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PMID: 20195477 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Local membrane deformations activate Ca2+-dependent K+ and anionic currents in intact human red blood cells.

PloS one ·Vol. 5 ·No. 2 ·2010-02-26 ·Pages e9447

Dyrda A, Cytlak U, Ciuraszkiewicz A, Lipinska A, Cueff A, Bouyer G, Egée S, Bennekou P, Lew VL, Thomas SL

Abstract

The mechanical, rheological and shape properties of red blood cells are determined by their cortical cytoskeleton, evolutionarily optimized to provide the dynamic deformability required for flow through capillaries much narrower than the cell's diameter. The shear stress induced by such flow, as well as the local membrane deformations generated in certain pathological conditions, such as sickle cell anemia, have been shown to increase membrane permeability, based largely on experimentation with red cell suspensions. We attempted here the first measurements of membrane currents activated by a local and controlled membrane deformation in single red blood cells under on-cell patch clamp to define the nature of the stretch-activated currents. The cell-attached configuration of the patch-clamp technique was used to allow recordings of single channel activity in intact red blood cells. Gigaohm seal formation was obtained with and without membrane deformation. Deformation was induced by the application of a negative pressure pulse of 10 mmHg for less than 5 s. Currents were only detected when the membrane was seen domed under negative pressure within the patch-pipette. K(+) and Cl(-) currents were strictly dependent on the presence of Ca(2+). The Ca(2+)-dependent currents were transient, with typical decay half-times of about 5-10 min, suggesting the spontaneous inactivation of a stretch-activated Ca(2+) permeability (PCa). These results indicate that local membrane deformations can transiently activate a Ca(2+) permeability pathway leading to increased [Ca(2+)](i), secondary activation of Ca(2+)-sensitive K(+) channels (Gardos channel, IK1, KCa3.1), and hyperpolarization-induced anion currents. The stretch-activated transient PCa observed here under local membrane deformation is a likely contributor to the Ca(2+)-mediated effects observed during the normal aging process of red blood cells, and to the increased Ca(2+) content of red cells in certain hereditary anemias such as thalassemia and sickle cell anemia.

MeSH Terms
Calcium/metabolism,pharmacology Cells, Cultured Chloride Channels/physiology Erythrocyte Deformability/physiology Erythrocyte Membrane/physiology Erythrocytes/cytology,physiology Humans Kinetics Membrane Potentials/drug effects Patch-Clamp Techniques Potassium Channels/physiology Time Factors Voltage-Dependent Anion Channels/physiology
Chemicals
Chloride Channels Potassium Channels Voltage-Dependent Anion Channels Calcium
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Dyrda Agnieszka
Centre National de la Recherche Scientifique-Université Pierre et Marie Curie Paris6, UMR 7150, Roscoff, France.
Cytlak Urszula
Ciuraszkiewicz Anna
Lipinska Agnieszka
Cueff Anne
Bouyer Guillaume
Egée Stéphane
Bennekou Poul
Lew Virgilio L
Thomas Serge L Y
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Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2010-02-26
Epub
2010-00-26
Pages
e9447
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC2829085
Subset
IM
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