Engineered Protein Inhibitors of SARS-CoV-2 Entry: Difference between revisions

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De novo designed proteins, as discussed previously, focused on computational design to determine residues best able to interact with the spike protein. We will focus on LCB1 and LCB3. <scene name='10/1075219/Lcb1/4'>LCB1 binding</scene> reveals hydrogen bonding between D30 of the minibinder and both K417 and R403 of the spike protein, in addition to D17 and R14 of the minibinder interacting with Q493 of the spike protein. Similarly, <scene name='10/1075219/Lcb3/5'>LCB3 binding</scene> reveals hydrogen bonding between D11 of the minibinder to K417 and R403 of the spike protein.  
De novo designed proteins, as discussed previously, focused on computational design to determine residues best able to interact with the spike protein. We will focus on LCB1 and LCB3. <scene name='10/1075219/Lcb1/4'>LCB1 binding</scene> reveals hydrogen bonding between D30 of the minibinder and both K417 and R403 of the spike protein, in addition to D17 and R14 of the minibinder interacting with Q493 of the spike protein. Similarly, <scene name='10/1075219/Lcb3/5'>LCB3 binding</scene> reveals hydrogen bonding between D11 of the minibinder to K417 and R403 of the spike protein.  
[[Image:Comparison.jpeg|400 px|left|thumb|Figure 4: The sequence differences between ACE2, AHB2, LCB1 and LCB3.]]


Within all four binding sites, we see two conserved residues throughout: K417 and Q493. This finding reveals the importance of these residues in both binding and stability.  
Within all four binding sites, we see two conserved residues throughout: K417 and Q493. This finding reveals the importance of these residues in both binding and stability.  
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Furthermore, an interesting difference between the two design methods is the location of hydrogen bonding interactions. In AHB2, similar to ACE2, we see interactions spanning the entirety of the helices in contact with the spike protein. De novo design, on the other hand, reveals the main hydrogen bonding interactions occurring within the center residues of the helices.  
Furthermore, an interesting difference between the two design methods is the location of hydrogen bonding interactions. In AHB2, similar to ACE2, we see interactions spanning the entirety of the helices in contact with the spike protein. De novo design, on the other hand, reveals the main hydrogen bonding interactions occurring within the center residues of the helices.  


Figure 4 shows the sequence comparison between the interacting helix of ACE2 and the helices of the three minibinders. [[Image:Comparison.jpeg|400 px|left|thumb|Figure 4: The sequence differences between ACE2, AHB2, LCB1 and LCB3.]]
Figure 4 shows the sequence comparison between the interacting helix of ACE2 and the helices of the three minibinders.





Revision as of 18:34, 22 April 2025

SARS-CoV-2 Spike Protein (7JZL):SARS-CoV-2 Spike Protein (7JZL): A trimer responsible for interacting with host ACE2 receptors to deliver the virus into host cells. Receptor binding domains (RBDs) are highlighted at the top of each monomer.

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References


PDB Files

[1]https://www.rcsb.org/structure/7UHB - SARS-CoV-2 spike in complex with AHB2-2GS-SB175 (local refinement of the RBD and AHB2)

[2]https://www.rcsb.org/structure/8YZC - Structure of BA.2.86 spike protein in complex with ACE2

[3]https://www.rcsb.org/structure/7JZL - SARS-CoV-2 spike in complex with LCB1 (2RBDs open)

[4]https://www.rcsb.org/structure/6LZG - Structure of novel coronavirus spike receptor-binding domain complexed with its receptor ACE2

[5]https://www.rcsb.org/structure/7CDI - Crystal structure of SARS-CoV-2 antibody P2C-1F11 with RBD

Student Contributors

  • Giavanna Yowell
  • Shea Bailey
  • Matthew Pereira

Proteopedia Page Contributors and Editors (what is this?)

Matthew Pereira, Elizabeth Yowell, Michal Harel, Shea Bailey