Three-dimensional structure of human electron transfer flavoprotein to 2.1-Å resolution
- 10 December 1996
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (25) , 14355-14360
- https://doi.org/10.1073/pnas.93.25.14355
Abstract
Mammalian electron transfer flavoproteins (ETF) are heterodimers containing a single equivalent of flavin adenine dinucleotide (FAD). They function as electron shuttles between primary flavoprotein dehydrogenases involved in mitochondrial fatty acid and amino acid catabolism and the membrane-bound electron transfer flavoprotein ubiquinone oxidoreductase. The structure of human ETF solved to 2.1-A resolution reveals that the ETF molecule is comprised of three distinct domains: two domains are contributed by the alpha subunit and the third domain is made up entirely by the beta subunit. The N-terminal portion of the alpha subunit and the majority of the beta subunit have identical polypeptide folds, in the absence of any sequence homology. FAD lies in a cleft between the two subunits, with most of the FAD molecule residing in the C-terminal portion of the alpha subunit. Alignment of all the known sequences for the ETF alpha subunits together with the putative FixB gene product shows that the residues directly involved in FAD binding are conserved. A hydrogen bond is formed between the N5 of the FAD isoalloxazine ring and the hydroxyl side chain of alpha T266, suggesting why the pathogenic mutation, alpha T266M, affects ETF activity in patients with glutaric acidemia type II. Hydrogen bonds between the 4'-hydroxyl of the ribityl chain of FAD and N1 of the isoalloxazine ring, and between alpha H286 and the C2-carbonyl oxygen of the isoalloxazine ring, may play a role in the stabilization of the anionic semiquinone. With the known structure of medium chain acyl-CoA dehydrogenase, we hypothesize a possible structure for docking the two proteins.Keywords
This publication has 42 references indexed in Scilit:
- Solvent content of protein crystalsPublished by Elsevier ,2006
- Sulfite Reductase Structure at 1.6 Å: Evolution and Catalysis for Reduction of Inorganic AnionsScience, 1995
- Energetic contribution of side chain hydrogen bonding to the stability of staphylococcal nucleaseBiochemistry, 1995
- Crystallization and preliminary X‐ray analysis of electron transfer flavoproteins from human and paracoccus denitrificansProtein Science, 1995
- A new variant of glutaric aciduria type II: Deficiency of β‐subunit of electron transfer flavoproteinJournal of Inherited Metabolic Disease, 1990
- The Bradyrhizobium japonicum fixBCX operon: identification of fixX and of a 5'mRNA region affecting the level of the fixSCX transcriptMolecular Microbiology, 1989
- Electron-transferring flavoprotein from pig kidney: flavin analog studiesBiochemistry, 1986
- Unbiased three-dimensional refinement of heavy-atom parameters by correlation of origin-removed Patterson functionsActa Crystallographica Section A Foundations of Crystallography, 1983
- Stabilization of the red semiquinone form of pig kidney general acyl-CoA dehydrogenase by acyl-coenzyme A derivativesBiochemistry, 1981
- Structure of the semiquinone form of flavodoxin from Clostridium MPJournal of Molecular Biology, 1977