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Computational design of high-affinity epitope scaffolds by backbone grafting of a linear epitope.

J. Mol. Biol.. 2012; 
Azoitei Mihai L,Ban Yih-En Andrew,Julien Jean-Philippe,Bryson Steve,Schroeter Alexandria,Kalyuzhniy Oleksandr,Porter Justin R,Adachi Yumiko,Baker David,Pai Emil F,Schief Willi
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Gene Synthesis Expression and purification of epitope scaffolds Light scattering Plasmids encoding individual computational designs were synthesized with a 6 × His-terminal tag in a pet29b+ vector (GenScript) and subsequently transformed in Arctic Express™ E. Get A Quote

摘要

Computational grafting of functional motifs onto scaffold proteins is a promising way to engineer novel proteins with pre-specified functionalities. Typically, protein grafting involves the transplantation of protein side chains from a functional motif onto structurally homologous regions of scaffold proteins. Using this approach, we previously transplanted the human immunodeficiency virus 2F5 and 4E10 epitopes onto heterologous proteins to design novel "epitope-scaffold" antigens. However, side-chain grafting is limited by the availability of scaffolds with compatible backbone for a given epitope structure and offers no route to modify backbone structure to improve mimicry or binding affinity. To address... More

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