Connexin channels play numerous essential roles in virtually every organ by mediating solute exchange between adjacent cells, or between cytoplasm and extracellular milieu. Our understanding of the structure-function relationship of connexin channels relies on X-ray crystallographic data for human connexin 26 (hCx26) intercellular gap junction channels. Comparison of experimental data and molecular dynamics simulations suggests that the published structures represent neither fully-open nor closed configurations. To facilitate the search for alternative stable configurations, we developed a coarse grained (CG) molecular model of the hCx26 hemichannel and studied its responses to external electric fields. When challenged by a field of 0.06 V/nm, the hemichannel relaxed toward a novel configuration characterized by a widened pore and an increased bending of the second transmembrane helix (TM2) at the level of the conserved Pro87. A point mutation that inhibited such transition in our simulations impeded hemichannel opening in electrophysiology and dye uptake experiments conducted on HeLa tranfectants. These results suggest that the hCx26 hemichannel uses a global degree of freedom to transit between different configuration states, which may be shared among the whole connexin family.

Cues to Opening Mechanisms From in Silico Electric Field Excitation of Cx26 Hemichannel and in Vitro Mutagenesis Studies in HeLa Transfectans

Mammano Fabio;
2018

Abstract

Connexin channels play numerous essential roles in virtually every organ by mediating solute exchange between adjacent cells, or between cytoplasm and extracellular milieu. Our understanding of the structure-function relationship of connexin channels relies on X-ray crystallographic data for human connexin 26 (hCx26) intercellular gap junction channels. Comparison of experimental data and molecular dynamics simulations suggests that the published structures represent neither fully-open nor closed configurations. To facilitate the search for alternative stable configurations, we developed a coarse grained (CG) molecular model of the hCx26 hemichannel and studied its responses to external electric fields. When challenged by a field of 0.06 V/nm, the hemichannel relaxed toward a novel configuration characterized by a widened pore and an increased bending of the second transmembrane helix (TM2) at the level of the conserved Pro87. A point mutation that inhibited such transition in our simulations impeded hemichannel opening in electrophysiology and dye uptake experiments conducted on HeLa tranfectants. These results suggest that the hCx26 hemichannel uses a global degree of freedom to transit between different configuration states, which may be shared among the whole connexin family.
2018
Istituto di Biologia Cellulare e Neurobiologia - IBCN - Sede Monterotondo Scalo
Istituto di Biochimica e Biologia Cellulare - IBBC
Inglese
11
170
1
12
12
https://www.frontiersin.org/articles/10.3389/fnmol.2018.00170/full
Sì, ma tipo non specificato
gap junction hemichannels
coarse grained simulations
connexin
electrophysiology
Cx26
SIRAH force field
conformational change
This work was supported by: National Science Foundation of China (Grant N 31770776 to FZ), FOCEM (MERCOSUR Structural Convergence Fund), COF03/11 to SP; Fondazione Telethon (grant GGP13114 to FM); CNR (Project DSB.AD009.001.004/INVECCHIAMENTO IBCN to FM); Science and Technology Commission of Shanghai Municipality (grant 16DZ1910299 to GY). SP is part of the Uruguayan National Scientific Research Program of ANII (SNI). FM is a recipient of a Shanghai Thousand Talent Program award for Foreign Experts.
8
info:eu-repo/semantics/article
262
Zonta, Francesco; Buratto, Damiano; Crispino, Giulia; Carrer, Andrea; Bruno, Francesca; Yang, Guang; Mammano, Fabio; Pantano, Sergio
01 Contributo su Rivista::01.01 Articolo in rivista
none
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/393221
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