bioRxiv · 10.1101/2021.12.08.471811
Ion Transport, Selectivity, and Electronic Polarization in Fluoride Channels
Abstract
Fluoride channels (Fluc) export toxic F- from the cytoplasm. Crystallography and mutagenesis have identified several conserved residues crucial for fluoride transport, but the permeation mechanism at the molecular level has remained elusive. Herein we have applied constant-pH molecular dynamics and free energy sampling methods to investigate fluoride permeation through a Fluc protein from Escherichia coli. We find that fluoride is facile to permeate in its charged form, i.e., F-, by traversing through a non-bonded network. The extraordinary F- selectivity is gained by the hydrogen-bonding capability of the central binding site and the Coulombic filter at the channel entrance. The F- permeation rate calculated using an electronically polarizable force field is significantly more accurate compared to the experimental value than that calculated using a more standard additive force field, suggesting an essential role for electronic polarization in the F- - Fluc interactions. O_TEXTBOXSIGNIFICANCE A comprehensive atomistic-level computational study is presented of the mechanism of fluoride permeation through fluoride channels. The mechanism of fluoride permeation of the F- anion is established and the microscopic determinants of F- selectivity revealed. The essential nature of electronic polarization during F- permeation is also demonstrated through the computational modeling. C_TEXTBOX
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Yue, Z., Wang, Z., Voth, G. A.. 2021-12-10. Ion Transport, Selectivity, and Electronic Polarization in Fluoride Channels. https://doi.org/10.1101/2021.12.08.471811
Cite the original work for its findings. Save a collection to share your selection of sources.