Molecular basis of vitamin-K-driven γ-carboxylation at the membrane interface
- Nature. 2025 Mar;639(8055):816-824. doi: 10.1038/s41586-025-08648-1.
- 1. Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St Louis, MO, USA.
- 2. Department of Cell Biology, School of Basic Medical Sciences, Harbin Medical University, Harbin, People's Republic of China.
- 3. Department of Radiology, Washington University School of Medicine, St Louis, MO, USA.
- 4. Department of Chemistry, Washington University, St Louis, MO, USA.
- 5. Department of Internal Medicine, Washington University School of Medicine, St Louis, MO, USA.
- 6. The Hormel Institute, University of Minnesota, Austin, MN, USA. [email protected].
- 7. Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St Louis, MO, USA. [email protected].
The γ-carboxylation of glutamate residues enables CA2+-mediated membrane assembly of protein complexes that support broad physiological functions, including haemostasis, calcium homeostasis, immune response and endocrine regulation1-4. Modulating γ-carboxylation levels provides prevalent treatments for haemorrhagic and thromboembolic diseases5. This unique post-translational modification requires vitamin K hydroquinone (KH2) to drive highly demanding reactions6 catalysed by the membrane-integrated γ-carboxylase (VKGC). Here, to decipher the underlying mechanisms, we determined cryo-electron microscopy structures of human VKGC in unbound form, with KH2 and four haemostatic and non-haemostatic proteins possessing propeptides and glutamate-rich domains in different carboxylation states. VKGC recognizes substrate proteins through knob-and-hole interactions with propeptides, thereby bringing tethered glutamate-containing segments for processive carboxylation within a large chamber that provides steric control. Propeptide binding also triggers a global conformational change to signal VKGC activation. Through sequential deprotonation and KH2 epoxidation, VKGC generates a free hydroxide ion as an exceptionally strong base that is required to deprotonate the γ-carbon of glutamate for CO2 addition. The diffusion of this superbase-protected and guided by a sealed hydrophobic tunnel-elegantly resolves the challenge of coupling KH2 epoxidation to γ-carboxylation across the membrane interface. These structural insights and extensive functional experiments advance membrane enzymology and propel the development of treatments for γ-carboxylation disorders.