Application Note

The Conformation Gap: How EPR Unlocks Missing Dynamics In Pharma And Structural Biology Workflow

GettyImages-1389723406 protein

Proteins operate through continuous movement, shifting between dynamic conformations that directly govern biological function and drug activity. While conventional methods like Cryo-EM and AlphaFold provide high-resolution structural endpoints, they frequently struggle to capture transient, disordered, or low-population states. Electron Paramagnetic Resonance (EPR) spectroscopy addresses this conformational gap by delivering direct distance distributions that quantify biomolecular flexibility, coexisting states, and structural heterogeneity across various biological environments.

Integrating EPR into structural biology workflows refines low-confidence predicted regions, validates computational ensembles, and tracks dynamic transitions during ligand binding, protein oligomerization, or nucleic acid interaction. The FATHOM automated EPR platform simplifies these measurements through superconducting resonator technology and cryogen-free, high-throughput operation, enabling non-specialist laboratories to routinely generate ground-truth dynamic insights. Unlocking these conformational ensembles advances mechanistic understanding and accelerates targeted drug discovery pipelines.

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