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Updated: Jan 7, 2026

Förster Resonance Energy Transfer Mapping: A New Methodology to Elucidate Global Structural Features
Published on: March 16, 2022
Structural and mechanistic insights into the sulfur transfer protein SufU from Staphylococcus aureus
Emily Sabo1, Connor Nelson1, Delanie Huntoon2
1Department of Chemistry, Colorado School of Mines, Golden, CO 80401, United States of America.
Abstract:
Substitution of the active site Zn2+ ion in the sulfur transfer protein (SufU) from Staphylococcus aureus (SaSufU) with a catalytically active Co2+ ion revealed a S-➔Co2+ ligand-to-metal-charge-transfer (LMCT) band at 340 nm with an ε of ∼2,760M-1cm-1, as well as d-d (i.e. ligand field) absorption bands at 584 nm (ε = 540 ), 636 nm (ε = 580 ) and 735 nm (ε = 220 ). These data suggest a distorted four- or five-coordinate Co2+ center ligated by 3 Cys residues with a dissociation constant (Kd)of ∼600nM. Co K-edge absorption spectra (XAS) of Co2+-SaSufU indicated five-coordinate Co2+, while extended X-ray absorption fine structure (EXAFS) spectra of Co2+-SaSufU revealed 2 N/O and 3 S ligands. EXAFS data for Zn2+-SaSufU revealed 1 N/O and 3 S ligands consistent with the proposed Cys3Asp coordinating residues. The fifth ligand in the Co2+-SaSufU enzyme is either a bidentate the active site Asp ligand or an exogenous water. Upon the addition of SaSufS to either Zn2+-SaSufU or Co2+-SaSufU, XAS and EXAFS data suggest that one of the S ligands is displaced by an N/O atom donor. Interestingly, electronic absorption data suggest that this only occurs in the presence of Cys. EPR analysis of Co2+-SaSufU revealed temperature- and B1-dependent transitions within both the Ms=±12 and MS=±32 doublets of the S=32 spin system that suggested either heterogeneity of the electronic structure or an unusually small zero-field splitting for Co(II). Taken together, these data provide in-solution evidence for the mechanism of S2- transfer from SaSufS to SaSufU.
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