Permutational Encoding Strategy Accelerates HIT Validation from Single-Stranded DNA-Encoded Libraries

药效团 化学 计算生物学 DNA 药物发现 组合化学 编码(内存) 氨基酸 DNA测序 生物化学 计算机科学 生物 人工智能
作者
Sara Puglioli,Mosè Fabbri,Claudia Comacchio,Laura Alvigini,Roberto De Luca,Sebastian Oehler,Ettore Gilardoni,Gabriele Bassi,Samuele Cazzamalli,Dario Neri,Nicholas Favalli
出处
期刊:Bioconjugate Chemistry [American Chemical Society]
卷期号:35 (7): 1033-1043
标识
DOI:10.1021/acs.bioconjchem.4c00233
摘要

DNA-Encoded Libraries (DELs) allow the parallel screening of millions of compounds for various applications, including de novo discovery or affinity maturation campaigns. However, library construction and HIT resynthesis can be cumbersome, especially when library members present an unknown stereochemistry. We introduce a permutational encoding strategy suitable for the construction of highly pure single-stranded single-pharmacophore DELs, designed to distinguish isomers at the sequencing level (e.g., stereoisomers, regio-isomers, and peptide sequences). This approach was validated by synthesizing a mock 921,600-member 4-amino-proline single-stranded DEL ("DEL1"). While screening DEL1 against different targets, high-throughput sequencing results showed selective enrichment of the most potent stereoisomers, with enrichment factors that outperform conventional encoding strategies. The versatility of our methodology was additionally validated by encoding 24 scaffolds derived from different permutations of the amino acid sequence of a previously described cyclic peptide targeting Fibroblast Activation Protein (FAP-2286). The resulting library ("DEL2") was interrogated against human FAP, showing selective enrichment of five cyclic peptides. We observed a direct correlation between enrichment factors and on-DNA binding affinities. The presented encoding methodology accelerates drug discovery by facilitating library synthesis and streamlining HIT resynthesis while enhancing enrichment factors at the DEL sequencing level. This facilitates the identification of HIT candidates prior to medicinal chemistry and affinity maturation campaigns.
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