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De novo design of phospho-tyrosine peptide binders

biorxiv. 2021-06; 
Magnus S Bauer; Jason Z Zhang; Kejia Wu; Gyu Rie Lee; Brian Coventry; Kody A Klupt; Jiuhan Shi; Rafael I Brent; Xinting Li; Carolina Moller; Nicole Roullier; Dionne K Vafeados; Indrek Kalvet; Rebecca K Skotheim; Siyu Zhu; Amir Motmaen; Luca C Herrmann; Pascal Sturmfels; Doug Tischer; Han Raut Altae-Tran; David Juergens; Rohith Krishna; Woody Ahern; Jason Yim; Asim K Bera; Alex Kang; Emily Joyce; Andrew Lu; Lance Stewart; Frank DiMaio; David Baker
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Protein and Antibody Isolation minutes on shaker, 220 RPM. The lysates were spun down by centrifugation at 4000 x g for 10 minutes, followed by purification using Ni-charged MagBeads (GenScript #L00295). The wash buffer contained 25 mM Tris pH 8.0, 300 mM NaCl, and 10 mM Imidazole, while the elution buffer contained 25 mM Tris pH 8.0, 300 mM Get A Quote

Abstract

Phosphorylation on tyrosine is a key step in many signaling pathways. Despite recent progress in de novo design of protein binders, there are no current methods for designing binders that recognize phosphorylated proteins and peptides; this is a challenging problem as phosphate groups are highly charged, and phosphorylation often occurs within unstructured regions. Here we introduce RoseTTAFold Diffusion 2 for Molecular Interfaces (RFD2-MI), a deep generative framework for the design of binders for protein, ligand, and covalently modified protein targets. We demonstrate the power and versatility of this method by designing binders for four critical phosphotyrosine sites on three clinically relevant targets: Clu... More

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