Sulfur K-Edge XAS Studies of the Effect of DNA Binding on the [FeS] Site in EndoIII and MutY.

Yang Ha, Anna R Arnold, Nicole N Nuñez, Phillip L Bartels, Andy Zhou, Sheila S David, Jacqueline K Barton, Britt Hedman, Keith O Hodgson, Edward I Solomon

Journal: Journal of the American Chemical Society 2018;139(33):11434-11442

PMID: 28715891

Abstract

S K-edge X-ray absorption spectroscopy (XAS) was used to study the [FeS] clusters in the DNA repair glycosylases EndoIII and MutY to evaluate the effects of DNA binding and solvation on Fe-S bond covalencies (i.e., the amount of S 3p character mixed into the Fe 3d valence orbitals). Increased covalencies in both iron-thiolate and iron-sulfide bonds would stabilize the oxidized state of the [FeS] clusters. The results are compared to those on previously studied [FeS] model complexes, ferredoxin (Fd), and to new data on high-potential iron-sulfur protein (HiPIP). A limited decrease in covalency is observed upon removal of solvent water from EndoIII and MutY, opposite to the significant increase observed for Fd, where the [FeS] cluster is solvent exposed. Importantly, in EndoIII and MutY, a large increase in covalency is observed upon DNA binding, which is due to the effect of its negative charge on the iron-sulfur bonds. In EndoIII, this change in covalency can be quantified and makes a significant contribution to the observed decrease in reduction potential found experimentally in DNA repair proteins, enabling their HiPIP-like redox behavior.

Address: Department of Chemistry, Stanford University , Stanford, California 94035, United States.; Stanford Synchrotron Radiation Lightsource, SLAC, Stanford University , Menlo Park, California 94025, United States.; Division of Chemistry and Chemical Engineering, California Institute of Technology , Pasadena, California 91125, United States.; Department of Chemistry, University of California Davis , Davis, California 95616, United States.
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