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Ion–Ion Repulsions and Charge-Shielding Effects Dominate the Permeation Mechanism through the OmpF Porin Channel
Author(s) -
Juán Carlos Ahumada,
Carlos Alemán,
Jorge SotoDelgado,
Juan Torras
Publication year - 2018
Publication title -
the journal of physical chemistry b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.864
H-Index - 392
eISSN - 1520-6106
pISSN - 1520-5207
DOI - 10.1021/acs.jpcb.8b09549
Subject(s) - ion , porin , chemical physics , permeation , ionic bonding , chemistry , ion channel , electromagnetic shielding , molecular dynamics , membrane , shielding effect , materials science , computational chemistry , bacterial outer membrane , organic chemistry , biochemistry , receptor , escherichia coli , composite material , gene
OmpF is a wide channel bacterial porin frequently employed to study selective ionic translocation. The cationic preference of this porin is mainly determined by electrostatic forces between the translocated ion and the protein and the formation of ion pairs (e.g., K + ···Cl - ) being previously pointed as the main cause to favor the cationic transport through the constriction zone. Hybrid quantum mechanics/molecular mechanics-molecular dynamics simulations, which have provided polarization-containing potentials of mean force profiles for different permeation scenarios, reveal significant new insights related with the ion translocation mechanism. Results show that the permeation is dominated by electrostatic interactions, which in turn affect ion-protein interactions at the constriction zone. However, it is observed that ion flow is favored by ion-ion repulsions and, in a lesser extent, by charge-shielding effects, instead of the previously pointed ionic pair formation.

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