Literature DB >> 19645446

Steering electrons on moving pathways.

David N Beratan1, Spiros S Skourtis, Ilya A Balabin, Alexander Balaeff, Shahar Keinan, Ravindra Venkatramani, Dequan Xiao.   

Abstract

Electron transfer (ET) reactions provide a nexus among chemistry, biochemistry, and physics. These reactions underpin the "power plants" and "power grids" of bioenergetics, and they challenge us to understand how evolution manipulates structure to control ET kinetics. Ball-and-stick models for the machinery of electron transfer, however, fail to capture the rich electronic and nuclear dynamics of ET molecules: these static representations disguise, for example, the range of thermally accessible molecular conformations. The influence of structural fluctuations on electron-transfer kinetics is amplified by the exponential decay of electron tunneling probabilities with distance, as well as the delicate interference among coupling pathways. Fluctuations in the surrounding medium can also switch transport between coherent and incoherent ET mechanisms--and may gate ET so that its kinetics is limited by conformational interconversion times, rather than by the intrinsic ET time scale. Moreover, preparation of a charge-polarized donor state or of a donor state with linear or angular momentum can have profound dynamical and kinetic consequences. In this Account, we establish a vocabulary to describe how the conformational ensemble and the prepared donor state influence ET kinetics in macromolecules. This framework is helping to unravel the richness of functional biological ET pathways, which have evolved within fluctuating macromolecular structures. The conceptual framework for describing nonadiabatic ET seems disarmingly simple: compute the ensemble-averaged (mean-squared) donor-acceptor (DA) tunneling interaction, <H(DA)(2)>, and the Franck-Condon weighted density of states, rho(FC), to describe the rate, (2pi/variant Planck's over 2pi)<H(DA)(2)>rho(FC). Modern descriptions of the thermally averaged electronic coupling and of the Franck-Condon factor establish a useful predictive framework in biology, chemistry, and nanoscience. Describing the influence of geometric and energetic fluctuations on ET allows us to address a rich array of mechanistic and kinetic puzzles. How strongly is a protein's fold imprinted on the ET kinetics, and might thermal fluctuations "wash out" signatures of structure? What is the influence of thermal fluctuations on ET kinetics beyond averaging of the tunneling barrier structure? Do electronic coupling mechanisms change as donor and acceptor reposition in a protein, and what are the consequences for the ET kinetics? Do fluctuations access minority species that dominate tunneling? Can energy exchanges between the electron and bridge vibrations generate vibronic signatures that label some of the D-to-A pathways traversed by the electron, thus eliminating unmarked pathways that would otherwise contribute to the DA coupling (as in other "which way" or double-slit experiments)? Might medium fluctuations drive tunneling-hopping mechanistic transitions? How does the donor-state preparation, in particular, its polarization toward the acceptor and its momentum characteristics (which may introduce complex rather than pure real relationships among donor orbital amplitudes), influence the electronic dynamics? In this Account, we describe our recent studies that address puzzling questions of how conformational distributions, excited-state polarization, and electronic and nuclear dynamical effects influence ET in macromolecules. Indeed, conformational and dynamical effects arise in all transport regimes, including the tunneling, resonant transport, and hopping regimes. Importantly, these effects can induce switching among ET mechanisms.

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Year:  2009        PMID: 19645446      PMCID: PMC2764794          DOI: 10.1021/ar900123t

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  36 in total

1.  Electron transmission through molecules and molecular interfaces.

Authors:  A Nitzan
Journal:  Annu Rev Phys Chem       Date:  2001       Impact factor: 12.703

Review 2.  Electron tunneling through proteins.

Authors:  Harry B Gray; Jay R Winkler
Journal:  Q Rev Biophys       Date:  2003-08       Impact factor: 5.318

3.  Investigation of the pathway for inter-copper electron transfer in peptidylglycine alpha-amidating monooxygenase.

Authors:  Wilson A Francisco; Georg Wille; Alan J Smith; David J Merkler; Judith P Klinman
Journal:  J Am Chem Soc       Date:  2004-10-20       Impact factor: 15.419

4.  Photoselected electron transfer pathways in DNA photolyase.

Authors:  Tatiana R Prytkova; David N Beratan; Spiros S Skourtis
Journal:  Proc Natl Acad Sci U S A       Date:  2007-01-05       Impact factor: 11.205

5.  Molecular chirality and charge transfer through self-assembled scaffold monolayers.

Authors:  J J Wei; C Schafmeister; G Bird; A Paul; R Naaman; D H Waldeck
Journal:  J Phys Chem B       Date:  2006-01-26       Impact factor: 2.991

6.  Protein electron transfer rates set by the bridging secondary and tertiary structure.

Authors:  D N Beratan; J N Betts; J N Onuchic
Journal:  Science       Date:  1991-05-31       Impact factor: 47.728

7.  Tracing electronic pathways in molecules by using inelastic tunneling spectroscopy.

Authors:  Alessandro Troisi; Jeremy M Beebe; Laura B Picraux; Roger D van Zee; Duncan R Stewart; Mark A Ratner; James G Kushmerick
Journal:  Proc Natl Acad Sci U S A       Date:  2007-08-28       Impact factor: 11.205

8.  Turning charge transfer on and off in a molecular interferometer with vibronic pathways.

Authors:  Dequan Xiao; Spiros S Skourtis; Igor V Rubtsov; David N Beratan
Journal:  Nano Lett       Date:  2009-05       Impact factor: 11.189

9.  Single-molecule solvation-shell sensing.

Authors:  E Leary; H Höbenreich; S J Higgins; H van Zalinge; W Haiss; R J Nichols; C M Finch; I Grace; C J Lambert; R McGrath; J Smerdon
Journal:  Phys Rev Lett       Date:  2009-02-23       Impact factor: 9.161

10.  Electron transfer and electronic conduction through an intervening medium.

Authors:  Peter P Edwards; Harry B Gray; Matthew T J Lodge; Robert J P Williams
Journal:  Angew Chem Int Ed Engl       Date:  2008       Impact factor: 15.336

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  42 in total

1.  Surface residues dynamically organize water bridges to enhance electron transfer between proteins.

Authors:  Aurélien de la Lande; Nathan S Babcock; Jan Rezác; Barry C Sanders; Dennis R Salahub
Journal:  Proc Natl Acad Sci U S A       Date:  2010-06-14       Impact factor: 11.205

2.  Flexibility of the metal-binding region in apo-cupredoxins.

Authors:  María-Eugenia Zaballa; Luciano A Abriata; Antonio Donaire; Alejandro J Vila
Journal:  Proc Natl Acad Sci U S A       Date:  2012-05-29       Impact factor: 11.205

3.  On the mechanism of vibrational control of light-induced charge transfer in donor-bridge-acceptor assemblies.

Authors:  Milan Delor; Theo Keane; Paul A Scattergood; Igor V Sazanovich; Gregory M Greetham; Michael Towrie; Anthony J H M Meijer; Julia A Weinstein
Journal:  Nat Chem       Date:  2015-08-17       Impact factor: 24.427

4.  Faster interprotein electron transfer in a [myoglobin, b⁵] complex with a redesigned interface.

Authors:  Peng Xiong; Judith M Nocek; Josh Vura-Weis; Jenny V Lockard; Michael R Wasielewski; Brian M Hoffman
Journal:  Science       Date:  2010-11-19       Impact factor: 47.728

5.  Electrochemical tunnelling sensors and their potential applications.

Authors:  T Albrecht
Journal:  Nat Commun       Date:  2012-05-08       Impact factor: 14.919

6.  Coherence in electron transfer pathways.

Authors:  Spiros S Skourtis; David N Beratan; David H Waldeck
Journal:  Procedia Chem       Date:  2011-01-01

Review 7.  A hybrid approach to simulation of electron transfer in complex molecular systems.

Authors:  Tomáš Kubař; Marcus Elstner
Journal:  J R Soc Interface       Date:  2013-07-24       Impact factor: 4.118

8.  Mesoscale molecular network formation in amorphous organic materials.

Authors:  Brett M Savoie; Kevin L Kohlstedt; Nicholas E Jackson; Lin X Chen; Monica Olvera de la Cruz; George C Schatz; Tobin J Marks; Mark A Ratner
Journal:  Proc Natl Acad Sci U S A       Date:  2014-06-30       Impact factor: 11.205

Review 9.  Multicopper oxidases: intramolecular electron transfer and O2 reduction.

Authors:  Scot Wherland; Ole Farver; Israel Pecht
Journal:  J Biol Inorg Chem       Date:  2014-01-16       Impact factor: 3.358

10.  Electron hopping through proteins.

Authors:  Jeffrey J Warren; Maraia E Ener; Antonín Vlček; Jay R Winkler; Harry B Gray
Journal:  Coord Chem Rev       Date:  2012-04-05       Impact factor: 22.315

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