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[Preprint]. 2025 Mar 28:2025.03.27.640893.
doi: 10.1101/2025.03.27.640893.

High-throughput Activity Reprogramming of Proteases (HARP)

High-throughput Activity Reprogramming of Proteases (HARP)

Samantha G Martinusen et al. bioRxiv. .

Update in

  • High-Throughput Activity Reprogramming of Proteases (HARP).
    Martinusen SG, Slaton EW, Ajayebi S, Pulgar MA, Simas CF, Nelson SE, Dutta A, Besu JT, Bruner S, Denard CA. Martinusen SG, et al. ACS Chem Biol. 2025 Oct 17;20(10):2381-2392. doi: 10.1021/acschembio.5c00230. Epub 2025 Sep 23. ACS Chem Biol. 2025. PMID: 40985900

Abstract

Developing potent and selective protease inhibitors remains a grueling, iterative, and often unsuccessful endeavor. Although macromolecular inhibitors can achieve single-enzyme specificity, platforms used for macromolecular inhibitor discovery are optimized for high-affinity binders, requiring extensive downstream biochemical characterization to isolate rare inhibitors. Here, we developed the High-throughput Activity Reprogramming of Proteases (HARP) platform, HARP is a yeast-based functional screen that isolates protease-inhibitory macromolecules from large libraries by coupling their inhibition of endoplasmic reticulum-resident proteases to a selectable phenotype on the cell surface. Endowed with high dynamic range and resolution, HARP enabled the isolation of low-nanomolar-range inhibitory nanobodies against tobacco etch virus protease and human kallikrein 6, including a rare 7.6 nM K I TEVp uncompetitive inhibitor. Structural modeling and deep sequencing all provide insights into the molecular determinants of inhibitors and reinforce HARP's foundational findings. Overall, HARP is a premier platform for discovering modulatory macromolecules from various synthetic scaffolds against enzyme targets.

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