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Vitamin K Epoxide Reductase is found and primarily synthesized in the liver. In the liver, the VKOR enzyme is set in the endoplasmic reticulum membrane (Fig.2). The transmembrane helices are located in the Endoplasmic Reticulum Luminal Region, which is the region between the ER Lumen and the [https://en.wikipedia.org/wiki/Cytosol Cytosol]. The cap region is partially oriented in the ER Lumen. The active site remains within the [https://en.wikipedia.org/wiki/Endoplasmic_reticulum Endoplasmic Reticulum Membrane].The Anchor is partially within the ER lumen, and partially embedded in the ER membrane. The anchor is what attaches the cap domain and stabilizes it, which allows the cap domain to cover the active site. Vitamin K Epoxide Reductase is unstable in-vitro. To determine its structure an extra protein superfolder green flourescent protein was appended to the N and C termini of Vitamin K Epoxide. For the visualizing VKOR, this protein has been removed from the structural scenes. After | Vitamin K Epoxide Reductase is found and primarily synthesized in the [https://en.wikipedia.org/wiki/Liver liver] . In the liver, the VKOR enzyme is set in the endoplasmic reticulum membrane (Fig.2). The transmembrane helices are located in the Endoplasmic Reticulum Luminal Region, which is the region between the ER Lumen and the [https://en.wikipedia.org/wiki/Cytosol Cytosol]. The cap region is partially oriented in the ER Lumen. The active site remains within the [https://en.wikipedia.org/wiki/Endoplasmic_reticulum Endoplasmic Reticulum Membrane].The Anchor is partially within the ER lumen, and partially embedded in the ER membrane. The anchor is what attaches the cap domain and stabilizes it, which allows the cap domain to cover the active site. Vitamin K Epoxide Reductase is unstable in-vitro. To determine its structure an extra protein superfolder green flourescent protein (sGFP) was appended to the N and C termini of Vitamin K Epoxide. For the visualizing VKOR, this protein has been removed from the structural scenes. After sGFP was removed from the structural scenes, we further took the structure files and resequenced them to better align with the numbering of the protein. In these files the sequence slightly differs between the organisms used to view Vitamin K Epoxide Reductase. In the human version, HsVKOR, the catalytic cysteines that play an intricate role in the reduction of Vitamin K Epoxide are cysteines 43, 51, 132, and 135. In the pufferfish version of the file, TrVKORL, the cysteines are 52, 55, 141, and 144. | ||
Revision as of 14:21, 18 April 2022
Vitamin K Epoxide Reductase
<StructureSection load= size='350' side='right' caption='Structure of Closed Vitamin K Epoxide Reductase (PDB entry 6wv3)' scene='90/904321/Closedconformation/2'>
Introduction
Vitamin K Epoxide Reductase VKOR WIKI(VKOR) is an endoplasmic membrane enzyme that generates the active form of Vitamin K to support blood coagulation[1]. VKOR homologs are integral membrane thiol oxidoreductases Thiol OxidoReductase due to the function of VKOR being dependent on thiol residues and disulfide bonding. The Vitamin K Cycle and the VKOR enzyme specifically are common drug targets for thromboembolic diseases. This is because, as pictured, the vitamin K cycle is required to activate blood coagulant factors II, VII, IX, and X. Coagulant factor activation promotes blood clotting, which in high amounts can be dangerous and cause thromboembolic diseases such as stroke, deep vein thrombosis, and/or pulmonary embolism.
Vitamin K Epoxide Reductase is found and primarily synthesized in the liver . In the liver, the VKOR enzyme is set in the endoplasmic reticulum membrane (Fig.2). The transmembrane helices are located in the Endoplasmic Reticulum Luminal Region, which is the region between the ER Lumen and the Cytosol. The cap region is partially oriented in the ER Lumen. The active site remains within the Endoplasmic Reticulum Membrane.The Anchor is partially within the ER lumen, and partially embedded in the ER membrane. The anchor is what attaches the cap domain and stabilizes it, which allows the cap domain to cover the active site. Vitamin K Epoxide Reductase is unstable in-vitro. To determine its structure an extra protein superfolder green flourescent protein (sGFP) was appended to the N and C termini of Vitamin K Epoxide. For the visualizing VKOR, this protein has been removed from the structural scenes. After sGFP was removed from the structural scenes, we further took the structure files and resequenced them to better align with the numbering of the protein. In these files the sequence slightly differs between the organisms used to view Vitamin K Epoxide Reductase. In the human version, HsVKOR, the catalytic cysteines that play an intricate role in the reduction of Vitamin K Epoxide are cysteines 43, 51, 132, and 135. In the pufferfish version of the file, TrVKORL, the cysteines are 52, 55, 141, and 144.
Structure
The VKOR enzyme is made up of four transmembrane helices: TM1, TM2, TM3, and TM4 .(Grey/Orange) Each of these helices come together to form a central ligand binding pocket. This central pocket is the active site where conserved Cysteines: C132 and C135 are located. In the cap domain are important regions that are significant for Vitamin K binding, and the overall function of Vitamin K Epoxide Reductase, including the Anchor(Green), Cap Sequence (Blue), Beta Hairpin (Purple), and 3-4 Loop (Pink).
The Anchor attaches to the cap domain of the Vitamin K Epoxide Reductase Enzyme and is partially embedded in the Endoplasmic Reticulum Membrane. This both stabilizes the enzyme in the membrane, and stabilizes the cap domain over the active site.
The Cap Sequence is two parts: The cap helix and the cap loop. When the enzyme is reducing Vitamin K Epoxide or being inhibited by Vitamin K Antagonists, this cap region swings downward over the active site. The cap region is directly attached to the anchor. The Beta Hairpin is only seen in the closed conformation of Vitamin K Epoxide Reductase. When in the open conformation the beta hairpin is referred to as the luminal helix (yellow). The Beta hairpin is significant due to the fact that it contains the other two conserved cysteines necessary for the function of Vitamin K Epoxide Reductase: Cysteine43 and Cysteine51. The beta hairpin/luminal helix is directly connected to the cap region.
The Loop 3-4 is the sequence of residues between Transmembrane Helix 3 and Transmembrane Helix 4. In the open conformation the loop does not have significant interactions with the rest of the cap domain, however in the closed conformation Loop 3-4 has many hydrogen reactions with the Cap Loop. This allows for the stabilization when VKOR is closed.
Vitamin K Epoxide

As mentioned above, Vitamin K epoxide is a component of the Vitamin K cycle and required for blood coagulation. In the cycle, VKOR reduces Vitamin K epoxide to Vitamin K Quinone, or the active form of Vitamin K. In this conversion, VKOR donates electrons to Vitamin K epoxide from the S-H of the active pair of cysteines, C132-C135. The mediated cysteine pair, C43-C51, has to be reduced for the transfer of electrons to the substrate to occur.
Two other notable structures from the Vitamin K cycle are Vitamin K Quinone (Fig. 5) and Vitamin K Hydroquinone (Fig. 6). Vitamin K Quinone is the product that is released after the reaction with Vitamin K Epoxide and VKOR. (Fig. 2)
Binding
In its resting state, VKOR is in its open conformation. The Vitamin K epoxide enters through the isoprenyl-chain tunnel. The tunnel is located between TM2 (dark) and TM3 (light). The ketones on the VK epoxide bind to Asn80 and Tyr139 on VKOR. With Vitamin K epoxide bound, the cysteines of VKOR are partially oxidized, and concurrently reduce the substrate. A disulfide bond then forms between Cys51 and Cys132, resulting in the closed conformation. This leaves the sulfur on Cys43 and the sulfur on Cys135 protonated. The available hydrogens on these cysteines are utilized in reducing the epoxide. First, the free sulfur on Cys43 attacks Cys51 to form a new disulfide bond. With the loss of hydrogen from Cys43 in the formation of the new disulfide bond, an electron transfer is made to VKO. Next, the sulfur on Cys132 and the sulfur on Cys135 form a new disulfide bond. The hydrogen that was present on Cys135 is lost in the formation of the disulfide bond, allowing for an electron transfer to the oxygen of the epoxide. With these cysteine pairs formed, VKOR is left in an open conformation. The end products are Vitamin K Quinone and water.
Catalytic Cycle
VKOR is the second enzyme in the Vitamin K Cycle (Fig. 1), and has its own catalytic cycle as well. Step I of this VKOR cycle begins in a partially oxidized open conformation. In this state, catalytic cysteines 51 and 132 form a disulfide bond. Cysteines 43 and 135 are considered "free" because they are not bound to anything in this state. Step II is initiated when Vitamin K Epoxide binds to the active site. This binding induces a conformation change that "closes" the enzyme. In step II the cysteines remain in the same configuration, except Cys135 which forms a bond with the 3' hydroxyl group of Vitamin K Epoxide. In step III, a bond between Cys43 and Cys51 causes an electron transfer to Cys132. In its reduced form Cys132 will attack Cys135, and the extra electrons are kicked to Vitamin K Epoxide. This opens the epoxide ring on Vitamin K Epoxide so that it may be reformed into Vitamin K Quinone. Vitamin K Quinone is released from Vitamin K Epoxide Reductase. This is step IV, which is a fully oxidized open conformation of VKOR. This process is repeated over and over unless interrupted by inhibitors known as Vitamin K Antagonists or VKAs.
Step I
Step I of reforming Vitamin K Epoxide (Fig. 3) through the enzyme Vitamin K Reductase (VKOR) begins in a partially oxidized open conformation. In this state, catalytic cysteines 51 and 132 form a disulfide bond. Cysteines 43 and 135 are considered "free" because they are not bound to anything in this state. The central binding pocket (highlighted in hot pink) is also empty because Vitamin K Epoxide has not bound yet. In order to get to the next step, Vitamin K epoxide will enter through the isoprenyl-chain tunnel.[2]
Step II
After Vitamin K Epoxide enters through the isoprenyl-chain tunnel, Asn80 on TM2 and Tyr139 on TM4 hydrogen bond. to Vitamin K Epoxide. When Vitamin K Epoxide binds, there is a shift in the bonds between the cap domain, beta hairpin, and anchor. Cys135 also forms a disulfide bond with the 3' OH group on Vitamin K Epoxide.
Step III
Step III is within this partially oxidized state and free Cys43 forms a bond with Cys 51. Cys51 kicks its electrons to Cys132, and Cys 132 forms a disulfide bond with Cys135. Cys135 then reduces the epoxide ring on Vitamin K Epoxide after donating its electrons. The epoxide ring opens and reforms Vitamin K Quinone (Fig.3).
Step IV
Step IV is the last step of this cycle. Vitamin K Quinone will exit the central binding pocket and the open conformation will form. VKOR is in its fully oxidized state after donating its electrons to Vitamin K Epoxide. This is when the luminal helix will be visible. The cycle then repeats at Step I to keep reducing Vitamin K Epoxide to Vitamin K Quinone.
Warfarin
Warfarin is the most common Vitamin K antagonist (VKA). Warfarin is a competitive inhibitor, taking the place of Vitamin K Epoxide (VKO) in the active site of Vitamin K Epoxide Reductase (VKOR). When warfarin binds in the active site, it causes VKOR to go into the closed conformation.

Binding
Warfarin also forms hydrogen bonds with Asn80 and Tyr139. The specific bonds are between Asn80 and the 2-ketone group of warfarin and Tyr139 with the 4-hydroxyl group of warfarin. The rest of the warfarin interaction is determined by hydrophobic interactions. These hydrogen bonds provide the necessary recognition for the ligand to bind to the binding site to VKOR.
Warfarin binds with a slight difference compared to VKO. Warfarin binds at a slightly different angle. This creates a difference in how the cap loop and anchor domain interact and that affects the placement of Arg58. With VKO, Arg58 from the cap loop directly interacts with Glu67. However, when warfarin binds, Arg58 is inserted between Glu67 and His68 of the anchor domain.
Disease
Vitamin K Antagonists are first line therapeutics in the treatment of thromboembolic diseases, like a stroke or heart attack. Cite error: Closing </ref> missing for <ref> tag Goodstadt, L., & Ponting, C. P. (2004). Vitamin K epoxide reductase: homology, active site and catalytic mechanism. Trends in biochemical sciences, 29(6), 289–292. https://doi.org/10.1016/j.tibs.2004.04.004
Rishavy, M.A., Usubalieva, A., Hallgren, K.W., & Berkner, K.L. (2011). Novel insidht into the mechanism of the vitamin K oxidoreductas (VKOR): Electron relay through Cy43 and Cys51 reduces VKOR to allow vitamin K reduction and facilitation of vitamin K-dependent protein caroxylation. Journal of Biological Chemistry, 286(9), 7267-7278. https://doi.org/10.1074/jbc.M110.172213
[2] Liu, S., Li, S., Shen, G., Sukumar, N., Krezel, A. M., & Li, W. (2021). Structural basis of antagonizing the vitamin K catalytic cycle for anticoagulation. Science (New York, N.Y.), 371(6524), eabc5667. https://doi.org/10.1126/science.abc5667
[3] Shen, G., Cui, W., Cao, Q., Gao, M., Liu, H., Su, G., Gross, M. L., & Li, W. (2021). The catalytic mechanism of vitamin K epoxide reduction in a cellular environment. The Journal of biological chemistry, 296, 100145. https://doi.org/10.1074/jbc.RA120.015401
Silverman, R.B. (1981). Chemical model studies for the mechanism of vitamin K epoxide reductase. The Journal of American Chemistry Society, 103(19), 5939-5941. [4] [5] [6] [7] [1]
- ↑ 1.0 1.1 Shen G, Cui W, Cao Q, Gao M, Liu H, Su G, Gross ML, Li W. The catalytic mechanism of vitamin K epoxide reduction in a cellular environment. J Biol Chem. 2021 Jan-Jun;296:100145. doi: 10.1074/jbc.RA120.015401. Epub 2020, Dec 10. PMID:33273012 doi:https://dx.doi.org/10.1074/jbc.RA120.015401
- ↑ 2.0 2.1 2.2 Liu S, Li S, Shen G, Sukumar N, Krezel AM, Li W. Structural basis of antagonizing the vitamin K catalytic cycle for anticoagulation. Science. 2020 Nov 5. pii: science.abc5667. doi: 10.1126/science.abc5667. PMID:33154105 doi:https://dx.doi.org/10.1126/science.abc5667
- ↑ Shen G, Cui W, Cao Q, Gao M, Liu H, Su G, Gross ML, Li W. The catalytic mechanism of vitamin K epoxide reduction in a cellular environment. J Biol Chem. 2021 Jan-Jun;296:100145. doi: 10.1074/jbc.RA120.015401. Epub 2020, Dec 10. PMID:33273012 doi:https://dx.doi.org/10.1074/jbc.RA120.015401
- ↑ Liu S, Li S, Shen G, Sukumar N, Krezel AM, Li W. Structural basis of antagonizing the vitamin K catalytic cycle for anticoagulation. Science. 2020 Nov 5. pii: science.abc5667. doi: 10.1126/science.abc5667. PMID:33154105 doi:https://dx.doi.org/10.1126/science.abc5667
- ↑ Olson RE. The function and metabolism of vitamin K. Annu Rev Nutr. 1984;4:281-337. doi: 10.1146/annurev.nu.04.070184.001433. PMID:6380538 doi:https://dx.doi.org/10.1146/annurev.nu.04.070184.001433
- ↑ Wu S, Chen X, Jin DY, Stafford DW, Pedersen LG, Tie JK. Warfarin and vitamin K epoxide reductase: a molecular accounting for observed inhibition. Blood. 2018 Aug 9;132(6):647-657. doi: 10.1182/blood-2018-01-830901. Epub 2018, May 9. PMID:29743176 doi:https://dx.doi.org/10.1182/blood-2018-01-830901
- ↑ Chatron N, Abi Khalil R, Benoit E, Lattard V. Structural Investigation of the Vitamin K Epoxide Reductase (VKORC1) Binding Site with Vitamin K. Biochemistry. 2020 Apr 7;59(13):1351-1360. doi: 10.1021/acs.biochem.9b01084. Epub, 2020 Mar 23. PMID:32182040 doi:https://dx.doi.org/10.1021/acs.biochem.9b01084