Electrochemical Profile for Ion Transport across the Membrane of Proximal Tubular Cells
- 1 January 1980
- journal article
- research article
- Published by Taylor & Francis in Membrane Biochemistry
- Vol. 3 (1-2) , 67-97
- https://doi.org/10.3109/09687688009063879
Abstract
A micropuncture study was performed on the bull-frog kidney proximal tubular cells utilizing double-barreled ion-selective microelectrodes. The intracellular activities of Na+, K+, Cl-, HCO3- and pH were 21.6 mEq/l, 67.4 mEq/l, 9.9 mEq/l, 20.2 mEq/l, and 7.49 pH units, respectively. In the extracellular fluid the following activities were found: Na+, 87.4 mEq/l; K+, 2.64 mEq/l; Cl-, 72.5 mEq/l; HCO3-, 17.9 mEq/l; and pH, 7.66. The membrane potential difference was 68.4 mV and 60.4 mV across the peritubular and brush borders, respectively. The electrochemical potential differences across the individual borders of the proximal tubule cells were separately calculated by setting the intracellular level of both electrical and chemical potentials at zero for convenience. In the net reabsorption of Na+, luminal Na+ enters the cell along a 95-mV gradient across the luminal border and is pumped out to the interstitium against a 104 mV gradient. In the reabsorption of bicarbonate, an uphill pump of about 69 mV (about 70% of the Na+ entry gradient) must exist on the luminal border, of which about 55 mV (80% of the bicarbonate gradient) is accounted for by the H+ secretory pump. In the net reabsorption of K+, a significant K+ uptake pump must exist on the luminal border in addition to the powerful peritubular Na+-K+ exchange pump. The reabsorption of Cl- by the epithelium may take place in 2 ways: transmembrane transport involving an uphill step of several millivolts and paracellular leakage through the tight junction. The Na+ pump located on the basolateral border of the proximal tubule cell may play a primary role in the regulation of the movement of other ions and water. The regulatory mechanism of these substances may involve some electrochemical feedback mechanism that works across the proximal tubular epithelium.Keywords
This publication has 23 references indexed in Scilit:
- Specificity of Sodium-Dependent Electrogenic Sugar Transport in Amphibian Kidney Proximal TubulePublished by S. Karger AG ,1976
- PHYSICOCHEMICAL PROPERTIES OF A LIQUID ION EXCHANGER MICROELECTRODE AND ITS APPLICATION TO BIOLOGICAL FLUIDSThe Japanese Journal of Physiology, 1976
- Osmotically induced electrical changes in isolated bullfrog small intestineBiochimica et Biophysica Acta (BBA) - Biomembranes, 1975
- Effect of inhibitors and diuretics on electrical potential differences in rat kidney proximal tubulePflügers Archiv - European Journal of Physiology, 1975
- Electrochemical potentials of chloride in distal renal tubule of the ratAmerican Journal of Physiology-Legacy Content, 1974
- Pressures in cortical structures of the rat kidneyAmerican Journal of Physiology-Legacy Content, 1972
- Route of Passive Ion Permeation in EpitheliaNature New Biology, 1972
- Electrical potential difference across proximal convoluted tubulesAmerican Journal of Physiology-Legacy Content, 1970
- Measurements of Electrical Potential Differences on Single Nephrons of the Perfused Necturus KidneyThe Journal of general physiology, 1961
- Micropuncture Study of Pressures in Proximal Tubules and Peritubular Capillaries of the Rat Kidney and Their Relation to Ureteral and Renal Venous PressuresAmerican Journal of Physiology-Legacy Content, 1956