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February 9, 20260 citations

Subtimizer: Computational Workflow for Structure-Guided Design of Potent and Selective Kinase Peptide Substrates.

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AYAbeeb Abiodun YekeenCMCynthia J. MeyerMMMelissa K. McCoy

Key Points

  • The aim is to develop a computational tool for designing high-activity, selective kinase substrates.
  • Utilized Subtimizer for structure-guided peptide substrate design
  • Employed AlphaFold-Multimer for structure modeling
  • Applied ProteinMPNN for peptide sequence design
  • Conducted kinetic analyses for substrate evaluation
  • Four kinases showed increased activity up to 350% with designed peptides
  • Kinetic analysis indicated over 2-fold reductions in Michaelis constant (Km)
  • Designed peptides displayed 4-fold and 11-fold selectivity for MET and ROS1, respectively

Abstract

Kinases are pivotal cell signaling regulators and prominent drug targets. Short peptide substrates are widely used in kinase activity assays essential for investigating kinase biology and drug discovery. However, designing substrates with high activity and specificity remains challenging. Here, we present Subtimizer (substrate optimizer), a streamlined computational pipeline for structure-guided kinase peptide substrate design using AlphaFold-Multimer for structure modeling, ProteinMPNN for sequence design, and AlphaFold2-based interface evaluation. Applied to five kinases, four showed substantially improved activity (up to 350%) with designed peptides. Kinetic analyses revealed >2-fold reductions in the Michaelis constant (Km), indicating improved enzyme-substrate affinity. Designed peptides for MET and ROS1 exhibited reciprocal selectivity, with 4-fold and 11-fold preferences for their intended targets, respectively. This study demonstrates AI-driven structure-guided protein design as an effective approach for developing potent and selective kinase substrates, facilitating assay development for drug discovery and functional investigation of the kinome.

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Cite This Study

Yekeen et al. (2026) studied this question.

synapsesocial.com/papers/698979f5f0ec2af6756e816dhttps://doi.org/10.1021/acs.jcim.5c02430
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