Volume-regulated Anion Channels Serve as an Auto/Paracrine Nucleotide Release Pathway in Aortic Endothelial Cells
Open Access
- 13 May 2002
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 119 (6) , 511-520
- https://doi.org/10.1085/jgp.20028540
Abstract
Mechanical stress induces auto/paracrine ATP release from various cell types, but the mechanisms underlying this release are not well understood. Here we show that the release of ATP induced by hypotonic stress (HTS) in bovine aortic endothelial cells (BAECs) occurs through volume-regulated anion channels (VRAC). Various VRAC inhibitors, such as glibenclamide, verapamil, tamoxifen, and fluoxetine, suppressed the HTS-induced release of ATP, as well as the concomitant Ca2+ oscillations and NO production. They did not, however, affect Ca2+ oscillations and NO production induced by exogenously applied ATP. Extracellular ATP inhibited VRAC currents in a voltage-dependent manner: block was absent at negative potentials and was manifest at positive potentials, but decreased at highly depolarized potentials. This phenomenon could be described with a “permeating blocker model,” in which ATP binds with an affinity of 1.0 ± 0.5 mM at 0 mV to a site at an electrical distance of 0.41 inside the channel. Bound ATP occludes the channel at moderate positive potentials, but permeates into the cytosol at more depolarized potentials. The triphosphate nucleotides UTP, GTP, and CTP, and the adenine nucleotide ADP, exerted a similar voltage-dependent inhibition of VRAC currents at submillimolar concentrations, which could also be described with this model. However, inhibition by ADP was less voltage sensitive, whereas adenosine did not affect VRAC currents, suggesting that the negative charges of the nucleotides are essential for their inhibitory action. The observation that high concentrations of extracellular ADP enhanced the outward component of the VRAC current in low Cl− hypotonic solution and shifted its reversal potential to negative potentials provides more direct evidence for the nucleotide permeability of VRAC. We conclude from these observations that VRAC is a nucleotide-permeable channel, which may serve as a pathway for HTS-induced ATP release in BAEC.Keywords
This publication has 45 references indexed in Scilit:
- Brefeldin A Block of Integrin-dependent Mechanosensitive ATP Release from Xenopus Oocytes Reveals a Novel Mechanism of MechanotransductionJournal of Biological Chemistry, 2001
- Involvement of Rho‐kinase and tyrosine kinase in hypotonic stress‐induced ATP release in bovine aortic endothelial cellsThe Journal of Physiology, 2001
- Hypotonic Stress-Induced NO Production in Endothelium Depends on Endogenous ATPBiochemical and Biophysical Research Communications, 2000
- Sulphonic acid derivatives as probes of pore properties of volume‐regulated anion channels in endothelial cellsBritish Journal of Pharmacology, 1999
- Role of Rho and Rho kinase in the activation of volume‐regulated anion channels in bovine endothelial cellsThe Journal of Physiology, 1999
- Block by fluoxetine of volume‐regulated anion channelsBritish Journal of Pharmacology, 1999
- Volume-activated Cl− channelsGeneral Pharmacology: The Vascular System, 1996
- CFTR regulates outwardly rectifying chloride channels through an autocrine mechanism involving ATPCell, 1995
- Characterization of the voltage-dependent properties of a volume-sensitive anion conductance.The Journal of general physiology, 1995
- Brefeldin A: insights into the control of membrane traffic and organelle structure.The Journal of cell biology, 1992