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Electric field induced wetting of a hydrophobic gate in a model nanopore based on the 5-HT3 receptor channel

Abstract:
In this study we examined the influence of a transmembrane voltage on the hydrophobic gating of nanopores using molecular dynamics simulations. We observed electric field induced wetting of a hydrophobic gate in a biologically inspired model nanopore based on the 5-HT3 receptor in its closed state, with a field of at least ∼100 mV nm–1 (corresponding to a supra-physiological potential difference of ∼0.85 V across the membrane) required to hydrate the pore. We also found an unequal distribution of charged residues can generate an electric field intrinsic to the nanopore which, depending on its orientation, can alter the effect of the external field, thus making the wetting response asymmetric. This wetting response could be described by a simple model based on water surface tension, the volumetric energy contribution of the electric field, and the influence of charged amino acids lining the pore. Finally, the electric field response was used to determine time constants characterizing the phase transitions of water confined within the nanopore, revealing liquid–vapor oscillations on a time scale of ∼5 ns. This time scale was largely independent of the water model employed and was similar for different sized pores representative of the open and closed states of the pore. Furthermore, our finding that the threshold voltage required for hydrating a hydrophobic gate depends on the orientation of the electric field provides an attractive perspective for the design of rectifying artificial nanopores.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1021/acsnano.0c04387

Authors


More by this author
Institution:
University of Oxford
Division:
MSD
Department:
Biochemistry
Role:
Author
ORCID:
0000-0001-6360-7959


Publisher:
American Chemical Society
Journal:
ACS Nano More from this journal
Volume:
14
Issue:
8
Pages:
10480-10491
Publication date:
2020-07-16
Acceptance date:
2020-07-16
DOI:
EISSN:
1936-086X
ISSN:
1936-0851


Language:
English
Keywords:
Pubs id:
1119437
Local pid:
pubs:1119437
Deposit date:
2020-07-17

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