B, Murer H: Na/H and Cl/OH-exchange in rat jejunal and rat proximal tubular brush border membrane vesicles. Studies with acridine orange. Plfügers Arch 400:309–317, 1984
- Schwartz GJ: Absence of Cl-OH or Cl-HCO3 exchange in the rabbit renal proximal tubule. Am J Physiol 245 (Renal Fluid Electrol Physiol 14):F462–F469, 1983
- Schwartz G: Na-dependent H efflux from proximal tubule: Evidence for a reversible Na-H exchange. Am J Physiol 241 (Renal Fluid Electrol Physiol 10):F380–F385, 1981
- Alpern RJ: Apical membrane chloride/base exchange in the rat proximal convoluted tubule. J Clin Invest 79:1026–1030, 1987
- Baum M: The effect of luminal chloride on cell pH in the rabbit proximal tubule. Am J Physiol 254 (Renal Fluid Electrol Physiol):F677–F683, 1988
- Guggino SE, Martin GJ, Aronson PS: Specificity and modes of the anion exchanger in dog renal microvillus membranes. Am J Physiol 244 (Renal Fluid Electrol Physiol 13): F612–F621, 1983 | PubMed | ISI | ChemPort |
- Karniski LP, Aronson PS: Chloride/formate exchange with formic acid recycling: A mechanism for active chloride transport across epithelial membranes. Proc Natl Acad Sci USA 82:6362–6365, 1985 | Article | PubMed | ChemPort |
- Annison EF: Studies on the volatile fatty acids of sheep blood with special reference to formic acid. Biochem J 58:670–680, 1954 | PubMed | ISI | ChemPort |
- Alpern RJ: Mechanism of basolateral membrane H/OH/HCO3 transport in the rat proximal convoluted tubule: A sodium-coupled electrogenic process. J Gen Physiol 86:613–637, 1985 | Article | PubMed | ISI | ChemPort |
- Pastoriza-Munoz E, Harrington RM, Graber ML: Axial heterogeneity of intracellular pH in rat proximal convoluted tubule. J Clin Invest 80:207–215, 1987 | PubMed | ChemPort |
- Krapf R, Alpern RJ, Rector FC, Berry CA: C02/HCO3 dependence of the basolateral base exit in the rabbit proximal convoluted tubule. J Gen Physiol 90:833–853, 1988
- Karniski LP, Aronson PS: Anion exchange pathways for CI transport in rabbit renal microvillus membranes. Am J Physiol 253 (Renal Fluid Electrol Physiol 22):F513–F521, 1987 | PubMed | ISI | ChemPort |
- Walter A, Gutknecht J: Monocarboxylic acid permeation through lipid bilayer membranes. J Membr Biol 77:255–264, 1984
- Welling LW, Welling DJ: Surface areas of brush border and lateral cell walls in the rabbit proximal nephron. Kidney Int 8:343–348, 1975


