Gap junction (GJ) channels mediate direct intercellular communication and are composed of two docked hemichannels (connexin oligomers). It is well documented that the docking and formation of GJs are possible only between compatible hemichannels (or connexins). The mechanisms of heterotypic docking compatibility are not fully clear. We aligned the protein sequences of docking-compatible and -incompatible connexins with that of connexin26 (Cx26). We found that two docking hydrogen bond (HB)-forming residues on the second extracellular domain (E2) of Cx26 and their equivalent residues are well conserved within docking-compatible connexins, but different between docking-incompatible connexins. Replacing one or both of these residues of Cx26 into the corresponding residues in the docking incompatible connexins (K168V, N176H or K168V-N176H) increased the formation of morphological and functional heterotypic GJs with connexin43 (Cx43) or connexin40 (Cx40), indicating that these two residues are important for docking incompatibility between Cx26 and these connexins. Our homology structure models predict that both HBs and hydrophobic interactions at the E2 docking interface are important docking mechanisms in heterotypic Cx26 K168V-N176H/Cx43 GJs and probably other docking compatible connexins. Revealing the key residues and mechanisms of heterotypic docking compatibility will assist us in understanding why these putative docking residues are hotspots of disease-linked mutants.
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TGF-β2 induces actin stress fiber formation during the mesenchymal transition of human lens epithelial cells and αB-crystallin is essential for it. For further details see pp. 1455–1469. Image kindly provided by Ram Nagaraj. - PDF Icon PDF LinkFront Matter
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Research Article|
May 11 2016
Engineered Cx26 variants established functional heterotypic Cx26/Cx43 and Cx26/Cx40 gap junction channels
Levent B. Karademir;
Levent B. Karademir
*Department of Physiology and Pharmacology, University of Western Ontario, London, Ontario, Canada, N6A 5C1
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Hiroshi Aoyama;
Hiroshi Aoyama
†Graduate School of Pharmaceutical Sciences, Osaka University, Suita, Osaka 565-0871, Japan
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Benny Yue;
Benny Yue
*Department of Physiology and Pharmacology, University of Western Ontario, London, Ontario, Canada, N6A 5C1
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Honghong Chen;
Honghong Chen
*Department of Physiology and Pharmacology, University of Western Ontario, London, Ontario, Canada, N6A 5C1
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Donglin Bai
Donglin Bai
1
*Department of Physiology and Pharmacology, University of Western Ontario, London, Ontario, Canada, N6A 5C1
1To whom correspondence should be addressed (email [email protected]).
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Publisher: Portland Press Ltd
Received:
January 21 2015
Revision Received:
March 15 2016
Accepted:
March 16 2016
Accepted Manuscript online:
March 17 2016
Online ISSN: 1470-8728
Print ISSN: 0264-6021
© 2016 The Author(s). published by Portland Press Limited on behalf of the Biochemical Society
2016
Biochem J (2016) 473 (10): 1391–1403.
Article history
Received:
January 21 2015
Revision Received:
March 15 2016
Accepted:
March 16 2016
Accepted Manuscript online:
March 17 2016
Citation
Levent B. Karademir, Hiroshi Aoyama, Benny Yue, Honghong Chen, Donglin Bai; Engineered Cx26 variants established functional heterotypic Cx26/Cx43 and Cx26/Cx40 gap junction channels. Biochem J 15 May 2016; 473 (10): 1391–1403. doi: https://doi.org/10.1042/BCJ20160200
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