Characterization of the iron-sulfur [4Fe-4S]+ cluster at the active site of aconitase by iron-57, sulfur-33, and nitrogen-14 electron nuclear double resonance spectroscopy
- 1 November 1990
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 29 (46) , 10533-10540
- https://doi.org/10.1021/bi00498a016
Abstract
57Fe, 33S, and 14N electron nuclear double resonance (ENDOR) studies have been performed to characterize the [4Fe-4S]+ cluster at the active site of aconitase. Q-band 57Fe ENDOR of isotopically enriched enzyme, both substrate free and in the enzyme-substrate complex, reveals four inequivalent iron sites. In agreement with Mossbauer studies [Kent et al. (1985) J. Biol. Chem. 260, 6371-6881], one of the iron ions, Fea, which is easily removed by oxidation to yield the [3Fe-4S]+ cluster of inactive aconitase, shows a dramatic change in the presence of substrate. The remaining iron sites, Feb1,2,3, show minor changes when substrate is bound. Methods devised by us for analyzing and simulating ENDOR spectra of a randomly oriented paramegnet have been used to determine the principal values and orientation relative to the g tensor for the hyperfine tensors of three of the four inequivalent iron sites of the [4Fe-4S]+ cluster, Fea, Feb2, and Feb3, in the substrate-free enzyme and the enzyme-substrate complex. The full tensor for the fourth site, Feb1, could not be obtained because its signal is seen only over a limited range of the EPR envelope. 33S ENDOR data for the enzyme-substrate complex using enzyme reconstituted with 33S show that the four inorganic bridging sulfide ions of the [4Fe-4S]+ cube have isotropic hyperfine couplings of A(S) < 12 MHz, and analysis indicates that they can be divided into two pairs, one with couplings of A(S1) .ltorsim. 1 MHz and the other with A(S2) .apprx. 6-12 MHz; the analysis further places these pairs within the cube relative to the iron sites. 33S data for substrate-free enzyme is qualitatively similar and can be completely simulated by two types of S2- ion, with A(S1) .apprx. 7.5 and A(S2) .apprx. 9 MHz; the full hyperfine tensors have been determined. The hyperfine values for the two enzyme forms correspond to surprisingly small unpaired spin density on S2-. 14N ENDOR at Q-band reveals a nitrogen signal that does not change upon substrate binding.Keywords
This publication has 10 references indexed in Scilit:
- Mössbauer study of the inactive Fe3S4 and Fe3Se4 and the active Fe4Se4 forms of beef heart aconitase.Proceedings of the National Academy of Sciences, 1989
- Engineering of protein bound iron‐sulfur clustersEuropean Journal of Biochemistry, 1989
- Structure of activated aconitase: formation of the [4Fe-4S] cluster in the crystal.Proceedings of the National Academy of Sciences, 1989
- Electron-nuclear double resonance spectroscopy of nitrogen-15-enriched phthalate dioxygenase from Pseudomonas cepacia proves that two histidines are coordinated to the [2Fe-2S] Rieske-type clustersBiochemistry, 1989
- The structure of aconitaseProteins-Structure Function and Bioinformatics, 1989
- Iron-57 hyperfine coupling tensors of the FeMo cluster in Azotobacter vinelandii MoFe protein: determination by polycrystalline ENDOR spectroscopyJournal of the American Chemical Society, 1988
- Mode of substrate carboxyl binding to the [4Fe-4S]+ cluster of reduced aconitase as studied by 17O and 13C electron-nuclear double resonance spectroscopy.Proceedings of the National Academy of Sciences, 1987
- ENDOR of the resting state of nitrogenase molybdenum-iron proteins from Azotobacter vinelandii, Klebsiella pneumoniae, and Clostridium pasteurianum. Proton, iron-57, molybdenum-95, and sulfur-33 studiesJournal of the American Chemical Society, 1986
- 17O electron nuclear double resonance characterization of substrate binding to the [4Fe-4S]1+ cluster of reduced active aconitase.Journal of Biological Chemistry, 1986
- Iron-sulfur proteins: spin-coupling model for three-iron clusters.Proceedings of the National Academy of Sciences, 1980