The fully open state of heterotypic gap junction channels formed by pairing cells expressing connexin 32 (Cx32) with those expressing connexin 26 (Cx26) rectifies in a way that cannot be predicted from the current–voltage (I–V) relation of either homotypic channel. Using a molecular genetic analysis, we demonstrate that charged amino acids positioned in the amino terminus (M1 and D2) and first extracellular loop (E42) are major determinants of the current–voltage relation of the fully open state of homotypic and heterotypic channels formed by Cx26 and Cx32. The observed I–V relations of wild-type and mutant channels were closely approximated by those obtained with the electrodiffusive model of Chen and Eisenberg (Chen, D., and R. Eisenberg. 1993. Biophys. J. 64:1405–1421), which solves the Poisson-Nernst-Plank equations in one dimension using charge distribution models inferred from the molecular analyses. The rectification of the Cx32/Cx26 heterotypic channel results from the asymmetry in the number and position of charged residues. The model required the incorporation of a partial charge located near the channel surface to approximate the linear I–V relation observed for the Cx32*Cx26E1 homotypic channel. The best candidate amino acid providing this partial charge is the conserved tryptophan residue (W3). Incorporation of the partial charge of residue W3 and the negative charge of the Cx32E41 residue into the charge profile used in the Poisson-Nernst-Plank model of homotypic Cx32 and heterotypic Cx26/Cx32 channels resulted in I–V relations that closely resembled the observed I–V relations of these channels. We further demonstrate that some channel substates rectify. We suggest that the conformational changes associated with transjunctional voltage (Vj)-dependent gating to these substates involves a narrowing of the cytoplasmic entry of the channel that increases the electrostatic effect of charges in the amino terminus. The rectification that is observed in the Cx32/Cx26 heterotypic channel is similar although less steep than that reported for some rectifying electrical synapses. We propose that a similar electrostatic mechanism, which results in rectification through the open and substates of heterotypic channels, is sufficient to explain the properties of steeply rectifying electrical synapses.
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1 September 1999
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September 01 1999
Molecular Determinants of Electrical Rectification of Single Channel Conductance in Gap Junctions Formed by Connexins 26 and 32
Seunghoon Oh,
Seunghoon Oh
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
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Joshua B. Rubin,
Joshua B. Rubin
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
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Michael V.L. Bennett,
Michael V.L. Bennett
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
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Vytas K. Verselis,
Vytas K. Verselis
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
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Thaddeus A. Bargiello
Thaddeus A. Bargiello
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
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Seunghoon Oh
,
Joshua B. Rubin
,
Michael V.L. Bennett
,
Vytas K. Verselis
,
Thaddeus A. Bargiello
aFrom the Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461
1used in this paper: CL, cytoplasmic loop; CT, COOH terminus; Cx, connexin; E, extracellular loop; I–V, current–voltage; LS channel, large diameter synthetic ion channel; NT, NH2 terminus; PNP, Poisson-Nernst-Plank; TM, transmembrane domain
Dr. Rubin's current address is Joshua B. Rubin, Dana Farber Cancer Institute, Boston, MA 02115.
Received:
February 18 1999
Revision Requested:
May 26 1999
Accepted:
June 18 1999
Online ISSN: 1540-7748
Print ISSN: 0022-1295
© 1999 The Rockefeller University Press
1999
The Rockefeller University Press
J Gen Physiol (1999) 114 (3): 339–364.
Article history
Received:
February 18 1999
Revision Requested:
May 26 1999
Accepted:
June 18 1999
Citation
Seunghoon Oh, Joshua B. Rubin, Michael V.L. Bennett, Vytas K. Verselis, Thaddeus A. Bargiello; Molecular Determinants of Electrical Rectification of Single Channel Conductance in Gap Junctions Formed by Connexins 26 and 32. J Gen Physiol 1 September 1999; 114 (3): 339–364. doi: https://doi.org/10.1085/jgp.114.3.339
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