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Updated: Jun 5, 2026

Bio-layer Interferometry for Measuring Kinetics of Protein-protein Interactions and Allosteric Ligand Effects
Published on: February 18, 2014
Kinetic Fingerprints as Mechanistic and Clinical Roadmaps Across KIT Activation States
Ana Corrionero1,2, Niall Prendiville1, Tatiana Cazorla1
1Enzymlogic, Qube Technology Park, Madrid, Spain.
Abstract:
In cancer therapy, traditional approaches often overlook the dynamic nature of drug-target interactions. We introduce kinetic fingerprints as a mechanistically informative tool to guide kinase inhibitor design and predict clinical performance. Profiling 172 compounds across multiple KIT conformations, including the oncogenic D816V mutation, show that prolonged residence time determines therapeutic success, while mutations accelerating dissociation rates (koff) drive resistance, positioning koff as a robust predictor of clinical failure. Beyond efficacy and resistance, kinetic signatures map molecular behavior: fast-associating scaffolds engage readily populated KIT states, slow binders overcome conformational barriers like juxtamembrane repositioning, and extended residence times highlight ligands stabilizing regulatory elements (G-loop and regulatory spine). Kinetic profiling further unveils mechanisms invisible to conventional methods, such as drug-induced kinase degradation, and exposes selectivity dimensions beyond affinity: avapritinib exhibits durable KIT D816V engagement yet transient off-target binding. Our findings redefine the evaluation of KIT inhibitors, establishing a framework for rational, kinetics-guided drug discovery in KIT-driven cancers.
Insights
Kinetic fingerprints reveal that prolonged drug binding (residence time) predicts cancer therapy success. Dissociation rates (k_off) accurately predict resistance and clinical failure for kinase inhibitors.
Area of Science:
- Oncology
- Pharmacology
- Biochemistry
Background:
- Traditional cancer therapies often neglect dynamic drug-target interactions.
- Kinase inhibitors are crucial, but predicting their clinical performance remains challenging.
Purpose of the Study:
- To introduce kinetic fingerprints for guiding kinase inhibitor design.
- To predict the clinical performance of kinase inhibitors based on their binding kinetics.
Main Methods:
- Profiling 172 compounds against multiple KIT conformations, including the D816V mutation.
- Analyzing drug residence time and dissociation rates (k_off).
Main Results:
- Prolonged residence time correlates with therapeutic success.
- Accelerated k_off rates due to mutations predict resistance and clinical failure.
- Kinetic signatures reveal mechanisms like drug-induced degradation and selectivity beyond affinity.
Conclusions:
- Kinetic fingerprints provide mechanistic insights into drug-target interactions.
- Kinetics-guided drug discovery offers a rational framework for developing effective KIT inhibitors for KIT-driven cancers.
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