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

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The first mini-binder to be created to combat COVID-19 is called <scene name='10/1078124/Ahb2_general/2'>AHB2</scene>. In order to ensure that the mini-binder would bind to the same RBD that the ACE2 was bound to, AHB2 was designed by looking at the specific sequence of ACE2 to find the alpha-helix that makes interactions with the spike receptor binding domain. This design process is referred to as the [https://docs.rosettacommons.org/docs/latest/Home Rosetta Blueprint] protein design. Figure 2 shows the RBD trimer with one part of ACE2 being used for the reference alpha helix to create AHB2 <ref name="Cao">PMID:32907861</ref>.
The first mini-binder to be created to combat COVID-19 is called <scene name='10/1078124/Ahb2_general/2'>AHB2</scene>. In order to ensure that the mini-binder would bind to the same RBD that the ACE2 was bound to, AHB2 was designed by looking at the specific sequence of ACE2 to find the alpha-helix that makes interactions with the spike receptor binding domain. This design process is referred to as the [https://docs.rosettacommons.org/docs/latest/Home Rosetta Blueprint] protein design. Figure 2 shows the RBD trimer with one part of ACE2 being used for the reference alpha helix to create AHB2 <ref name="Cao">PMID:32907861</ref>.


As the AHB2 inhibitors were tested and found to be effective, it was then time to manipulate the mini-binders to create a more effective vaccine. A rotamer interaction field docking method with in silico mini-proteins was used with a scaffold library to generate binders to more distinct regions of the RBD surface <ref name="Cao"/>. This method is known as the de novo protein design and it is how the <scene name='10/1078124/Lcb1_general/2'>LCB1</scene> and <scene name='10/1078124/Lcb3_general/1'>LCB3</scene> mini-binders were created. Figure 3 shows the different LCBs pulled from the scaffold library to create the different LCB inhibitors.  
As the AHB2 inhibitors were tested and found to be effective, it was then time to manipulate the mini-binders to create a more effective vaccine. A rotamer interaction field docking method with [https://en.wikipedia.org/wiki/In_silico in silico] mini-proteins was used with a scaffold library to generate binders to more distinct regions of the RBD surface <ref name="Cao"/>. This method is known as the de novo protein design and it is how the <scene name='10/1078124/Lcb1_general/2'>LCB1</scene> and <scene name='10/1078124/Lcb3_general/1'>LCB3</scene> mini-binders were created. Figure 3 shows the different LCBs pulled from the scaffold library to create the different LCB inhibitors.  


===Stability===
===Stability===

Revision as of 01:23, 29 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.

Drag the structure with the mouse to rotate

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

[6]https://www.rcsb.org/structure/7JZM - SARS-CoV-2 spike in complex with LCB3 (local refinement of the RBD and LCB3)

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