Literature DB >> 24008341

Redox activity distinguishes solid-state electron transport from solution-based electron transfer in a natural and artificial protein: cytochrome C and hemin-doped human serum albumin.

Nadav Amdursky1, Doron Ferber, Israel Pecht, Mordechai Sheves, David Cahen.   

Abstract

Integrating proteins in molecular electronic devices requires control over their solid-state electronic transport behavior. Unlike "traditional" electron transfer (ET) measurements of proteins that involve liquid environments and a redox cycle, no redox cofactor is needed for solid-state electron transport (ETp) across the protein. Here we show the fundamental difference between these two approaches by macroscopic area measurements, which allow measuring ETp temperature dependence down to cryogenic temperatures, via cytochrome C (Cyt C), an ET protein with a heme (Fe-porphyrin) prosthetic group as a redox centre. We compare the ETp to electrochemical ET measurements, and do so also for the protein without the Fe (with metal-free porphyrin) and without porphyrin. As removing the porphyrin irreversibly alters the protein's conformation, we repeat these measurements with human serum albumin (HSA), 'doped' (by non-covalent binding) with a single hemin equivalent, i.e., these natural and artificial proteins share a common prosthetic group. ETp via Cyt C and HSA-hemin are very similar in terms of current magnitude and temperature dependence, which suggests similar ETp mechanisms via these two systems, thermally activated hopping (with ~0.1 eV activation energy) >190 K and tunneling by superexchange <190 K. Also, ET rates to and from the Fe redox centres (Fe(2+) <=> Fe(3+) + e(-)), measured by electrochemistry of HSA-hemin are only 4 times lower than those for Cyt C. However, while removing the Fe redox centre from the porphyrin ring markedly affects the ET rate, it hardly changes the ETp currents through these proteins, while removing the macrocycle (from HSA, which retains its conformation) significantly reduces ETp efficiency. These results show that solid-state ETp across proteins does not require the presence of a redox cofactor, and that while for ET the Fe ion is the main electron mediator, for ETp the porphyrin ring has this function.

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Year:  2013        PMID: 24008341     DOI: 10.1039/c3cp52885e

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  11 in total

1.  Effects of Film Morphology and Surface Chemistry on the Direct Electrochemistry of Cytochrome c at Boron-Doped Diamond Electrodes.

Authors:  Yingrui Dai; Denis A Proshlyakov; Greg M Swain
Journal:  Electrochim Acta       Date:  2016-04-10       Impact factor: 6.901

2.  Sensing of molecules using quantum dynamics.

Authors:  Agostino Migliore; Ron Naaman; David N Beratan
Journal:  Proc Natl Acad Sci U S A       Date:  2015-04-24       Impact factor: 11.205

3.  Improved Charge Transport across Bovine Serum Albumin-Au Nanoclusters' Hybrid Molecular Junction.

Authors:  Ashwini Nawade; Kumar Babu Busi; Kunchanapalli Ramya; Goutam Kumar Dalapati; Sabyasachi Mukhopadhyay; Sabyasachi Chakrabortty
Journal:  ACS Omega       Date:  2022-06-09

4.  Where Is the Electronic Oscillator Strength? Mapping Oscillator Strength across Molecular Absorption Spectra.

Authors:  Lianjun Zheng; Nicholas F Polizzi; Adarsh R Dave; Agostino Migliore; David N Beratan
Journal:  J Phys Chem A       Date:  2016-03-15       Impact factor: 2.781

5.  Solid-state electron transport via cytochrome c depends on electronic coupling to electrodes and across the protein.

Authors:  Nadav Amdursky; Doron Ferber; Carlo Augusto Bortolotti; Dmitry A Dolgikh; Rita V Chertkova; Israel Pecht; Mordechai Sheves; David Cahen
Journal:  Proc Natl Acad Sci U S A       Date:  2014-03-31       Impact factor: 11.205

6.  Mechanism of Orientation-Dependent Asymmetric Charge Transport in Tunneling Junctions Comprising Photosystem I.

Authors:  Olga E Castañeda Ocampo; Pavlo Gordiichuk; Stefano Catarci; Daniel A Gautier; Andreas Herrmann; Ryan C Chiechi
Journal:  J Am Chem Soc       Date:  2015-06-23       Impact factor: 15.419

7.  Electron Transfer Proteins as Electronic Conductors: Significance of the Metal and Its Binding Site in the Blue Cu Protein, Azurin.

Authors:  Nadav Amdursky; Lior Sepunaru; Sara Raichlin; Israel Pecht; Mordechai Sheves; David Cahen
Journal:  Adv Sci (Weinh)       Date:  2015-03-16       Impact factor: 16.806

8.  What Can We Learn from Protein-Based Electron Transport Junctions?

Authors:  David Cahen; Israel Pecht; Mordechai Sheves
Journal:  J Phys Chem Lett       Date:  2021-12-02       Impact factor: 6.475

9.  Electron Hopping Across Hemin-Doped Serum Albumin Mats on Centimeter-Length Scales.

Authors:  Nadav Amdursky; Xuhua Wang; Paul Meredith; D Jason Riley; David J Payne; Donal D C Bradley; Molly M Stevens
Journal:  Adv Mater       Date:  2017-05-31       Impact factor: 30.849

10.  Coherent Electron Transport across a 3 nm Bioelectronic Junction Made of Multi-Heme Proteins.

Authors:  Zdenek Futera; Ichiro Ide; Ben Kayser; Kavita Garg; Xiuyun Jiang; Jessica H van Wonderen; Julea N Butt; Hisao Ishii; Israel Pecht; Mordechai Sheves; David Cahen; Jochen Blumberger
Journal:  J Phys Chem Lett       Date:  2020-11-03       Impact factor: 6.475

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