5vpn Citations

Structural and biochemical analyses reveal insights into covalent flavinylation of the Escherichia coli Complex II homolog quinol:fumarate reductase.

J Biol Chem 292 12921-12933 (2017)
Cited: 10 times
EuropePMC logo PMID: 28615448

Abstract

The Escherichia coli Complex II homolog quinol:fumarate reductase (QFR, FrdABCD) catalyzes the interconversion of fumarate and succinate at a covalently attached FAD within the FrdA subunit. The SdhE assembly factor enhances covalent flavinylation of Complex II homologs, but the mechanisms underlying the covalent attachment of FAD remain to be fully elucidated. Here, we explored the mechanisms of covalent flavinylation of the E. coli QFR FrdA subunit. Using a ΔsdhE E. coli strain, we show that the requirement for the assembly factor depends on the cellular redox environment. We next identified residues important for the covalent attachment and selected the FrdAE245 residue, which contributes to proton shuttling during fumarate reduction, for detailed biophysical and structural characterization. We found that QFR complexes containing FrdAE245Q have a structure similar to that of the WT flavoprotein, but lack detectable substrate binding and turnover. In the context of the isolated FrdA subunit, the anticipated assembly intermediate during covalent flavinylation, FrdAE245 variants had stability similar to that of WT FrdA, contained noncovalent FAD, and displayed a reduced capacity to interact with SdhE. However, small-angle X-ray scattering (SAXS) analysis of WT FrdA cross-linked to SdhE suggested that the FrdAE245 residue is unlikely to contribute directly to the FrdA-SdhE protein-protein interface. We also found that no auxiliary factor is absolutely required for flavinylation, indicating that the covalent flavinylation is autocatalytic. We propose that multiple factors, including the SdhE assembly factor and bound dicarboxylates, stimulate covalent flavinylation by preorganizing the active site to stabilize the quinone-methide intermediate.

Articles - 5vpn mentioned but not cited (1)

  1. Structural and biochemical analyses reveal insights into covalent flavinylation of the Escherichia coli Complex II homolog quinol:fumarate reductase. Starbird CA, Maklashina E, Sharma P, Qualls-Histed S, Cecchini G, Iverson TM. J Biol Chem 292 12921-12933 (2017)


Reviews citing this publication (2)

  1. The assembly of succinate dehydrogenase: a key enzyme in bioenergetics. Moosavi B, Berry EA, Zhu XL, Yang WC, Yang GF. Cell Mol Life Sci 76 4023-4042 (2019)
  2. Maturation of the respiratory complex II flavoprotein. Sharma P, Maklashina E, Cecchini G, Iverson TM. Curr Opin Struct Biol 59 38-46 (2019)

Articles citing this publication (7)

  1. The roles of SDHAF2 and dicarboxylate in covalent flavinylation of SDHA, the human complex II flavoprotein. Sharma P, Maklashina E, Cecchini G, Iverson TM. Proc Natl Acad Sci U S A 117 23548-23556 (2020)
  2. Crystal structure of an assembly intermediate of respiratory Complex II. Sharma P, Maklashina E, Cecchini G, Iverson TM. Nat Commun 9 274 (2018)
  3. The unassembled flavoprotein subunits of human and bacterial complex II have impaired catalytic activity and generate only minor amounts of ROS. Maklashina E, Rajagukguk S, Iverson TM, Cecchini G. J Biol Chem 293 7754-7765 (2018)
  4. Crystal structure of bacterial succinate:quinone oxidoreductase flavoprotein SdhA in complex with its assembly factor SdhE. Maher MJ, Herath AS, Udagedara SR, Dougan DA, Truscott KN. Proc Natl Acad Sci U S A 115 2982-2987 (2018)
  5. New crystal forms of the integral membrane Escherichia coli quinol:fumarate reductase suggest that ligands control domain movement. Starbird CA, Tomasiak TM, Singh PK, Yankovskaya V, Maklashina E, Eisenbach M, Cecchini G, Iverson TM. J Struct Biol 202 100-104 (2018)
  6. A Mechanism of Modulating the Direction of Flagellar Rotation in Bacteria by Fumarate and Fumarate Reductase. Koganitsky A, Tworowski D, Dadosh T, Cecchini G, Eisenbach M. J Mol Biol 431 3662-3676 (2019)
  7. The microenvironment surrounding FAD mediates its conversion to 8-formyl-FAD in Aspergillus oryzae RIB40 formate oxidase. Doubayashi D, Oki M, Mikami B, Uchida H. J Biochem 166 67-75 (2019)