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

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All in all, minibinders designed to inhibit binding of ACE2 to the spike protein have revealed promising potential. The inhibitors LCB1 and LCB3 were shown to be the most effective at inhibiting the virus by having the highest affinity for the RBD, and as well as the highest neutralization effect as seen in figure 5 <ref name="Cao">DOI:10.1126/science.abd9909</ref>. While AHB2 wasn't as effective as LCB1 and LCB3 at neutralizing the virus, it still showed results of being an effective vaccine, as it still had a higher binding affinity to the RBD compared to ACE2. All three inhibitors show more advantages as a vaccine compared to antibodies due to their small size, stability, and their ability to be quickly modified <ref name="Cao">DOI:10.1126/science.abd9909</ref>. The use of mini-inhibitors through the de novo protein design has also shown results in being able to control cell function and detecting protein activity within the cell <ref name= "Weinberg">PMID:38293112</ref>.
All in all, minibinders designed to inhibit binding of ACE2 to the spike protein have revealed promising potential. The inhibitors LCB1 and LCB3 were shown to be the most effective at inhibiting the virus by having the highest affinity for the RBD, and as well as the highest neutralization effect as seen in figure 5 <ref name="Cao">DOI:10.1126/science.abd9909</ref>. While AHB2 wasn't as effective as LCB1 and LCB3 at neutralizing the virus, it still showed results of being an effective vaccine, as it still had a higher binding affinity to the RBD compared to ACE2. All three inhibitors show more advantages as a vaccine compared to antibodies due to their small size, stability, and their ability to be quickly modified <ref name="Cao">DOI:10.1126/science.abd9909</ref>. The use of mini-inhibitors through the de novo protein design has also shown results in being able to control cell function and detecting protein activity within the cell <ref name= "Weinberg">PMID:38293112</ref>.


The limitation behind the design of AHB2 was that it was specifically made from ACE2, making it an inhibitor that can't be universally used to fight other viruses. The biggest limitation regarding the de novo designed inhibitors is that there is a large protein bank that is used as reference when creating the inhibitors. With an abundance of inhibitors created with varying mutations, difficulty arises when determining which mutations will be most effective for the specific virus being neutralized in a steadfast manner <ref name="Cao">DOI:10.1126/science.abd9909</ref>.  
The limitation behind the design of AHB2 was that it was specifically made from ACE2, making it an inhibitor that can't be universally used to fight other viruses. The biggest limitation regarding the de novo designed inhibitors is identifying the residues that will increase affinity to the spike protein. <ref name="Cao">DOI:10.1126/science.abd9909</ref>.  


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</StructureSection>

Revision as of 19:22, 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

[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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