Protein binding and orientation matter: Bias-induced conductance switching in a mutated azurin junction

Jerry A. Fereiro, Tatyana Bendikov, Israel Pecht, Mordechai Sheves, David Cahen

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

We observe reversible, bias-induced switching of conductance via a blue copper protein azurin mutant, N42C Az, with a nearly 10-fold increase at |V| > 0.8 V than at lower bias. No such switching is found for wild-type azurin, WT Az, up to |1.2 V|, beyond which irreversible changes occur. The N42C Az mutant will, when positioned between electrodes in a solid-state Au-protein-Au junction, have an orientation opposite that of WT Az with respect to the electrodes. Current(s) via both proteins are temperature-independent, consistent with quantum mechanical tunneling as dominant transport mechanism. No noticeable difference is resolved between the two proteins in conductance and inelastic electron tunneling spectra at <|0.5 V| bias voltages. Switching behavior persists from 15 K up to room temperature. The conductance peak is consistent with the system switching in and out of resonance with the changing bias. With further input from UV photoemission measurements on Au-protein systems, these striking differences in conductance are rationalized by having the location of the Cu(II) coordination sphere in the N42C Az mutant, proximal to the (larger) substrate-electrode, to which the protein is chemically bound, while for the WT Az that coordination sphere is closest to the other Au electrode, with which only physical contact is made. Our results establish the key roles that a protein's orientation and binding nature to the electrodes play in determining the electron transport tunnel barrier.

Original languageEnglish
Pages (from-to)19217-19225
Number of pages9
JournalJournal of the American Chemical Society
Volume142
Issue number45
DOIs
StatePublished - 11 Nov 2020
Externally publishedYes

Bibliographical note

Publisher Copyright:
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Funding

J.F. thanks the Azrieli Foundation for a postdoctoral fellowship. D.C. and M.S. thank the Israel Science Foundation (ISF), the German Science Foundation (DFG), and the Benoziyo Endowment Fund for the Advancement of Science for partial support. The research is made possible in part by the historic generosity of the Harold Perlman family. M.S. holds the Katzir-Makineni Chair in Chemistry.

FundersFunder number
Benoziyo Endowment Fund for the Advancement of Science
Deutsche Forschungsgemeinschaft
Israel Science Foundation
Azrieli Foundation

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