Cryo-EM structure of the tissue factor/factor VIIa complex with a factor X mimetic reveals a novel allosteric mechanism
Abstract
Abstract Blood clotting is triggered in hemostasis and thrombosis when the membrane-bound tissue factor (TF)/factor VIIa (FVIIa) complex activates factor X (FX). There are no structures of TF/FVIIa on membranes, with or without FX. Using cryoelectron microscopy (cryo-EM) to address this gap, we assembled TF/FVIIa complexes on nanoscale membrane bilayers (nanodiscs), bound to XK1 and an antibody fragment. XK1 is a FX mimetic whose protease domain is replaced by the first Kunitz-type (K1) domain of the TF pathway inhibitor, whereas 10H10 is a noninhibitory, anti-TF antibody. We determined a cryo-EM structure of a TF/FVIIa/XK1/10H10/nanodisc complex with a resolution of 3.7 Å, allowing us to model all the protein backbones. TF/FVIIa extends perpendicularly from the membrane, interacting with a “handle-shaped” XK1 at 2 locations: the K1 domain docks into FVIIa’s active site, whereas the γ-carboxyglutamate–rich (GLA) domain binds to the TF substrate-binding exosite. The FX and FVIIa GLA domains also contact each other and the membrane surface. Except for a minor contact between the first epidermal growth factor (EGF)–like domain of XK1 and TF, the rest of the FX light chain does not interact with TF/FVIIa. The structure reveals a previously unrecognized, membrane-dependent allosteric activation mechanism between FVIIa and TF, in which a serine-rich loop in TF that partially obscures the TF exosite must undergo a shift to allow access of the FX GLA domain to its final binding location on the membrane-bound TF/FVIIa complex. This mechanism also provides a novel explanation for the otherwise puzzling phenomenon of TF encryption/decryption on cell surfaces.
Article Details
Authors (12)
Josepha C. Sedzro
1Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, MI
Amanda L. Photenhauer
2Life Sciences Institute, University of Michigan, Ann Arbor, MI
Fabienne Birkle
1Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, MI
Katarina Meze
2Life Sciences Institute, University of Michigan, Ann Arbor, MI
Alex Mortenson
3Theoretical and Computational Biophysics Group, National Institutes of Health Resource for Macromolecular Modeling and Visualization, Beckman Institute for Advanced Science and Technology, Department of Biochemistry, Center for Biophysics and Quantitative Biology, University of Illinois Urbana-Champaign, Urbana, IL
Cade Duckworth
3Theoretical and Computational Biophysics Group, National Institutes of Health Resource for Macromolecular Modeling and Visualization, Beckman Institute for Advanced Science and Technology, Department of Biochemistry, Center for Biophysics and Quantitative Biology, University of Illinois Urbana-Champaign, Urbana, IL
Po-Chao Wen
3Theoretical and Computational Biophysics Group, National Institutes of Health Resource for Macromolecular Modeling and Visualization, Beckman Institute for Advanced Science and Technology, Department of Biochemistry, Center for Biophysics and Quantitative Biology, University of Illinois Urbana-Champaign, Urbana, IL
Sarah Kearns
2Life Sciences Institute, University of Michigan, Ann Arbor, MI
Michael A. Cianfrocco
1Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, MI
Emad Tajkhorshid
Melanie D. Ohi
James H. Morrissey
University of Michigan Medical School