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Hoffman, B. M.

Publications and source records attributed to Hoffman, B. M..

2 recordsLinked to original sources

13C ENDOR Spectroscopy-Guided MD Computations Reveals the Structure of the Enzyme-Substrate Complex of an Active, N-linked Glycosylated Lipoxygenase

Lipoxygenases (LOXs) are enzymes responsible for producing important cell signaling mediators and have been extensively studied for their potential clinical relevance as well as to advance our understanding of enzyme catalysis. The common inability to capture and characterize LOX-substrate complexes by Xray co-crystallography requires the development of alternative structural methods. We previously reported the integration of 13C/1H electron nuclear double resonance (ENDOR) spectroscopy and molecular dynamics (MD) to visualize the complex structure of the paradigmatic LOX from soybean, SLO, with substrate linoleic acid (LA). However, this required substitution of the catalytic mononuclear, nonheme iron by the structurally faithful, yet inactive Mn2+ ion as a spin-probe. Unlike canonical Fe-LOXs from plants and animals, LOXs from pathogenic fungi contain active mononuclear manganese metallocentres. Here, we report the ground-state active-site structure of the native, fully glycosylated fungal LOX from M. oryzae, MoLOX complexed with LA obtained through the 13C/1H ENDOR-guided MD approach. The Mn-oxygen-to-LA donor carbon distance (DAD) for MoLOX-LA, 3.4 {+/-} 0.3 [A], matches the distance in the single representative X-ray co-structure of an animal 8R-LOX with its natural fatty acid substrate, and slightly elongated from that of the SLO-LA complex, 3.1 {+/-} 0.2 [A], despite its carboxylate-out substrate binding orientation versus carboxylate-in for SLO. The results provide unique insight into the evolutionary divergence of the ground-state DAD in the LOX family, which influences the activation barrier for hydrogen tunneling, and give a structural basis for guiding development of MoLOX inhibitors. The work highlights the robustness of ENDOR-guided MD approach to describe LOX-substrate structures that elude conventional X-ray techniques.

biochemistry↗

13C Electron Nuclear Double Resonance Spectroscopy Shows Acetyl-CoA Synthase Binds Two Substrate CO in Multiple Binding Modes and Reveals the Importance of a CO-Binding 'Alcove'

EPR and Electron Nuclear Double Resonance spectroscopies here characterize CO binding to the active-site A cluster of wild-type (WT) Acetyl-CoA Synthase (ACS) and two variants, F229W and F229A. The A-cluster binds CO to a proximal Ni (Nip) that bridges a [4Fe-4S] cluster and distal Nid. An alcove seen in the ACS crystal-structure near the A-cluster, defined by hydrophobic residues including F229, forms a cage surrounding a Xe mimic of CO and is suggested to cradle this CO. Previously, we only knew WT ACS bound a single CO in the Ared-CO intermediate, here seen as forming Nip(I)-CO with CO on-axis of the dz2 odd-electron orbital (g{perp}>g||[~]2). The two-dimensional field-frequency pattern of 2K-35 GHz 13C-ENDOR spectra collected across the Ared-CO EPR envelope now reveals a second CO bound in the dz2 orbitals equatorial plane. This WT A-cluster conformer dominates the nearly-conservative F229W variant, but 13C-ENDOR reveals a minority "A" conformation with (g||>g{perp}[~]2) characteristic of a cloverleaf (eg. dx2-y2) odd-electron orbital, and with Nip binding two, apparently in-plane CO. Disruption of the alcove through introduction of the smaller alanine residue in the F229A variant diminishes conversion to Ni(I) [~]tenfold and introduces extensive cluster flexibility. 13C-ENDOR shows the F229A cluster is mostly (60%) in the "A" conformation, but with [~]20% each of the WT conformer and an "O" state in which dz2 Nip(I) (g{perp}>g||[~]2) surprisingly lacks CO. This paper thus demonstrates the importance of an intact alcove in forming and stabilizing the Ni(I)-CO intermediate in the Wood-Ljungdahl pathway of anaerobic CO and CO2 fixation.

biochemistry↗