Abstract
Single channel and macroscopic current recording was used to investigate block of the cystic fibrosis transmembrane conductance regulator (CFTR) Cl - channel pore by the permeant anion Au(CN)2-. Block was 1-2 orders of magnitude stronger when Au(CN)2- was added to the intracellular versus the extracellular solution, depending on membrane potential. A point mutation within the pore, T-338A, strongly decreased the asymmetry of block, by weakening block by intracellular Au(CN) 2- and at the same time strengthening block by external Au(CN)2-. Block of T-338A, but not wild-type, was strongest at the current reversal potential and weakened by either depolarization or hyperpolarization. In contrast to these effects, the T-338A mutation had no impact on block by the impermeant Pt(NO2) 42- ion. We suggest that the CFTR pore has at least two anion binding sites at which Au(CN)2- and Pt(NO 2)42- block Cl- permeation. The T-338A mutation decreases a barrier for Au(CN)2- movement between different sites, leading to significant changes in its blocking action. Our finding that apparent blocker binding affinity can be altered by mutagenesis of a residue which does not contribute to a blocker binding site has important implications for interpreting the effects of mutagenesis on channel blocker effects. © 2007 by the Biophysical Society.
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CITATION STYLE
Fatehi, M., St. Aubin, C. N., & Linsdell, P. (2007). On the origin of asymmetric interactions between permeant anions and the cystic fibrosis transmembrane conductance regulator chloride channel pore. Biophysical Journal, 92(4), 1241–1253. https://doi.org/10.1529/biophysj.106.095349
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