Conformational Dependence of Electron Transfer Across De Novo Designed Metalloproteins
Overview
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Flash photolysis and pulse radiolysis measurements demonstrate a conformational dependence of electron transfer rates across a 16-mer helical bundle (three-helix metalloprotein) modified with a capping CoIII(bipyridine)3 electron acceptor at the N terminus and a 1-ethyl-1'-ethyl-4,4'- bipyridinium donor at the C terminus. For the CoIII(peptide)3-1-ethyl-1'-ethyl-4,4'-bipyridinium maquettes, the observed transfer is a first order, intramolecular process, independent of peptide concentration or laser pulse energy. In the presence of 6 M urea, the random coil bundle (approximately 0% helicity) has an observed electron transfer rate constant of kobs = 900 +/- 100 s-1. In the presence of 25% trifluoroethanol (TFE), the helicity of the peptide is 80% and the kobs increases to 2000 +/- 200 s-1. Moreover, the increase in the rate constant in TFE is consistent with the observed decrease in donor-acceptor distance in this solvent. Such bifunctional systems provide a class of molecules for testing the effects of conformation on electron transfer in proteins and peptides.
Multifaceted aspects of charge transfer.
Derr J, Tamayo J, Clark J, Morales M, Mayther M, Espinoza E Phys Chem Chem Phys. 2020; 22(38):21583-21629.
PMID: 32785306 PMC: 7544685. DOI: 10.1039/d0cp01556c.
Radford R, Tezcan F J Am Chem Soc. 2009; 131(26):9136-7.
PMID: 19527025 PMC: 2722220. DOI: 10.1021/ja9000695.
Incorporating electron-transfer functionality into synthetic metalloproteins from the bottom-up.
Hong J, Kharenko O, Ogawa M Inorg Chem. 2006; 45(25):9974-84.
PMID: 17140193 PMC: 2566827. DOI: 10.1021/ic060222j.
Design, synthesis, and characterization of a novel hemoprotein.
Xu Z, Farid R Protein Sci. 2001; 10(2):236-49.
PMID: 11266610 PMC: 2373949. DOI: 10.1110/ps.30801.
Histidine placement in de novo-designed heme proteins.
Gibney B, Dutton P Protein Sci. 1999; 8(9):1888-98.
PMID: 10493590 PMC: 2144391. DOI: 10.1110/ps.8.9.1888.