Issue 1, 2017

Energy transduction and signal averaging of fluctuating electric fields by a single protein ion channel

Abstract

We demonstrate the electrical rectification and signal averaging of fluctuating signals using a biological nanostructure in aqueous solution: a single protein ion channel inserted in the lipid bilayer characteristic of cell membranes. The conversion of oscillating, zero time-average potentials into directional currents permits charging of a load capacitor to significant steady-state voltages within a few minutes in the case of the outer membrane porin F (OmpF) protein, a bacterial channel of Escherichia coli. The experiments and simulations show signal averaging effects at a more fundamental level than the traditional cell and tissue scales, which are characterized by ensembles of many ion channels operating simultaneously. The results also suggest signal transduction schemes with bio-electronic interfaces and ionic circuits where soft matter nanodiodes can be coupled to conventional electronic elements.

Graphical abstract: Energy transduction and signal averaging of fluctuating electric fields by a single protein ion channel

Article information

Article type
Paper
Submitted
01 Sep 2016
Accepted
22 Nov 2016
First published
22 Nov 2016

Phys. Chem. Chem. Phys., 2017,19, 292-296

Energy transduction and signal averaging of fluctuating electric fields by a single protein ion channel

C. Verdia-Baguena, V. Gomez, J. Cervera, P. Ramirez and S. Mafe, Phys. Chem. Chem. Phys., 2017, 19, 292 DOI: 10.1039/C6CP06035H

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